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(11) | EP 1 773 869 B9 |
| (12) | CORRECTED EUROPEAN PATENT SPECIFICATION |
| Note: Bibliography reflects the latest situation |
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MACROCYCLIC MODULATORS OF THE GHRELIN RECEPTOR MAKROZYKLISCHE MODULATOREN DES GHRELIN-REZEPTORS MODULATEURS MACROCYCLIQUES DU RECEPTEUR A GHRELINE |
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| Note: Within nine months from the publication of the mention of the grant of the European patent, any person may give notice to the European Patent Office of opposition to the European patent granted. Notice of opposition shall be filed in a written reasoned statement. It shall not be deemed to have been filed until the opposition fee has been paid. (Art. 99(1) European Patent Convention). |
Related Application Information
Field of the Invention
Background of the Invention
Summary of the Invention
Brief Description of the Drawings
Figure 1 shows a scheme presenting a general synthetic strategy to provide conformationally-defined macrocycles of the present invention.
Figure 2 shows a general thioester strategy for making macrocyclic compounds of the present invention.
Figure 3 shows a general ring-closing metathesis (RCM) strategy for macrocyclic compounds of the present invention.
Figure 4 (panels A through E) shows competitive binding curves for binding of exemplary compounds of the present invention to the hGHS-R1a receptor.
Figure 5 (panels A through E) shows concentration-response curves for activation of the hGHS-R1a a receptor by exemplary compounds of the present invention.
Figure 6 shows graphs depicting pharmacokinetic parameters for exemplary compounds of the present invention, specifically after oral administration of 8 mg/kg compound 298 (panel A), after subcutaneous injection of 2 mg/kg compound 298 with cyclodextrin (panel B), after intravenous administration of 2 mg/kg compound 25 with cyclodextrin (panel C) and after intravenous administration of 2 mg/kg compound 298 with cyclodextrin (panel D).
Figure 7 (panels A and B) shows graphs presenting effects on gastric emptying for exemplary compounds of the present invention.
Figure 8 shows a graph presenting effects of postoperative ileus for an exemplary compound of the present invention.
Figure 9 (panels A through D) shows graphs depicting the effect on pulsatile growth hormone release for an exemplary compound of the present invention.
Figure 10 shows a competive binding curve for binding of an exemplary compound of the present invention to the hGHS-R1a receptor.
Figure 11 shows an activation curve demonstrating the agonism of an exemplary compound of the present invention.
Figure 12 shows a graph depicting agonism and lack of growth hormone release for an exemplary compound of the present invention.
Figure 13 shows graphs depicting receptor desentization associated with binding of an exemplary compound of the present invention to the hGHS-R1a receptor.
Figure 14 (panels A and B) shows graphs presenting effects on gastric emptying for an exemplary compound of the present invention.
Figure 15 shows a graph presenting effects on postoperative ileus for an exemplary compound of the present invention.
Figure 16 shows graphs depicting reversal of morphine-delayed gastric emptying (panel A) and morphine-delayed gastrointestinal transit (panel B) for an exemplary compound of the present invention.
Figure 17 (panels A and B) shows graphs depicting effects on gastroparesis for exemplary compounds of the present invention.
Detailed Description
Examples of appropriate polymer materials include, but are not limited to, polystyrene, polyethylene, polyethylene glycol, polyethylene glycol grafted or covalently bonded to polystyrene (also termed PEG-polystyrene, TentaGel™, Rapp, W.; Zhang, L.; Bayer, E. In Innovations and Persepctives in Solid Phase Synthesis. Peptides, Polypeptides and Oligonucleotides; Epton, R., Ed.; SPCC Ltd.: Birmingham, UK; p 205), polyacrylate (CLEAR™), polyacrylamide, polyurethane, PEGA [polyethyleneglycol poly(N,N-dimethylacrylamide) co-polymer, Meldal, M. Tetrahedron Lett. 1992, 33, 3077-3080], cellulose, etc. These materials can optionally contain additional chemical agents to form cross-linked bonds to mechanically stabilize the structure, for example polystyrene cross-linked with divinylbenezene (DVB, usually 0.1-5%, preferably 0.5-2%). This solid support can include as non-limiting examples aminomethyl polystyrene, hydroxymethyl polystyrene, benzhydrylamine polystyrene (BHA), methylbenzhydrylamine (MBHA) polystyrene, and other polymeric backbones containing free chemical functional groups, most typically, -NH2 or -OH, for further derivatization or reaction. The term is also meant to include "Ultraresins" with a high proportion ("loading") of these functional groups such as those prepared from polyethyleneimines and cross-linking molecules (Barth, M.; Rademann, J. J. Comb. Chem. 2004, 6, 340-349). At the conclusion of the synthesis, resins are typically discarded, although they have been shown to be able to be reused such as in Frechet, J.M.J.; Haque, K.E. Tetrahedron Lett. 1975,16, 3055.
1. Compounds
2. Synthetic Methods
A. Amino acids
B. Tethers
C. Solid phase techniques
| Compound | Macrocyelle Assembly Method | HBB1-R | BB1 | BB2 | BB3 | Tether Attachment Method | Tether | Additional Reaction** | Yield(%)* |
| 1 | Thioester Strategy | H | Bts-Nle | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 10.1 |
| 2 | Thioester Strategy | H | Bts-Ile | Boc-(D)Ala | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 13.8 |
| 3 | Thioester Strategy | H | Bts-Val | Boc-Sar | Boc-(D)Phe | MitsunobuReaction | Boc-T9 | None | 10.3 |
| 4 | Thioester Strategy | H | Bts-Nva | Boc-(D)NMeAla | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 4.6 |
| 5 | Thioester Strategy | H | Bts-Nva | Boc-NEtGly | Boc-(D)Phe | Mitsunobu Reation | Boc-T9 | None | 8.6 |
| 6 | Thioester Strategy | H | Bts-Nva | Ddz-Sar | Ddz-(D)Trp(Boc) | Mitsunobu Reaction | Ddz-T9 | None | 8.1 |
| 7 | Thioester Strategy | H | Bts-Nva | Ddz-Sar | Ddz-(D)Tyr(But) | Mitsunobu Reaction | Ddz-T9 | None | 8.8 |
| 8 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 20.9 |
| 9 | Thioester Strategy | H | Bts-Val | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T9 | None | 9.7 |
| 10 | Thioester Strategy | H | Bts-Nva | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 9.9 |
| 11 | Thioester Strategy | H | Bts-Nva | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T8 | None | 9.9 |
| 12 | Thioster Strategy | H | Bts-(D)Val | Boc-Nle | Boc-Nle | Mitsunobu Reaction | Boc-T8 | None | 2.9 |
| 13 | Thioester Strategy | H | Bts-(D)Val | Boc-Nva | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 5.8 |
| 14 | Thioester Strategy | H | Bts-Ile | Boc-(D)Ala | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 27.5 |
| 15 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 19.5 |
| 16 | Thioester Strategy | H | Bts-allo-Ile | Boc-(D)NMeAla | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 23.9 |
| 17 | Thioester Strategy | H | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe | Reductive Amination Reaction | Boc-T9 | None | 24.8 |
| 18 | Thioester Strategy | H | Bts-Acp | Boy-acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 6.8 |
| 19 | Thioester Strategy | H | Bts-Val | Boc-(D)NMeAla | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 12.7 |
| 20 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Phe(2-Cl) | Mitsunobu Reaction | Boc-T8 | None | 22.0 |
| 21 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Phe(3-Cl) | Mitsunobu Reaction | Boc-T8 | None | 24.7 |
| 22 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-1Nal | Mitsunobu Reaction | Boc-T8 | None | 10.3 |
| 23 | Thioester trategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Phe(2-Cl) | Mitsunobu Reaction | Boc-T9 | None | 32.6 |
| 24 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Phe(3-Cl) | Mitsunobu Reaction | Boc-T9 | None | 22.4 |
| 25 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Phe(4-Cl) | Mitsunobu Reaction | Boc-T9 | None | 21.0 |
| 26 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | Mitsunobu Reaction | Boc-T9 | None | 15.5 |
| 27 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Tyr(OMe) | Mitsunobu Reaction | Boc-T9 | None | 20.2 |
| 28 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Bip | MitsunobuReaction | Boc-T9 | None | 31.6 |
| 29 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Dip | MitsunobuReaction | Boc-T9 | None | 26.1 |
| 30 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)1Nal | Mitsunobu Reaction | Boc-T9 | None | 31.9 |
| 31 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)2Nal | Mitsunobu Reaction | Boc-T9 | None | 21.9 |
| 31 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)2Pal | Reductive Amination Reaction | Boc-T9 | None | 6.7 |
| 33 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)4- ThzAla | Mitsunobu Reaction | Boc-T9 | None | 7.5 |
| 34 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)2-Thi | Mitsunobu Reaction | Boc-T9 | None | 14.2 |
| 35 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Phe | Mitsunobu Reaction | Boc-T33a | None | 9.4 |
| 36 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Phe | Mitsunobu Reaction | Boc-T33b | None | 13.0 |
| 37 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe | Mitsunobu Reaction | TA1+TB4 | None | 24.6 |
| 38 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe | Mitsunobu Reaction | TA2+TB1 | Hydrogenation | 44.2 |
| 39 | Thioester Strategy | H | Bts-Nva | Boc-(D)NMcAla | Boc-(D)Phe | Mitsunobu Reaction | Boc-T8 | None | 21.4 |
| 40 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Phe | MitsunobuReaction | Boc-T8 | None | 18.6 |
| 41 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAbu | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 10.6 |
| 42 | Thioester Strategy | H | Bts-Tle | Boc-(D)NMeAla | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 1.7 |
| 43 | Thioester Strategy | H | Bts-Ile | Boc-(D)NEtAla | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 0.4 |
| 44 | Thioester Strategy | H | Bts-Leu | Boc-acp | Boc-Phe | Mitsunobu Reaction | Boc-T1 | None | 7.8 |
| 45 | Thioester Strategy | H | Bts-Leu | Ddz-Acp | Ddz-Glu(OBut) | Mitsunobu Reaction | Ddz-T8 | None | 11.6 |
| 46 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Val | Mitsunobu Reaction | Boc-T8 | None | 13.6 |
| 47 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Leu | Mitsunobu Reaction | Boc-T8 | None | 9.2 |
| 48 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Nva | Mitsunobu Reaction | Boc-T8 | None | 17.5 |
| 49 | Thioester Strategy | H | Bts-Nva | Boc-Sar | Boc-(D)Ala | Reductive Amination | Boc-T9 | None | 7.5 |
| 50 | Thioester Strategy | H | Bts-Nva | Ddz-Sar | Ddz-(D)Glu(OBut) | Mitsunobu Reaction | Ddz-T9 | None | 10.1 |
| 51 | Thioester Strategy | H | Bts-Nva | Boc-Sar | Boc-Gly | Mitsunobu Reaction | Boc-T9 | None | 6.6 |
| 52 | Thioester Strategy | H | Bts-Nva | Boc-Sar | Boc-(D)Nle | Mitsunobu Reaction | Boc-T9 | None | 8.7 |
| 53 | Thioester Strategy | H | Bts-Nva | Ddz-Sar | Ddz-(D)Om(Boc) | Mitsunobu Reation | Ddz-T9 | None | 8.3 |
| 54 | Thioester Strategy | H | Bts-Nva | Ddz-Sar | Ddz-(D)Ser(But) | Mitsunobu Reaction | Ddz-T9 | None | 6.2 |
| 55 | Thioester Strategy | H | Bts-(D)Nva | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 8.0 |
| 56 | Thioester Strategy | H | Bts-(D)Nva | Boc-Sar | Boc-Phe | Mitsunobu Reaction | Boc-T9 | None | 93 |
| 57 | Thioester Strategy | H | Bts-Nva | Boc-Sar | Boc-Phe | Mitsunobu Reaction | Boc-T9 | None | 8.9 |
| 58 | Thioester Strategy, linear | Ac | Bts-Nva | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | No cyclization | 5.9 |
| 59 | Thioester Strategy | H | Bts-Nva | Boc-Ala | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 8.0 |
| 60 | Thioester Strategy | H | Bts-Nva | Boc-(D)Ala | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 13.1 |
| 61 | Thioester Strategy | H | Bts-Nva | Boc-Gly | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 8.4 |
| a | Thioester Strategy | H | Bts-Nva | Boc-Leu | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 7.0 |
| 63 | Thioester Strategy | H | Bts-Nva | Boc-(D)Leu | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 11.7 |
| 64 | Thioester Strategy | H | Bts-Nva | Boc-Phe | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 8.5 |
| 65 | Thioester Strategy | H | Bts-Nva | Boc-(D)Phe | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 8.6 |
| 66 | Thioester Strategy | H | Bts-Nva | Boc-Aib | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 15.8 |
| 67 | Thioester Strategy | H | Bts-Nva | Boc-Acp | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 11.7 |
| 68 | Thioester Strategy | H | Bts-Nva | Ddz-Lys | Boc-(D)Phe | Mitsuno Reaction | Ddz-T9 | None | 7.9 |
| 69 | Thioester Strategy | H | Bts-Nva | Ddz-(D)Lys(Boc) | Boc-(D)Phe | Mitsunobu Reaction | Ddz-T9 | None | 11.2 |
| 70 | Thioester Strategy | H | Bts-Nva | Ddz-Glu(OBut) | Boc-(D)Phe | Mitsunobu Reaction | Ddz-T9 | None | 10.0 |
| 71 | Thioester Strategy | H | Bts-Nva | Ddz-(D)Glu(OBut) | Boc-(D)Phe | Mitsunobu Reaction | Ddz-T9 | None | 9.9 |
| 72 | Thioester Strategy | H | Bts-Ala | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 5.2 |
| 73 | Thioester Strategy | H | Bts-Glu | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 6.8 |
| 74 | Thioester Strategy | H | Bts-Lys | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 6.0 |
| 75 | Thioester Strategy | H | Bts-Phe | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 9.5 |
| 76 | Thioester Strategy | H | Bts-Ser | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 15.1 |
| 77 | Thioester Strategy | H | Bts-Nva | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T12 | None | 12.6 |
| 78 | Thioester Strategy | H | Bts-Nva | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T27 | None | 6.8 |
| 79 | Thioester Strategy | H | Bts-Nva | Boc-NMeAla | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 1.9 |
| 80 | Thioester Strategy | H | Bts-Gly | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 1.3 |
| 81 | Thioester Strategy | H | Bts-Nva | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T1 | None | 5.3 |
| 82 | Thioester Strategy | H | Bts-Nva | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T3 | None | 3.9 |
| 83 | Thioester Strategy | H | Bts-Nva | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T16 | None | 1.8 |
| 84 | Thioester Strategy | H | Bts-Nva | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T4 | None | 2.6 |
| 85 | Thioester Strategy | H | Bts-Nva | Boc-Ser | Boc-(D)Phe | Mitsunobu Reaction | Boc-T5 | None | 4.7 |
| 86 | Thioester Strategy | H | Bts-Nva | Boc-Sar | Boc-(D)Phe | Mitsunobu Reaction | Boc-T14 | None | 0.4 |
| 87 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Ala | Mitsunobu Reaction | Boc-T9 | None | 4.8 |
| 88 | Thioester Strategy | H | Bts-Leu | Ddz-Acp | Ddz-Tyr(But) | Mitsumobu Reaction | Ddz-T9 | None | 18.8 |
| 89 | Thioester Strategy | H | Bts-Leu | Ddz-Acp | Ddz-Trp(Boc) | Mitsunobu Reaction | Ddz-T9 | None | 16.5 |
| 90 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Hfe | Mitsunobu Reaction | Boc-T9 | None | 8.5 |
| 91 | Thioester Strategy | H | Bts-Leu | Ddz-Acp | Ddz-Lys(Boc) | Mitsunobu Reaction | Ddz-T9 | None | 6.8 |
| 92 | Thioester Strategy | H | Bts-Leu | Ddz-Acp | Ddz-Glu (OBut) | Mitsunobu Reaction | Ddz-T9 | None | 9.1 |
| 93 | Thioester Strategy | H | Bts-Leu | Boc-Ala | Boc-Phe | Mitsunobu Reaction | Boc-T9 | None | 9.2 |
| 94 | Thioester Strategy | H | Bts-Leu | Boc-(D)Ala | Boc-Phe | Mitsunobu Reaction | Boc-T9 | None | 21.8 |
| 95 | Thioester Strategy | H | Bts-Leu | Boc-Aib | Boc-Phe | Mitsunobu Reaction | Boc-T9 | None | 193 |
| 96 | Thioester Strategy | H | Bts-(D)Leu | Boc-Atp | Boc-Phe | Mitsunobu Reaction | Boc-T9 | None | 7.0 |
| 97 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Bco-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 9.2 |
| 98 | Thioester Strategy | H | Bts-(D)Leu | Boc-Acp | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 15.3 |
| 99 | Thioester Strategy, linear | Ac | Bts-Leu | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T9 | No cyclization | 10.4 |
| 100 | Thioester Strategy | H | Bts-Ala | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T9 | None | 10.4 |
| 101 | Thioester Strategy | H | Bts-Nlo | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T9 | None | 19.0 |
| 102 | Thioester Strategy | H | Bts-Phe | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T9 | None | 15.8 |
| 103 | Thioester Strategy | H | Bts-Lys | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T9 | None | 12.9 |
| 104 | Thioester Strategy | H | Bts-Glu | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T9 | None | 93 |
| 105 | Thioester Strategy | H | Bts-Ser | Boc-Acp | Bac-Phe | Mitsunobu Reaction | Boc-T9 | None | 11.9 |
| 106 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T3 | None | 6.3 |
| 107 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T5 | None | 4.2 |
| 108 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Phe | Mitsnobu Reaction | Boc-T12 | None | 18.3 |
| 109 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T11 | None | 10.1 |
| 110 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Gly | Mitsunobu Reaction | Boc-T9 | None | 2.9 |
| 111 | Thioester Strategy | H | Bts-Leu | Boc-Acc | Boc-Phe | Mitsunobu Reaction | Boc-T9 | None | 3.0 |
| 112 | Thioester Strategy | H | Bts-Gly | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T9 | None | 3.2 |
| 113 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T9 | None | 16.9 |
| 114 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T16 | None | 2.9 |
| 115 | Thioester Strategy | H | Bts-Leu | Boe-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T6 | None | 0.5 |
| 116 | Thioester Strategy | H | Bts-Leu | Ddz-Acp | Ddz-Glu(Et) | Mitsunobu Reaction | Ddz-T8 | None | 11.8 |
| 117 | Thioester Strategy | H | Bts-Abu | Boc-(D)NMCAla | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 19.7 |
| 118 | Thioester Strategy | H | Bts-Leu | Boc-(D)NMeAla | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 21.0 |
| 119 | Thioester Strategy | H | Bts-Thr | Boc-(D)NMeAla | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 12.2 |
| 120 | Thioester Strategy | H | Bts-Thr(OMe) | Boc-(D)NMeAla | Boc-(D)Phe | Reductive Amination Reaction | Boc-T9 | None | 17.5 |
| 121 | Thioester Strategy | H | Bts-Acc | Boc(D)NMeAla | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 5.8 |
| 123 | Thioester Strategy | H | Bts-Phe(2-Cl) | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 22.1 |
| 123 | Thioester Strategy | H | Bts-Phe(3-Cl) | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 13.6 |
| 124 | Thioester Strategy | H | Bts-Phe(4-Cl) | Boc-Acp | Boc-Phe | Mitsunob Reaction | Boc-T8 | None | 9.8 |
| 125 | Thioester Strategy | H | Bts-Phe(4-F) | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 15.8 |
| 126 | Thioester Strategy | H . | Bts-Hfe | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 9.8 |
| 127 | Thioester Strategy | H | Bts-Tyr(OMe) | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 14.5 |
| 128 | Thioester Strategy | H | Bts-Bip | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 17.8 |
| 129 | Thioester Strategy | H | Bts-Dip | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 11.0 |
| 130 | Thioester Strategy | H | Bts-1Nal | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 18.8 |
| 131 | Thioester Strategy | H | Bts-2Nal | Boc-acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 15.0 |
| 131 | Thioester Strategy | H | Bts-3Pal | Boc-Acp | Boc-Phe | Reductive Amination Reaction | Boc-T8 | None | 17.0 |
| 133 | Thioester Strategy | H | Bts-4Pal | Boc-Acp | Boc-Phe | Reductive Amination Reaction | Boc-T8 | None | 9.5 |
| 134 | Thioester Strategy | H | Bts-4- ThzAla | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 12.0 |
| 135 | Thioester Strategy | H | Bts-2-Thi | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 4.0 |
| 136 | Thioester Strategy | H | Bts-Abu | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 13.3 |
| 137 | Thioester Strategy | H | Bts-Nva | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 19.0 |
| 138 | Thioester Strategy | H | Bts-Ile | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 13.8 |
| 139 | Thioester Strategy | H | Bts-Val | Boc-hcLeu | Boc-Phe | Reductive Amination Reaction | Boc-T8 | None | 18.4 |
| 140 | Thioester Strategy | H | Bts-Val | Boc-hc(4O)Leu | Boc-Phe | Reductive Amination Reaction | Boc-T8 | None | 16.7 |
| 141 | Thioester Strategy | H | Bts-Val | Boc-(4O)Acp | Boc-Phe | Reductive Amination Reaction | Boc-T8 | None | 15.7 |
| 142 | Thioester Strategy | H | Bts-Val | Boc-(3-4)InAcq | Boc-Phe | Reductive Amination Reaction | Boc-T8 | None | 17.0 |
| 143 | Thioester Strategy | H | Bts-Val | Boc-hc(4S)Leu | Boc-Phe | Reductive Amination Reaction | Boc-T8 | None | 16.1 |
| 144 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeVal | Boc-(D)Phe | Reductive Amination Reaction | Boc-T9 | None | 5.7 |
| 145 | Thioester Strategy | H | Bts-Ile | Boc-NMeVal | Boc-(D)Phe | Reductive Amination Reaction | Boc-T9 | None | 4.9 |
| 146 | Thioester Strategy | H | Bts-Ile | Boc-NMeNva | Boc-(D)Phe | Reductive Amination Reaction | Boc-T9 | None | 23.3 |
| 147 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeLeu | Boc-(D)Phe | Reductive Amination Reaction | Boc-T9 | None | 14.4 |
| 148 | Thioester Strategy | H | Bts-Ile | Boc-NMeLeu | Boc-(D)Phe | Reductive Amination Reaction | Boc-T9 | None | 25.4 |
| 149 | Thioester Strategy | H | Bts-Ile | Boc(D)NMeIle | Boc-(D)Phe | Reductive Amination Reaction | Boc-T9 | None | 11.4 |
| 150 | Thioester Strategy | H | Bts-Ile | Boc-NMeIle | Boc-(D)Phe | Reductive Amination Reaction | Boc-T9 | None | 7.0 |
| 151 | Thioester Strategy | H | Bts-Ile | Ddz-(D)Ser(But) | Boc-(D)Phe | Mitsunobu Raction | Ddz-T9 | None | 8.2 |
| 152 | Thioester Strategy | H | Bts-Ile | Ddz-NMeSer(But) | Boc-(D)Phe | Reaction | Ddz-T9 | None | 22.1 |
| 153 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Phe(4-Cl) | Mitsunobu Reaction | Boc-T8 | None | 13.5 |
| 154 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Phe(4-F) | Mitsunobu Reaction | Boc-T8 | None | 14.4 |
| 155 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Hfe | Mitsunobu Reaction | Boc-T8 | None | 13.5 |
| 156 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Tyr(OMe) | Mitsunobu Reaction | Boc-T8 | None | 132 |
| 157 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Bip | Mitsunobu Reaction | Boc-T8 | None | 20.2 |
| 158 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Dip | Mitsunobu Reaction | Boc-T8 | None | 11.3 |
| 159 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-2Nal | Mitsunobu Reaction | Boc-T8 | None | 20.5 |
| 160 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-2Pal | Reductive Amination Reaction | Boc-T8 | None | 2.8 |
| 161 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-3Pal | Reductive Amination Reaction | Boc-T8 | None | 16.5 |
| 162 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-4Pal | Reductive Amination Reaction | Boc-T8 | None | 16.7 |
| 163 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-4-ThzAla | Mitsunobu Reaction | Boc-T8 | None | 10.0 |
| 164 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-2-Thi | Mitsunobu Reaction | Boc-T8 | None | 12.5 |
| 165 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Abu | Mitsunobu Reaction | Boc-T8 | None | 13.0 |
| 166 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Ile | Mitsunobu Reaction | Boc-T8 | None | 11.1 |
| 167 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-allo-Ile | Mitsunobu Reaction | Boc-T8 | None | 15.3 |
| 168 | Thioester Strategy | H | Bts-Leu | Boc-Acp | Boc-Acp | Mitsunobu Reaction | Boc-T8 | None | 4.2 |
| 169 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Hfe | Mitsunobu Reaction | Boc-T9 | None | 17.0 |
| 170 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)3Pal | Reductive Amination Reaction | Boc-T9 | None | 14.5 |
| 171 | Thioester Strategy | H | Bts-Ile | Boc(D)NMeAla | Boc-(D)4Pal | Reductive Amination Reaction | Boc-T9 | None | 16.4 |
| 172 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-Abu | Mitsunobu Reaction | Boc-T9 | None | 12.0 |
| 173 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Nva | Mitsunobu Reaction | Boc-T9 | None | 16.8 |
| 174 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Val | Mitsunobu Reaction | Boc-T9 | None | 13.9 |
| 175 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Ile | Mitsunobu Reaction | Boc-T9 | None | 15.1 |
| 176 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Leu | Mitsunobu Reaction | Boc-T9 | None | 9.4 |
| 177 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Phe | Mitsunobu Reaction | Boc-T11 | None | 93 |
| 178 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Phe | Mitsunobu Reaction | Bac-T28 | None | 11.2 |
| 179 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Phe | Mitsunobu Reaction | Boc-T29 | None | 8.6 |
| 180 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Phe | Mitsunobu Reaction | Boc-T30 | None | 10.0 |
| 181 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe | Mitsunobu Reaction | TA1+TB7 | None | 49.5 |
| 182 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe | Mitsunobu Reaction | TA1+TB7 | Hydrogenation | 47.7 |
| 183 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe | Mitsunobu Reaction | TA2+TB7 | None | 59.0 |
| 184 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe | Mitsunobu Reaction | TA2+TB7 | Hydrogenation | 50.6 |
| 185 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe | Mitsunobu Reaction | TA1+TB6 | None | 12.4 |
| 186 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe | Mitsunobu Reaction | TA2+TB6 | None | 3.0 |
| 187 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe | Mitsunobu Reaction | TA1+TB3 | None | 30.9 |
| 188 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe | Mitsunobu Reaction | TA2+TB3 | None | 34.9 |
| 189 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe | Mitsunobu Reaction | TA2+TB3 | Hydrogenation | 24.0 |
| 190 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe | Mitsunobu Reaction | TA1+TB4 | Hydrogenation | 32.5 |
| 191 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe | Mitsunobu Reaction | TA2+TB4 | None | 32.2 |
| 192 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe | Mitsunobu Reaction | TA2-TB4 | Hydrogenation | 22.2 |
| 193 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe | Mitsunobu Reaction | TA1+TB1 | None | 47.7 |
| 194 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe | Mitsunobu Reaction | TA1+TB1 | Hydrogenation | 23.7 |
| 195 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe | Mitsunobu Reaction | TA2+TB1 | None | 66.8 |
| 196 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Phe | Mitsunoba Reaction | Ddz- T32(Boc) | None | 13.0 |
| 197 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Phe | Mitsubobu Reaction | Ddz-T31(But) | None | 10.6 |
| 199 | Thioester Strategy | H | Bts-Val | Boc-Acc | Boc-Phe | Reductive Amination Reaction | Boc-T8 | None | 16.0 |
| 200 | Thioester Strategy | H | Bts-Val | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | None | 14.7 |
| 201 | Thioester Strategy | Me | Bts-Nva | Boc-(D)NMeAla | Boc-(D)Phe | Reductive Amination Reaction | Boc-T9 | Reductive amination reaction with formaldehyde | 32.4 |
| 202 | Thioester Strategy | Ac | Bts-Nva | Boc-(D)NMeAla | Boc-(D)Phe | Reductive Amination | Boc-T9 | Acetylation | 14.2 |
| 203 | Thioester Strategy | Me | Bts-Leu | Boc-Acp | Boc-Phe | Reductive Animation Reaction | Boc-T8 | Reductive amination reactionwith formaldehyde | 7.7 |
| 204 | Thioester Strategy | Ac | Bts-Leu | Boc-Acp | Boc-Phe | Reductive Aminalion Reaction | Boc-T8 | Acelylation | 11.5 |
| 205 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Abu | Mitsunobu Reaction | Boc-T9 | None | 19.9 |
| 206 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Phe | Mitsunobu Reaction | Boc-T34 | None | 26.2 |
| 207 | Thioester Strategy | H | Bts-Val | Boc-hc(4N)Leu | Boc-Phe | MitsunobuReaction | Boc-T9 | None | <1 |
| 208 | Thioester Strategy | H | Bts-allo-Ile | Boc-Acp | Boc-Phe | Mitsunobu Reaction | Boc-T8 | 16.7 | |
| 209 | Thioester Strategy | H | Bts-Ile | Boc-(D)NMeAla | Boc-(D)allo-Ile | MitsunobuReaction | Boc-T9 | None | 8.6 |
| 210 | Thioester Strategy | H | Bts-2Pal | Boc-Acp | Boc-Phe | Reductive Amination Reaction | Boc-T8 | None | 1.1 |
| 211 | Thioester Strategy | H | Bts-Val | Boc-hc(4N)Leu | Boc-Phe | Reductive Animation Reaction | Boc-T8 | None | <1 |
| 212 | Thioester Strategy | H | Bts-Ile | Boc-NMeAbu | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 1.2 |
| 213 | Thioester Strategy | H | Bts-Ile | Boc-(D)4- Thz | Boc-(D)Phe | Reductive Amination Reaction | Boc-T9 | None | 1.0 |
| 214 | RCM Snategy | H | Fmoc-Dc | Fmoc(D)NMeAla | Fmoc(D)Phe | Mitsunobu Reaction | TA1+TB3 | Hydrogenation | 14.9 |
| 215 | Isolated from synthesis of compound 151 | ||||||||
| 216 | Thioester Strategy | H | Bts-Val | Boc-Acc | Boc-Phe | Reductive Amination Reaction | Boc-T9 | None | 11.6 |
| 218 | Thioester Strategy | H | Bts-hcLeu | Boc-Acp | Boc-Phe | MitsunabuReaction | Boc-T8 | None | 0.1 |
| 219 | Acetic Acid Cyclization | H | Bts-His-(Mts) | Boc-Acp | Boc-Phe | Reductive Amination Reaction | Boc-T8 | None | 19.0 |
| 220 | Thioester Strategy | H | Bts-Nva | Boc-Pro | Boc-(D)Phe | Mitsunobu Reaction | Boc-T9 | None | 15.0 |
| 221 | Thioester Strategy | H | Bts-Nva | Boc-(D)Pro | Boc-(D)Phe | MitsunobuReaction | Boc-T9 | None | 14.9 |
| 222 | Thioeater Strategy | H | Bts-Leu | Boo-Pro | Boc-Phe | Mitsunobu Reaction | Boc-T9 | None | 11.7 |
| 223 | Thoester Strategy | H | Bts-Leu | Boc(D)Pro | Boc-Phe | Mitsunobu Reaction | Boc-T9 | None | 20.4 |
| 224 | RCM Strategy | H | Fmoc-Ile | Fmoc-(D)Hyp(But) | Fmoc-(D)Phe | Mitsunobu Reaction | TA1+TB2 | Hydrogenation | 8.2 |
| 225 | Thioester Strategy | H | Bts-Pro | Boc-(D)NMeAla | Boc-(D)Phe | Reductive Animation Reaction | Boc-T9 | None | 10.0 |
| 226 | Thioester Strategy | H | Bts-Pip | Boc-(D)NMeAla | Boo-(D)Phe | Reductive Amination Reaction | Boc-T9 | None | 13.5 |
| *Overall Yield: based on theoretical resin loading, starting from ∼500 mg resin | |||||||||
| ** Addidonal reactions conducted post-cyclization excpet where otherwise noted, to reach the desired product | |||||||||
| Compound | Macrocyclic Assembly Method | BB1 | BB2 | BB3 | Tether | Tether Attachment | Additional Reaction** | Amount (mg)* | Yield (%)* |
| 298 | Thioester Stratégie | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | Boc-T33a | MitsunobuReaction | None | 29.7 | 12 |
| 299 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-Cl) | Boc-T9 | Mitsunobu Reaction | None | 54.1 | 17 |
| 301 | ThioesterStrategy | Bts-Tyr(But) | Boc-Acp | Boc-Phe(3-Cl) | Ddz-T8 | Mitsunobu Reaction | None | 36.5 | 10 |
| 303 | Thioester Strategy | Bts-Val | Boc-(40)Acp | Boc-Phe | Boc-T8 | Mitsunobu Reaction | None | 60 | 16 |
| 305 | Thioester Strategy | Bts-Ile | Boc-(D)NMeAla | Boc-(D)His(Mts) | Boc-T9 | Reductive Amination | None | 110 | 31 |
| 306 | Thioester Strategy | Bts-Cpg | Boc-(D)MMeAla | Boc-(D)Phe(4-F) | Boc-T11 | Mitsunobu Reaction | None | 51 | 8 |
| 307 | RCM Strategy | Fmoc-Cpg | Fmoc-(D)NMeAla | Fmo-(D)Phe(4-F) | TA2+TB6 | Mitsunobu Reaction | None | 13.6 | 10 |
| 308 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-Cl) | Boc-T8 | Mitsunobu Reaction | None | 43.8 | 14 |
| 309 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | Boc-T9 | Mltsunobu Reaction | None | 38.2 | 13 |
| 310 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(n)3-Thi | Boc-T9 | Mitsnunobu Reaction | None | 333 | 11 |
| 311 | Thioester Strategy | Boc-Cpg | Boc-(D)NMeAla | Boc-(D)Tyr(3-tBu) | Boc-T9 | Reductive Amination Reaction | None | 18.6 | 5.1 |
| 312 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(2-F) | Boc-T9 | Mitsunobu Reaction | None | 42.9 | 14 |
| 313 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(3-F) | Boc-T9 | Mitsunobu Reaction | None | 38.2 | 13 |
| 314 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(2,4-diCl) | Boc-79 | Mitsunobu Reaction | None | 39.7 | 12 |
| 315 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(3,4-diCl) | Boc-T9 | Mitsunobu Reaction | None | 35.3 | 11 |
| 316 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(3,4-diF) | Boc-T9 | MitsunobuReaction | None | 40.7 | 13 |
| 317 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(3,5-diF) | Boc-T9 | Mitsunobu Reaction | None | 37.6 | 12 |
| 318 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(pentaF) | Boc-T9 | Mitsunobu Reaction | None | 36.1 | 11 |
| 319 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-Br) | Boc-T9 | MitsunobuReaction | None | 37.5 | 11 |
| 320 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-I) | Boc-T9 | Mitsunobu Reaction | None | 43.4 | 12 |
| 321 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-CN) | Boc-T9 | Mitsunobu Reaction | None | 34.5 | 11 |
| 322 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-CF3) | Boc-T9 | Mitsunobu Reaction | None | 40.8 | 12 |
| 313 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(3,4-diOMe) | Boc-T9 | Mitsunobu Reaction | None | 27.3 | 8 |
| 324 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeA)a Boc-(D)NMeAla | Boc-(D)Trp | Boc-T9 | Mitsunobu Reaction | None | 38.6 | 12 |
| 325 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-F) | Boc-T8 | Mitsunobu Reaction | None | 33.7 | 10 |
| 326 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-Br) | Boc-T8 | Mitsunobu Reaction | None | 37.5 | 10 |
| 327 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3,5-diF) | Boc-T8 | Mitsunobu Reaction | None | 35.2 | 11 |
| 328 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-OMe) | Boc-T8 | Mitsunobu Reaction | None | 31.5 | 10 |
| 329 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-CN) | Boc-T8 | Mitsunobu Reaction | None | 26.9 | 8 |
| 330 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3,4-diCl) | Boc-T8 | Mitsunobu Reaction | None | 38.4 | 11 |
| 331 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3,4-diF) | Boc-T8 | Mitsunobu Reaction | None | 37 | 11 |
| 332 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-CF3) | Boc-T8 | MitsunobuReaction | None | 30.6 | 9 |
| 333 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-3-Thi | Boc-T8 | MitsunobuReaction | None | 49.6 | 18 |
| 334 | Thioester Strategy | Bts-Acp | Boc-Aib | Boc-Phe(3-Cl) | Boc-T8 | Mitsunobu Reaction | None | 32 | 11 |
| 335 | Thioester Strategy | Boc-Thr(OMe) | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | Boc-T9 | Reductive Amination Reaction | None | 62.2 | 18 |
| 336 | Thioester Strategy | Bts-Ser(OMe) | Boc-(D) | Boc-(D)Phe(4-F) | Boc-T9 | Mitsunobu Reaction | None | 37.7 | 12 |
| 337 | Thioester Strategy | Boc-Dap(Cbz) | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | Boc-T9 | Reductive Amination Reaction | Hydrogenolysia | 67.5 | 7 |
| 338 | Thioester Strategy | Bts-Dab(Boc) | Boc-(D)NMeAla | Boc-(D)Phe( 4-F) | Boc-T9 | Mitsunobu Reaction | None | 60 | 20 |
| 339 | Thioester Strategy | Bts-Om(Boc) | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | Boc-T9 | Mitsunobu Reaction | None | 6.3 | 20 |
| 340 | Thioester Strategy | Boc-Met | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | Boc-T9 | Reductive Animation | None | 14.4 | 4 |
| 341 | Thioester Strategy | Bts-3-Thi | Boc-Acp | Boc-Phe(3-Cl) | Boc-T8 | Mitsunobu Reaction | None | 48 | 14 |
| 342 | Thioester Strategy | Bts-Phe(2-CN) | Boc-Acp | Boc-Phe(3-(Cl) | Boc-T8 | Mitsunohu Reaction | None | 37.7 | 10 |
| 343 | Thioester Strategy | Bts-Phe(2-OMe) | Boc-Acp | Boc-Phe(3-Cl) | Boc-T8 | Mitsunobu Reaction | None | 91.3 | 25 |
| 344 | Thioester Strategy | Bts-Ser(OMe) | Boc-Acp | Boc-Phe(3-Cl) | Boc-T8 | Mitsunobu Reaction | None | 22.1 | 7 |
| 345 | Thioester Strategy | Bts-Ile | Boc-(40)Acp | Boc-Phe(3-Cl) | Boc-T8 | Mitsunobu Reaction | Note | 48 | 13 |
| 346 | Thioester Strategy | Bts-Cpg | Boc-Acp | Boc-Phe(3-Cl) | Boc-T8 | MitsunobuReaction | None | 52.1 | 16 |
| 347 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Ser(OBzl) | Boc-T8 | Mitsunobu Reaction | None | 17.1 | 6 |
| 348 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Ser(OBzl) | Boc-T8 | Mitsunobu Reaction | None | 104.4 | 33 |
| 349 | Thioester Strategy | Bts-Aib | Boc-Acp | Boc-Phe(3-Cl) | Boc-T8 | Mitsunobu Reaction | None | 23.6 | 7 |
| 350 | Thioester Strategy | Bts-Aib | Boc-Aib | Boc-Phe(3-Cl) | Boc-T8 | Mitsunobu Reaction | None | 44 | 15 |
| 351 | Thioester Strategy | Bts-Acp | Boc-(D)Ala | Boc-Phe(3-Cl) | Boc-T8 | Mitsunobu Reaction | None | 39.1 | 13 |
| 352 | Thioester Strategy | Bts-Acp | Boc-Ala | Boc-Phe(3-Cl) | Boc-T8 | Mitsunobu Reaction | None | 15.7 | 5 |
| 353 | RCM Strategy | Fmoc-Ile | Fmoc-(D)NMeAla | Fmoc-(D)Phe(4-F) | TA1+TB4 | Mitsunobu Reaction | None | 47.8 | 25 |
| 354 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | Boc-T65 | Mitsunobu Reaction | None | 26.8 | 9 |
| 355 | Thioester Strategy | Boc-(D)MMeAla | Boc-(D)Phe(4-F) | Boc-T70 | Mitsunobu Reaction | None | 36.8 | 12 | |
| 356 | ThioesterStrategy | Bts-Cpg | Boc-tnWMeAh | Boc-(D)Phe(4-F) | Boc-T72 | MitsunobuReaction | None | 10 | 3 |
| 357 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | Ddz-T74(Boc) | Mitsunobu Reaction | None | 41.8 | 11 |
| 358 | RCM Strategy | Fmoc-Ile | Fmoc-Acp | Fmoc-Phe(3-Cl) | TA1+TB4 | Mitsunobu Reaction | None | 26.1 | 26 |
| 359 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-Cl) | Boc-T58 | Mitsunobu Reaction | None | 43.6 | 12 |
| 360 | RCM Strategy | Fmoc-Ile | Fmoc-Acp | Fmoc-Phe(3-Cl) | TA2+TB6 | Mitsunobu Reaction | None | 36.3 | 18 |
| 361 | RCM Strategy | Fmoc-Ile | Fmoc-Acp | Fmoc-Phe(3-Cl) | TA2+TB4 | Mitsunobu Reaction | None | 36.3 | 32 |
| 362 | RCM Strategy | Fmoc-Ile | Fmoc-Acp | Fmoc-Phe(3-Cl) | TA2+TB1 | MitsunobuReattion | Hydrogenation | 59.4 | 57 |
| 363 | RCM Strategy | Fmoc-Ile | Fmoc-Acp | Fmoc-Phe(3-Cl) | TA2+TB7 | Mitsunobu Reaction | Hydrogenation | 41.8 | 44 |
| 364 | RCM Strategy | Fmoc-Ile | Fmoc-Acp | Fmoc-Phe(3-Cl) | TA2+TB7 | Mistunobu Reaction | Hydrogenation | 49.1 | 51 |
| 365 | RCM Strategy | Fmoc-Ile | Fmoc-Acp | Fmoc-Phe(3-Cl) | TA1+TB10 | Mitsunobu Reaction | Hydrogenation | 31.2 | 35 |
| 366 | RCM Strategy | Fmoc-Ile | Fmoc-Acp | Fmoc-Phe(3-Cl) | TA1+TB7 | Mitsunobu Reaction | Hydrogenation | 33.3 | 37 |
| 367 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boo-(D)Phe(4-F) | Boc-T33b | Mitsunobu Reaction | None | 21.1 | 6 |
| 368 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-Cl) | Boc-T33a | Mitsunobu Reaction | None | 21.8 | 10 |
| 369 | Thioester Strategy Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-Cl) | Boc-T9 | MitsunobuReaction | None | 21.1 | 4 |
| 370 | RCM Strategy | Fmoc-Ile | Fmoc-Acp | Fmoc-Phe(3-Cl) | TA2+TB6 | Mitsunobu Reaction | Hydrogenation | 8.9 | NA |
| 371 | RCM Strategy | Fmoc-Ile | Fmoc-Acp | Fmoc-Phe(3-Cl) | TA2+TB4 | Mitsunobu Reaction | Hydrogenation | 9.9 | NA |
| 372 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | Boc-T69 | MitsunobuReaction | None | 30.9 | 10 |
| 373 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe( 4-F) | Boc-T71 | Mitsunobu Reaction | None | 34.9 | 11 |
| 374 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | Ddz-T73(Boc) | MitsunobuReaction | None | 42.7 | 12 |
| 375 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-f) | Doc-T39 | Mitsunobu Reaction | None | 22.3 | 7 |
| 376 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-F | Boc-T40 | Mitsunobu Reaction | None | 7.5 | 2 |
| 377 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc(D)Phe(4-F) | Boc-T10 | Mitsunobu Reaction | None | 14.6 | 5 |
| 378 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)PhE(4-F) | Boc-T58 | Mitsunobu Reaction | None | 65.3 | 21 |
| 379 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | Boc-T67 | Mitsunobu Reaction | None | 363 | 12 |
| 380 | Thioester Strategy | Btd-Ile | Boc-Acp | Hoc-Phe(3-Cl) | Boc-T66 | MitsunobuReaction | None | 16.5 | 5 |
| 381 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-Cl) | Boc-T65 | Mitsunobu Reaction | None | 22.5 | 7 |
| 382 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-Cl) | Boc-T70 | Mitsunobu Reaction | None | 24.5 | 7 |
| 383 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-Cl) | Boc-T69 | Mitsunobu Reaction | None | 25.1 | 7 |
| 384 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-Cl) | Boc-T71 | Mitsunobu Reaction | None | 21.9 | 6 |
| 385 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-Cl) | Boc-Tl1 | Mitsunobu Reaction | None | 23.3 | 7 |
| 386 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-Cl) | Boc-T39 | Mitsunobu Reaction | None | 12 | 4 |
| 387 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-Cl) | Boc-T68 | Mitsunobu Reaction | None | 17.1 | 5 |
| 388 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-Cl) | Boc-T67 | Mitsunobu Reaction | None | 30 | 9 |
| 389 | Thioester Strategy | Bts-Cp8 | Boc-(D) NMeAla | Boc-(D)Phe(4-F) | Boc-T68 | Mitsunobu Reaction | None | 16.1 | 5 |
| 390 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-Cl) | Boc-T18 | Mitsunobu Reaction | None | 28.7 | 10 |
| 391 | Thioester Strategy | Bts-Cpg | Boc(D)NMeAla | Boc-(D)Phe(3,4,5-triF) | Boc-T9 | Mitsunobu Reaction | None | 45.4 | 14 |
| 392 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-Cl) | Boc-T40 | Mitsunobu Reaction | None | 43 | 1 |
| 393 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-Cl) | Boc-T45 | Mitsunobu Reaction | None | 2.1 | 1 |
| 394 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | Boc-T38 | Mitsunobu Reaction | None | 3.7 | 1 |
| 395 | RCM Strategy | Fmoc-Ile | Fmoc-(4N)Acp | Fmoc-Phe(3-Cl) | TA1+TB2 | Mitsunobu Reaction | Hydrogenation | 0.2 | 0.2 |
| 396 | Thioester Strategy | Bts-Acp | Boc-(D)NMeAla | Boc-Phe(3-Cl) | Boc-T8 | Mitsunobu Reaction | None | 2.3 | 1 |
| 397 | Thioester Strategy | Bts-Acp | NMeAla | Boc-Phe(3-Cl) | Boc-T8 | Mitsunobu Reaction | None | 1.4 | 0.4 |
| 398 | RCM Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | TA2+TB6 | Mitsunobu Reaction | Hydrogenation | 3.8 | 1 |
| 399 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-Cl) | Boc-T33b | Mitsunobu Reaction | None | 5.7 | 4 |
| 400 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | Boc-T66 | Mitsunobu Reaction | None | 28.3 | 9 |
| 401 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | Boc-T8 | Mitsunobu Reaction | None | 31.5 | 11 |
| 402 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Phe(3-Cl) | Boc-T8 | Mitsunobu Reaction | None | 29.1 | 9 |
| 403 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe | Boc-T33a | Mitsunobu Reaction | None | 103 | 11 |
| 405 | Thioester Strategy | Bts-Nva | Boc-(D)NMelAa | Boc-(D)Phe(4-F) | Boc-T33a | Mitsunobu Reaction | None | 38.8 | 12 |
| 406 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | Boc-T75a | Mitsunobu Reaction | None | 45 | 13 |
| 407 | Thioester Strategy | Bts-Ile | Boc-(D)NMeAla | Boc-(D)Phe(4-F) | Boc-T33a | Mitsunobu Reaction | None | 138.5 | 16 |
| 408 | Thioester Strategy | Bts-Ile | Boc(D)NMeAla | Boc-(D)Phe(4-F) | Boc-T75a | Mitsunobu Reaction | None | 146.2 | 21 |
| 409 | Thioester Strategy | Bts-Val | Boc(D)NMeAla | Boc-(D)Phe(4-F) | Boc-T33a | Mitsunobu Reaction | None | 125.7 | 19 |
| 410 | RCM Strategy | Bts-Nva | Boc(D)NMeAla | Boc-(D)Phe | Boc-T75a | Mitsunobu Reaction | None | 36 | 11 |
| 415 | Thioester Strategy | Bts-Cpg | Boc(D)NMeAla | Boc-(D)Phe(4-Cl) | Boc-T33a | Mitsunobu Reaction | None | 127.5 | 12 |
| 417 | Thioester Strategy | Bts-Cpg | Boc(D)NMeAla | Boc-(D)Phe(4-Cl) | Boo-T69 | Mitsunobu Reaction | None | 45.6 | 13 |
| 430 | Thioester Strategy | Bts-Cpg | Boc(D)NMeAla | Boc-(D)Phe(4-Cl) | Boc-T7&) | Mitsunobu Reaction | None | 50.7 | 14 |
| 431 | Thioester Strategy | Bts-Ile | Boc(D)NMeAla | Boc-(D)Phe | Boc-T33a | Mitsunobu Reaction | None | 57.9 | 17 |
| 432 | Thioester Strategy | Bts-Ile | Boc(D)NMeAla | Boc-(D)Phe(4-Cl) | Boc-T33a | Mitsunobu Reaction | None | 141 | 13 |
| * Overall Yield: based on theoretical resin loading starting from ∼500 mg resin | |||||||||
| ** Additional reactions conducted post-cyclization to reach the desired product | |||||||||
| Compound | Macrocyclic Assembly Method | BB1 | BB2 | BB3 | Tether | Tether Attachment Tether Attachment | Additional Reaction** | Amount (mg) | Yield (%) |
| 435 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe | Boc-T75a | Mitsunobu Reaction | None | 29.7 | 9 |
| 436 | Thioester Strategy | Bts-Cpg | Boc-(D)NMeAla | Boc-(D)Phe | Boc-T76 | Mitsunobu Reaction | None | 37.8 | 11 |
| 437 | Bts-Acp | Boc-Acp | Boc-Phe(3-Cl) | Boc-T8 | Mitsunobu Reaction | None | 8.3 | 2 | |
| 438 | Thioester Strategy Thioester Strategy | Bts-Leu | Boc-Acp | Boc-Phe(3-Cl) | Boc-T33a | Mitsunobu Reaction | None | 51.2 | 5 |
| 439 | Thioester Strategy | Bts-Ile | Boc-(3/4O)Acp | Boc-Phe(3-Cl) | Boc-T8 | Mitsunobu Reaction | None | 5.9 | 2 |
| 440 | RCM Strategy | Bts-Ile | Fmoc-(D)NMeSer(O0Bzl) | Fmoc-(D)Phe(4-F) | TA1+TB2 | Mitsunobu Reaction | Hydrogenation | 2.7 | 2 |
| 441 | Thioester Strategy | Bts-Ile | Ddz-Acp | Ddz-Phe(4-CO2tBu) | Ddz-T8 | Mitsunobu Reaction | None | 9.8 | 3 |
| 442 | Thioester Strategy | Bts-Ile | Ddz-Acp | Ddz-Ser(But) | Ddz-T8 | Mitsunobu Reaction | None | 17.1 | 6 |
| 443 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-Ser(OMe) | Boc-T8 | Mitsunobu Reaction | None | 19 | 7 |
| 444 | Thioester Strategy | Boc-Leu | Boc-Acp | Boc-His(Mts) | Boc-T8 | Reductive Amination Reaction | None | 21 | 7 |
| 445 | Thioester Strategy | Bts-Ile | Ddz-(D)NMeAla | Ddz-(D)Tyr(But) | Boc-T9 | Mitsunobu Reaction | None | 15.5 | 5 |
| 446 | Thioester Strategy | Bts-Cpg | Boc-(D)NMcAla | Boc-(D)Phe(4-F) | Boc-T45 | Mitsunobu Reaction | None | 3.2 | 1 |
| 447 | RCM Strategy | Bts-Ile | Fmoc-Acp | Fmoc-Phe(3-Cl) | TA1+TB9 | Mitsunobu Reaction | Hydrogenation | 18.2 | 21 |
| 448 | RCM Shstegy | Bts-Nva | Fmoc-Sar | Fmoc-(DL)αMePhe | TA1+TB2 | Mitsunobu Reaction | Hydrogenation | 4.8 | 2 |
| 449 | Thioester Strategy | Bts-Ile | Boc-Acp | Boc-177 | Mitsunobu Reaction | None | 2.6 | 1 | |
| * Overall Yield: based on theoretical resin loading starting from ∼500 mg resin | |||||||||
| **Additional reactions conducted post-cyclization to obtain the desired product | |||||||||
| Compound | Molecular Formula | MW Calc (g/mol) | MS [(M+H)+] Found |
| 1 | C29H40N4O4 | 508.7 | 509 |
| 2 | C29H40N4O4 | 508.7 | 509 |
| 3 | C28H38N4O4 | 494.6 | 495 |
| 4 | C29H40N4O4 | 508.7 | 509 |
| 5 | C29H40N4O4 | 508.7 | 509 |
| 6 | C30H39N5O4 | 533.7 | 534 |
| 7 | C28H38N4O5 | 510.6 | 511 |
| 8 | C32H42N4O4 | 546.7 | 547 |
| 9 | C31H42N404 | 534.7 | 535 |
| 10 | C28H38N4O4 | 494.6 | 495 |
| 11 | C28H36N4O4 | 492.6 | 493 |
| 12 | C28H45N4O4 | 501.7 | 502 |
| 13 | C30H40N4O4 | 520.7 | 521 |
| 14 | C29H38N4O4 | 506.6 | 507 |
| 15 | C30H42N4O4 | 522.7 | 523 |
| 16 | C30H42N4O4 | 522.7 | 523 |
| 17 | C29H38N4O4 | 506.6 | 507 |
| 18 | C32H40N4O4 | 544.7 | 545 |
| 19 | C29H38N4O4 | 506.6 | 507 |
| 20 | C32H41N404Cl | 581.1 | 581 |
| 21 | C32H41N404Cl | 581.1 | 581 |
| 22 | C36H44N4O4 | 596.8 | 597 |
| 23 | C30H41N404Cl | 557.1 | 557 |
| 24 | C30H41N4O4Cl | 557.1 | 557 |
| 25 | C30H41N4O4Cl | 557.1 | 557 |
| 26 | C30H41N4O4F | 540.7 | 541 |
| 27 | C31H44N4O5 | 552.7 | 553 |
| 28 | C36H46N4O4 | 598.8 | 599 |
| 29 | C36H46N4O4 | 598.8 | 599 |
| 30 | C34H44N4O4 | 572.7 | 573 |
| 31 | C34H44N4O4 | 572.7 | 573 |
| 32 | C29H41N5O4 | 523.7 | 524 |
| 33 | C27H39N5O4S | 529.7 | 530 |
| 34 | C28H40N4O4S | 528.7 | 529 |
| 35 | C31H44N4O4 | 536.7 | 537 |
| 36 | C31H44N4O4 | 536.7 | 537 |
| 37 | C31H42N4O3 | 518.7 | 519 |
| 38 | C31H44N4O3 | 520.7 | 521 |
| 39 | C29H38N4O4 | 506.6 | 507 |
| 40 | C30H40N4O4 | 520.7 | 521 |
| 41 | C31H44N4O4 | 536.7 | 537 |
| 42 | C30H42N4O4 | 522.7 | 523 |
| 43 | C31H44N4O4 | 536.7 | 537 |
| 44 | C25H38N4O4 | 458.6 | 459 |
| 45 | C28H40N4O6 | 528.6 | 529 |
| 46 | C28H42N4O4 | 498.7 | 499 |
| 47 | C29H44N4O4 | 512.7 | 513 |
| 48 | C28H42N4O4 | 498.7 | 499 |
| 49 | C22H34N4O4 | 418.5 | 419 |
| 50 | C24H36N4O6 | 476.6 | 477 |
| 51 | C21H32N4O4 | 404.5 | 405 |
| 52 | C25H40N4O4 | 460.6 | 461 |
| 53 | C24H39N5O4 | 461.6 | 462 |
| 54 | C22H34N4O5 | 434.5 | 435 |
| 55 | C28H38N4O4 | 494.6 | 495 |
| 56 | C28H38N4O4 | 494.6 | 495 |
| 57 | C28H38N4O4 | 494.6 | 495 |
| 58 | C30H43N5O5 | 553.7 | 554 |
| 59 | C28H38N4O4 | 494.6 | 495 |
| 60 | C28H38N4O4 | 494.6 | 495 |
| 61 | C27H36N4O4 | 480.6 | 481 |
| 62 | C31H44N4O4 | 536.7 | 537 |
| 63 | C31H44N4O4 | 536.7 | 537 |
| 64 | C34H42N4O4 | 570.7 | 571 |
| 65 | C34H42N4O4 | 570.7 | 571 |
| 66 | C29H40N4O4 | 508.7 | 509 |
| 67 | C31H42N4O4 | 534.7 | 535 |
| 68 | C31H45N5O4 | 551.7 | 552 |
| 69 | C31H45N5O4 | 551.7 | 552 |
| 70 | C30H40N4O6 | 552.7 | 553 |
| 71 | C30H40N4O6 | 552.7 | 553 |
| 72 | C26H34N4O4 | 466.6 | 467 |
| 73 | C28H36N4O6 | 524.6 | 525 |
| 74 | C29H41N5O4 | 523.7 | 524 |
| 75 | C32H38N4O4 | 542.7 | 543 |
| 76 | C26H34N4O5 | 482.6 | 483 |
| 77 | C31H36N4O3S | 544.7 | 545 |
| 78 | C23H34N4O4 | 430.5 | 431 |
| 79 | C29H41N4O4 | 509.7 | 510 |
| 80 | C25H33N4O4 | 453.6 | 454 |
| 81 | C21H33N4O4 | 405.5 | 406 |
| 82 | C23H33N4O3 | 413.5 | 414 |
| 83 | C23H35N4O3 | 415.5 | 416 |
| 84 | C25H33N4O3 | 437.6 | 438 |
| 85 | C26H35N4O3 | 451.6 | 452 |
| 86 | C22H30N5O3S | 444.6 | 445 |
| 87 | C26H40N4O4 | 472.6 | 473 |
| 88 | C32H44N4OS | 564.7 | 565 |
| 89 | C34H45N5O4 | 587.8 | 588 |
| 90 | C33H46N4O4 | 562.7 | 563 |
| 91 | C29H47N5O4 | 529.7 | 530 |
| 92 | C28H42N4O6 | 530.7 | 531 |
| 93 | C29H40N4O4 | 508.7 | 509 |
| 94 | C29H40N4O4 | 508.7 | 509 |
| 95 | C30H42N4O4 | 522.7 | 523 |
| 96 | C32H44N4O4 | 548.7 | 549 |
| 97 | C32H44N4O4 | 548.7 | 549 |
| 98 | C32H44N4O4 | 548.7 | 549 |
| 99 | C34H49N5O5 | 607.8 | 608 |
| 100 | C29H38N4O4 | 506.6 | 507 |
| 101 | C32H44N4O4 | 548.7 | 549 |
| 102 | C35H42N4O4 | 582.7 | 583 |
| 103 | C32H45N5O4 | 563.7 | 564 |
| 104 | C31H40N4O6 | 564.7 | 565 |
| 105 | C29H38N4O5 | 522.6 | 523 |
| 106 | C27H38N403 | 466.6 | 467 |
| 107 | C30H40N4O3 | 504.7 | 505 |
| 108 | C35H42N4O3S | 598.8 | 599 |
| 109 | C31H43N5O4 | 549.7 | 550 |
| 110 | C25H39N4O4 | 459.6 | 460 |
| 111 | C30H40N4O4 | 520.7 | 521 |
| 112 | C28H37N4O4 | 493.6 | 494 |
| 113 | C32H45N4O4 | 549.7 | 550 |
| 114 | C27H41N4O3 | 469.6 | 470 |
| 115 | C30H41N4O3 | 505.7 | 506 |
| 116 | C30H44N4O6 | 556.7 | 557 |
| 117 | C28H38N4O4 | 494.6 | 495 |
| 118 | C30H42N4O4 | 522.7 | 523 |
| 119 | C28H38N4O5 | 510.6 | 511 |
| 120 | C29H40N4O5 | 524.7 | 525 |
| 121 | C28H36N4O4 | 492.6 | 493 |
| 122 | C35H39N4O4Cl | 615.2 | 615 |
| 123 | C35H39N4O4Cl | 615.2 | 615 |
| 124 | C35H39N4O4Cl | 615.2 | 615 |
| 125 | C35H39N4O4F | 598.7 | 599 |
| 126 | C36H42N4O4 | 594.7 | 595 |
| 127 | C36H42N4O5 | 610.7 | 611 |
| 128 | C41H44N4O4 | 656.8 | 657 |
| 129 | C41H44N404 | 656.8 | 657 |
| 130 | C39H42N4O4 | 630.8 | 631 |
| 131 | C39H42N4O4 | 630.8 | 631 |
| 132 | C34H39N5O4 | 581.7 | 582 |
| 133 | C34H39N5O4 | 581.7 | 582 |
| 134 | C32H37N5O4S | 587.7 | 588 |
| 135 | C33H38N4O4S | 586.7 | 587 |
| 136 | C30H38N4O4 | 518.6 | 519 |
| 137 | C31H40N4O4 | 532.7 | 533 |
| 138 | C32H42N4O4 | 546.7 | 547 |
| 139 | C32H42N4O4 | 546.7 | 547 |
| 140 | C31H40N4O5 | 548.7 | 549 |
| 141 | C30H38N4O5 | 534.6 | 535 |
| 142 | C35H40N4O4 | 580.7 | 581 |
| 143 | C31H40N4O4S | 564.7 | 565 |
| 144 | C32H46N4O4 | 550.7 | 551 |
| 145 | C32H46N4O4 | 550.7 | 551 |
| 146 | C32H46N4O4 | 550.7 | 551 |
| 147 | C33H48N4O4 | 564.8 | 565 |
| 148 | C33H48N4O4 | 564.8 | 565 |
| 149 | C33H48N4O4 | 564.8 | 565 |
| 150 | C33H48N4O4 | 564.8 | 565 |
| 151 | C29H40N4O5 | 524.7 | 525 |
| 152 | C30H42N4O5 | 538.7 | 539 |
| 153 | C32H41N4O4Cl | 581.1 | 581 |
| 154 | C32H41N4O4F | 564.7 | 565 |
| 155 | C33H44N4O4 | 560.7 | 561 |
| 156 | C33H44N4O5 | 576.7 | 577 |
| 157 | C38H46N4O4 | 622.8 | 623 |
| 158 | C38H46N4O4 | 622.8 | 623 |
| 159 | C36H44N4O4 | 596.8 | 597 |
| 160 | C31H41N5O4 | 547.7 | 548 |
| 161 | C31H41N5O4 | 547.7 | 548 |
| 162 | C31H41N5O4 | 547.7 | 548 |
| 163 | C29H39N5O4S | 553.7 | 554 |
| 164 | C30H40N4O4S | 552.7 | 553 |
| 165 | C27H40N4O4 | 484.6 | 485 |
| 166 | C29H44N4O4 | 512.7 | 513 |
| 167 | C29H44N4O4 | 1.0 | 2 |
| 168 | C29H42N4O4 | 510.7 | 511 |
| 169 | C31H44N4O4 | 536.7 | 537 |
| 170 | C29H41N5O4 | 523.7 | 524 |
| 171 | C29H41N5O4 | 523.7 | 524 |
| 172 | C25H40N4O4 | 460.6 | 461 |
| 173 | C26H42N4O4 | 474.6 | 475 |
| 174 | C26H42N4O4 | 474.6 | 475 |
| 175 | C27H44N4O4 | 488.7 | 489 |
| 176 | C27H44N4O4 | 488.7 | 489 |
| 177 | C29H41N5O4 | 523.7 | 524 |
| 178 | C29H40N4O4 | 508.7 | 509 |
| 179 | C30H42N4O3 | 506.7 | 507 |
| 180 | C31H44N4O3 | 520.7 | 521 |
| 181 | C26H40N4O3 | 456.6 | 457 |
| 182 | C26H42N4O3 | 458.6 | 459 |
| 183 | C27H42N4O3 | 470.6 | 471 |
| 184 | C27H44N4O3 | 472.7 | 473 |
| 185 | C25H38N4O4 | 458.6 | 459 |
| 186 | C26H40N4O4 | 472.6 | 473 |
| 187 | C30H40N4O3 | 504.7 | 505 |
| 188 | C31H42N4O3 | 518.7 | 519 |
| 189 | C31H44N4O3 | 520.7 | 521 |
| 190 | C31H44N4O3 | 520.7 | 521 |
| 191 | C32H44N4O3 | 532.7 | 533 |
| 192 | C32H46N4O3 | 534.7 | 535 |
| 193 | C30H40N4O3 | 504.7 | 505 |
| 194 | C30H42N4O3 | 506.7 | 507 |
| 195 | C31H42N4O3 | 518.7 | 519 |
| 196 | C31H44N6O4 | 564.7 | 565 |
| 197 | C31H42N4O6 | 566.7 | 567 |
| 199 | C29H36N4O4 | 504.6 | 505 |
| 200 | C31H40N404 | 532.7 | 533 |
| 201 | C30H42N4O4 | 522.7 | 523 |
| 202 | C31H42N4O5 | 550.7 | 551 |
| 203 | C33H44N4O4 | 560.7 | 561 |
| 204 | C34H44N4O5 | 588.7 | 589 |
| 205 | C25H40N4O4 | 460.6 | 461 |
| 206 | C31H46N6O5 | 582.7 | 583 |
| 207 | C31H43N5O4 | 549.7 | 550 |
| 208 | C32H42N404 | 546.7 | 547 |
| 209 | C27H44N4O4 | 488.7 | 489 |
| 210 | C34H39N5O4 | 581.7 | 582 |
| 211 | C31H41N5O4 | 547.7 | 548 |
| 212 | C31H44N4O4 | 536.7 | 537 |
| 213 | C30H40N4O4S | 552.7 | 553 |
| 214 | C30H42N4O3 | 506.7 | 507 |
| 215 | C33H48N4O5 | 580.8 | 581 |
| 216 | C29H38N4O4 | 506.6 | 507 |
| 218 | C33H42N4O4 | 558.7 | 559 |
| 219 | C32H38N6O4 | 570.7 | 571 |
| 220 | C30H40N4O4 | 520.7 | 521 |
| 221 | C30H40N4O4 | 520.7 | 521 |
| 222 | C31H42N4O4 | 534.7 | 535 |
| 223 | C31H42N4O4 | 534.7 | 535 |
| 224 | C31H42N4O5 | 550.7 | 551 |
| 225 | C29H38N4O4 | 506.6 | 507 |
| 226 | C30H40N4O4 | 520.7 | 521 |
| 227 | C30H40N4O4 | 520.7 | 521 |
| 228 | C30H40N4O4 | 520.7 | 521 |
| 229 | C31H42N4O4 | 534.7 | 535 |
| 230 | C31H42N4O4 | 534.7 | 535 |
| Notes | |||
| 1. Molecular formulas and molecular weights are calculated automatically from the structure via ActivityBase software (IDBS, Guildford, Surrey, UK). | |||
| 2. M+H obtained from LC-MS analysis using standard methods. | |||
| 3. All analyses conducted on material after preparative purification by the methods described above. | |||
| Compound | Molecular Formula | MW Calc (g/mol) | MS [(M+H)+] Found |
| 298 | C30H39N4O4F | 538.7 | 539 |
| 299 | C29H37N4O4Cl | 541.1 | 541 |
| 301 | C35H39N4O5Cl | 631.2 | 631 |
| 303 | C30H38N4O5 | 534.6 | 535 |
| 305 | C27H40N6O4 | 512.6 | 513 |
| 306 | C28H36N5O4F | 525.6 | 526 |
| 307 | C25H35N4O4F | 474.6 | 475 |
| 308 | C29H35N4O4Cl | 539.1 | 539 |
| 309 | C29H37N4O4F | 524.6 | 525 |
| 310 | C27H36N4O4S | 512.7 | 513 |
| 311 | C33H46N4O5 | 578.7 | 579 |
| 312 | C29H37N4O4F | 524.6 | 525 |
| 313 | C29H37N4O4F | 524.6 | 525 |
| 314 | C29H36N4O4Cl2 | 575.5 | 575 |
| 315 | C29H36N4O4Cl2 | 575.5 | 575 |
| 316 | C29H36N4O4F2 | 542.6 | 543 |
| 317 | C29H36N4O4F2 | 542.6 | 543 |
| 318 | C29H33N4o4F5 | 596.6 | 597 |
| 319 | C29H37N4O4Br | 585.5 | 585 |
| 320 | C29H37N4O4I | 632.5 | 633 |
| 321 | C30H37N5O4 | 531.6 | 532 |
| 322 | C30H37N4O4F3 | 574.6 | 575 |
| 323 | C31H42N4O6 | 566.7 | 567 |
| 324 | C31H39N5O4 | 545.7 | 546 |
| 325 | C32H41N4O4F | 564.7 | 565 |
| 326 | C32H41N4O4Br | 625.6 | 625 |
| 327 | C32H40N4O4F2 | 582.7 | 583 |
| 328 | C33H44N4O5 | 576.7 | 577 |
| 329 | C33H41N5O4 | 571.7 | 572 |
| 330 | C32H40N4O4Cl2 | 615.6 | 616 |
| 331 | C32H40N4O4F2 | 582.7 | 583 |
| 332 | C33H41N4O4F3 | 614.7 | 615 |
| 333 | C30H40N4O4S | 552.7 | 553 |
| 334 | C30H37N4O4Cl | 553.1 | 553 |
| 335 | C29H39N4O5F | 542.6 | 543 |
| 336 | C28H37N4O5F | 528.6 | 529 |
| 337 | C27H36N5O4F | 513.6 | 514 |
| 338 | C28H38N5O4F | 527.6 | 528 |
| 339 | C29H40N5O4F | 541.7 | 542 |
| 340 | C29H39N4O4FS | 558.7 | 559 |
| 341 | C33H37N4O4SCl | 621.2 | 621 |
| 342 | C36H38N5O4Cl | 640.2 | 640 |
| 343 | C36H41N4O5Cl | 645.2 | 645 |
| 344 | C30H37N4O5Cl | 569.1 | 569 |
| 345 | C31H39N4O5Cl | 583.1 | 583 |
| 346 | C31H37N4O4Cl | 565.1 | 565 |
| 347 | C33H44N4O5 | 576.7 | 577 |
| 348 | C31H42N4O5 | 550.7 | 551 |
| 349 | C30H37N4O4Cl | 553.1 | 553 |
| 350 | C28H35N4O4Cl | 527.1 | 527 |
| 351 | C29H35N4O4Cl | 539.1 | 539 |
| 352 | C29H35N4O4Cl | 539.1 | 539 |
| 353 | C31H41N4O3F | 536.7 | 537 |
| 354 | C29H33N4O4F | 520.6 | 521 |
| 355 | C29H36N4O4F2 | 542.6 | 543 |
| 356 | C30H36N4O4F4 | 592.6 | 593 |
| 357 | C30H40N5O6FS | 617.7 | 618 |
| 358 | C33H43N4O3Cl | 579.2 | 579 |
| 359 | C34H47N4O4Cl | 611.2 | 611 |
| 360 | C28H41N4O4Cl | 533.1 | 533 |
| 361 | C34H4SN4O3Cl | 593.2 | 593 |
| 362 | C33H45N4O3Cl | 581.2 | 581 |
| 363 | C29H45N4O3Cl | 533.1 | 533 |
| 364 | C29H43N4O3Cl | 531.1 | 531 |
| 365 | C27H41N4O3Cl | 505.1 | 505 |
| 366 | C28H43N4O3Cl | 519.1 | 519 |
| 367 | C30H39N4O4F | 538.7 | 539 |
| 368 | C33H45N4O4Cl | 597.2 | 597 |
| 369 | C32H43N4O4Cl | 583.2 | 583 |
| 370 | C28H43N4O4Cl | 535.1 | 535 |
| 371 | C34H47N4O3Cl | 595.2 | 595 |
| 372 | C29H36N4O4F2 | 542.6 | 543 |
| 373 | C29H36N4O4FCl | 559.1 | 559 |
| 374 | C30H40N5O6FS | 617.7 | 618 |
| 375 | C30H39N4O4F | 538.7 | 539 |
| 376 | C30H39N4O4F | 538.7 | 539 |
| 377 | C28H35N4O5F | 526.6 | 527 |
| 378 | C31H41N4O4F | 552.7 | 553 |
| 379 | C30H37N4O4F | 536.6 | 537 |
| 380 | C32H41N4O4Cl | 581.1 | 581 |
| 381 | C32H39N4O4Cl | 579.1 | 579 |
| 382 | C32H42N4O4FCl | 601.2 | 601 |
| 383 | C32H42N4O4FCl | 601.2 | 601 |
| 384 | C32H42N4O4Cl2 | 617.6 | 617 |
| 385 | C31H42N5O4Cl | 584.1 | 584 |
| 386 | C33H45N4O4Cl | 597.2 | 597 |
| 387 | C33H43N4O4Cl | 595.2 | 595 |
| 388 | C33H43N4O4Cl | 595.2 | 595 |
| 389 | C30H37N4O4F | 536.6 | 537 |
| 390 | C26H40N5O3Cl | 506.1 | 506 |
| 391 | C29H35N4O4F3 | 560.6 | 561 |
| 392 | C33H45N4O4Cl | 597.2 | 597 |
| 393 | C27H41N4O5Cl | 537.1 | 537 |
| 394 | C30H39N4O4F | 538.7 | 539 |
| 395 | C31H42N5O4Cl | 584.1 | 584 |
| 396 | C30H37N4O4Cl | 553.1 | 553 |
| 397 | C30H37N4O4Cl | 553.1 | 553 |
| 398 | C25H37N4O4F | 476.6 | 477 |
| 399 | C33H45N4O4Cl | 597.2 | 597 |
| 400 | C29H35N4O4F | 522.6 | 523 |
| 401 | C29H35N4O4F | 522.6 | 523 |
| 402 | C32H41N4O4Cl | 581.1 | 581 |
| 403 | C30H40N4O4 | 520.7 | 521 |
| 405 | C30H41N4O4F | 540.7 | 541 |
| 406 | C30H38N4O4F2 | 556.6 | 557 |
| 407 | C31H43N4O4F | 554.7 | 555 |
| 408 | C31H42N4O4F2 | 572.7 | 573 |
| 409 | C30H41N4O4F | 540.7 | 541 |
| 410 | C30H42N4O4 | 522.7 | 523 |
| 415 | C30H39N4O4Cl | 555.1 | 555 |
| 417 | C29H36N4O4FCl | 559.1 | 559 |
| 430 | C30H38N4O4FCl | 573.1 | 573 |
| 431 | C31H44N4O4 | 536.7 | 537 |
| 432 | C31H43N4O4Cl | 571.2 | 571 |
| Notes | |||
| 1. Molecular formulas and molecular weights are calculated automatically from the structure via Activity Base software (IDBS, Guildford, Surrey, Uk). | |||
| 2. M+H obtained from LC-MS analysis using standard methods. | |||
| 3. All analyses conducted on material after preparative purification by the methods described above. | |||
| Compound | Molecular Formula | MW Calc (g/mol) | MS [(M+H)+] Found |
| 435 | C30H39N4O4F | 538.7 | 539 |
| 436 | C31H40N4O4 | 532.7 | 533 |
| 437 | C32H39N4O4Cl | 579.1 | 579 |
| 438 | C33H45N4O4Cl | 597.2 | 597 |
| 439 | C32H39N4O5Cl | 595.1 | 595 |
| 440 | C37H47N4O5F | 646.8 | 647 |
| 441 | C33H42N4O6 | 590.7 | 591 |
| 442 | C26H38N4O5 | 486.6 | 487 |
| 443 | C27H40N4O5 | 500.6 | 501 |
| 444 | C29H40N6O4 | 536.7 | 537 |
| 445 | C30H42N4O5 | 538.7 | 539 |
| 446 | C24H35N4O5F | 478.6 | 479 |
| 447 | C26H39N4O3Cl | 491.1 | 492 |
| 448 | C29H40N4O4 | 508.7 | 509 |
| 449 | C31H42N5O4Cl | 584.1 | 584 |
| Notes | |||
| 1. Molecular formulas and molecular weights are calculated automatically from the structure via Activity Base software (IDBS, Guildford, Surrey, UK). | |||
| 2. M+H obtained from LC-MS analysis using standard methods. | |||
| 3. All analyses conducted on material after preparative purification by the methods described above. | |||
D. Chiral Purity Determination
Method Chiral A: Grad35A-05 (column: Chiralcel AS-RH, 0.46 cm x 15 cm):
Method Chiral B: Grad40A-05 (column: Chiralcel OD-RH. 0.46 cm x 15 cm):
1. Isocratic plateau of 40 min at 40% ACN, 60% of a solution 50 mM of CH3COONH4 in H2O.
2. 5 min gradient to 70% ACN, 30% of a solution 50 mM of CH3COONH4 in H2O.
3. Isocratic plateau of 10 min at 70% ACN, 30% of a solution 50 mM of CH3COONH4 in H2O.
4. 5 min gradient to 40% ACN, 60% of a solution 50 mM of CH3COONH4 in H2O.
5. Isocratic plateau of 10 min at 40% ACN, 60% of a solution 50 mM of CH3COONH4 in H2O.
6. Flow: 0.5 mL/min
7. Column temperature: room temperature
8. Sample temperature: room temperature
Method Chiral C: Grad 55A-05 (column: Chiralcel OD-RH, 0.46 cm x 15 cm):
Method Chiral D: Grad Iso100B 05 (column: Chiralcel OD-RH, 0.46 cm x 15 cm):
3. Biological Methods
A. Competitive Radioligand Binding Assay (Ghrelin Receptor)
Materials
1. [125I]-Ghrelin (PerkinElmer, #NEX-388); final concentration: 0.0070-0.0085 nM
2. Ghrelin (Bachem, #H-4864); final concentration: 1 µM
3. Multiscreen Harvest plates-GF/C (Millipore, #MAHFC1H60)
4. Deep-well polypropylene titer plate (Beckman Coulter, #267006)
5. TopSeal-A (PerkinElmer, #6005185)
6. Bottom seal (Millipore, #MATAH0P00)
7. MicroScint-0 (PerkinElmer, #6013611)
8. Binding Buffer: 25 mM Hepes (pH 7.4), 1 mM CaCl2, 5 mM MgCl2, 2.5 mM EDTA, 0.4% BSA
Assay Volumes
Compound Handling
Assay Protocol
| Compound | Structure | Ki (nM) |
| 18 |
|
B |
| 334 |
|
B |
| 349 |
|
B |
| 350 |
|
C |
| 351 |
|
B |
| 352 |
|
C |
| 396 |
|
B |
| 397 |
|
C |
| Compound | Ki |
|
|
D |
|
|
C |
|
|
D |
|
|
D |
|
|
G |
|
|
C |
|
|
B |
|
|
C |
|
|
G |
|
|
B |
|
|
C |
| 230 diastereomer | D |
| Binding activity determined using standard method, expressed as follows: A = 0.1-10 nM; B = 10-100 nM; C = 0.1-1.0 µM; D = 1-10 µM; E > 500 nM (highest concentration tested); F > 1 µM (highest concentration tested); G > 10 µM (or no activity at highest concentration tested) | |
B. Aequorin Functional Assay (Ghrelin Receptor)
Materials
10, 1, 0.3, 0.1, 0.03, 0.01, 0.003, 0.001 µM.
Compound Handling
Cell Preparation
Assay Protocol
Analysis and Expression of Results
| Compounda | Kl(nM)* | EC50(nµ)** | Selectivityb |
| 1 | B | BB | 142/1 |
| 2 | C | BB | nd |
| 3 | C | BB | nd |
| 4g | Bc | AA | 3012/1 |
| 5 | C | BB | nd |
| 6 | C | AA | 71/1 |
| 7 | C | AA | >100/1 |
| 8f | Bd | AA | 200/1 |
| 9g | Cc | BB | 117/1 |
| 10 | B | AA | 304/1 |
| 11f | B | BB | nd |
| 15 | A | nd | >1700/1 |
| 16 | A | nd | >2000/1 |
| 17 | A | AA | 2500/1 |
| 18 | B | AA | 222/1 |
| 19 | C | nd | >1700/1 |
| 20 | A | AA | 1044/1 |
| 21 | A | AA | 1078/1 |
| 23 | A | AA | 30,000/1 |
| 24 | A | nd | 3039/1 |
| 25 | A | AA | 28,000/1 |
| 26 | A | AA | >7700/1 |
| 27e | A | AA | >7100/1 |
| 28 | B | AA | nd |
| 30 | A | AA | 13,000/1 |
| 31 | A | AA | 4900/1 |
| 34 | B | nd | >1000/1 |
| 35 | B | AA | nd |
| 36 | B | BB | nd |
| 37a | B | AA | >800/1 |
| 37b | B | BB | nd |
| 38 | B | BB | nd |
| 39f | A | BB | 3400/1 |
| 40 | A | AA | >3300/1 |
| 42 | A | nd | 4300/1 |
| 43 | B | nd | 3700/1 |
| 47 | C | AA | nd |
| 97 | B | BB | nd |
| 111 | B | BB | nd |
| 113g | B | BB | nd |
| 140 | C | BB | nd |
| 141 | C | AA | nd |
| 153 | B | AA | nd |
| 154 | B | AA | nd |
| 156 | B | AA | nd |
| 168 | C | CC | nd |
| 170 | B | BB | nd |
| 176 | B | AA | 105/1 |
| 177 | B | AA | >100/1 |
| 178 | C | BB | nd |
| 184a | C | BB | 28/1 |
| 184b | C° | BB | nd |
| 186 | C | BB | nd |
| 191 | C | BB | nd |
| 192 | B | BB | nd |
| 193 | C | BB | nd |
| 194a | C | BB | nd |
| 194b | C | BB | nd |
| 195 | B | AA | nd |
| 197 | C | CC | 100/1 |
| 214 | C | BB | nd |
| 226 | B | CC | nd |
| 298 | B | AA | 3100/1 |
| 299 | A | AA | nd |
| 306a | B | AA | 714/1 |
| 311 | B | nd | 21/1 |
| 314 | A | AA | >5500/1 |
| 318 | A | AA | nd |
| 322 | A | AA | nd |
| 334 | B | AA | 346/1 |
| 345a | B | AA | >159/1 |
| 346 | B | AA | nd |
| 351 | B | AA | 450/1 |
| 354 | B | AA | nd |
| 358a | B | AA | nd |
| 363 | C | nd | 35/1 |
| 367 | B | AA | nd |
| 368a | A | CC | nd |
| 372 | A | AA | 2500/1 |
| 374 | B | AA | 250/1 |
| 382 | B | BB | 74/1 |
| 388 | A | AA | 400/1 |
| 389a | B | BB | 450/1 |
| 394 | A | BB | 1700/1 |
| 399a | A | CC | 300/1 |
| 445 | B | AA | nd |
| a All compounds were tested as their TFA salts unless otherwise noted. | |||
| bVersus the human motilin receptor (nd = not determined) | |||
| c Average of six (6) experiments | |||
| d Average of four (4) experiments | |||
| e Average of two (2) experiments | |||
| f HCl salt | |||
| g Formate salt | |||
| *Binding activity determined using standard method and expressed as A = 0.1-10 nM; B = 10-100 nM; C = 100 - 1000 nM | |||
| **Functional activity determined using standard method and expressed as AA = 1-100 nM; BB = 100 - 1000 nM; CC > 1000 nM; | |||
| nd = not determined | |||
C. Cell Culture Assay for Growth Hormone Release
D. Pharmacokinetic Analysis of Representative Compounds of the Invention
Collection of Plasma
Rats: male, Sprague-Dawley (~250g)
Rats/Treatment Group: 6 (2 subsets of 3 rats each, alternate bleeds)
Each sample of test compound was sent in solution in a formulation (such as with cyclodextrin) appropriate for dosing. It will be appreciated by one skilled in the art that appropriate modifications to this protocol can be made as required to adequately test the properties of the compound under analysis.Typical Dose
| Time (min.) relative to Dose Administration | ||||||||||
| Subset ID | Pre-dose | 1 | 5 | 20 | 60 | 90 | 120 | 180 | 240 | 300 |
| Subset A | √ | √ | √ | √ | √ | |||||
| Subset B | √ | √ | √ | √ | √ | |||||
| Time (min.) relative to Dose Administration | ||||||||||
| Subset ID | Pre-dose | 5 | 15 | 30 | 60 | 90 | 120 | 180 | 270 | 360 |
| Subset A | √ | √ | √ | √ | √ | |||||
| Subset B | √ | √ | √ | √ | √ | |||||
Plasma Collection
HPLC-MS Method
A: 95% MeOH, 5% water, 0.1% TFA
B: 95% water, 5% MeOH, 0.1% TFA
Flow: 0.5 mL/min| Time(min) | A | B |
| 0 | 30% | 70% |
| 0.5 | 30% | 70% |
| 2.8 | 100% | 0% |
| 3.8 | 100% | 0% |
| 4.0 | 30% | 70% |
| 5.0 | 30% | 70% |
| Compound | Mode of Administrationa | Elimination (t1/2, min) | Clearance (mL/min/kg) | Bioavailability (oral)b |
| 25 | i.v. | 31 | 67 | na |
| 298 | i.v. | 75 | 17 | na |
| 298 | s.c. | 66 | 15 | na |
| 298 | p.o. | 312 | 14 | 29% |
| a i.v. = intravenous (10 time points over 150 min); s.c. = subcutaneous (10 time points
over 360 min), p.o. = oral (10 time points over 240 min) b na = not applicable |
E. Gastric Emptying
Test Substances and Dosing Pattern
Animals
Chemicals
Equipment
Assay
F. Gastric Emptying and Intestinal Transit in Rat Model of Postoperative Ileus
Animals
Induction of post-operative ileus (POI)
Dosing
Experimental
G. Growth Hormone Response to Test Compounds
Dosing and sampling procedures for in vivo studies of GH release
GH assay method
4. Pharmaceutical Compositions
5. Methods of Use
Example 1
Synthesis of Tethers
A. Standard Procedure for the Synthesis of Tether T9
1H NMR (CDCl3): δ 7.19-7.01, (m, 2H), 6.92-9.83 (m, 2H), 6.53 (bs, 2H), 6.34 (t, 1H), 5.17 (bt, 1H), 4.08 (m, 2H), 3.98 (m, 2H), 3.79 (s, 6H), 3.01 (bq, 2H), 2.66 (t, 3H), 1.26 (bs, 8H);
13C NMR (CDCl3): δ 160.9, 156.8, 155.6, 149.6, 130.4, 127.5, 121.2, 111.7, 103.2, 98.4, 80.0, 69.7, 61.6, 55.5, 40.3, 30.5, 29.3, 27.4 ppm.
Tether T9 can also be synthesized from another tether molecule by reduction as in step T9-3 or with other appropriate hydrogenation catalysts known to those in the art.B. Standard Procedure for the Synthesis of Tether T33a and T33b
C. Standard Procedure for the Synthesis of Tether Precursor RCM-TA1
1H NMR (CDCl3, ppm): 7.8 (d, 2H), 7.6 (d, 2H), 7.4 (t, 2H), 7.3 (t, 2H), 5.9-5.7 (1H, m), 5.6-5.5 (1H, m), 5.0 (1H, broad), 4.4 (2H, d), 4.2 (2H, d), 3.9 (2H, broad), 2.1 (1H, broad).
13C NMR (CDCl3, ppm): 156.8, 144.1, 141.5, 131.9, 128.3, 127.9, 127.3, 125.2, 120.2,67.0,58.0,47.4,38.0.
D. Standard Procedure for the Synthesis of Tether Precursor RCM-TA2
E. Standard Procedure for the Synthesis of Tether Precursor RCM-TB1
F. Standard Procedure for the Synthesis of Tether Precursor RCM-TB2
1H NMR (CDCl3, ppm): 7.50 (1H, dd, Ph), 7.22 (1H, td, Ph), 7.05 (dd, 1H, PhCH=CH2), 6.98 (1H, t, Ph), 7.90 (1H, d, Ph), 5.75 (1H, dd, PhCH=CHH), 5.30 (1H. dd, PhCH=CHH), 4.15-4.10 (2H, m, PhOCH2CH2OH), 4.05-3.95 (2H, m, PhOCH2CH2OH), 2.05 (1H, s, OH).
G. Standard Procedure for the Synthesis of Tether Precursor RCM-TB3
1H NMR (CDCl3, ppm): 7.57-7.45 (1H, m, Ph), 7.30-7.15 (3H, m, Ph), 7.05 (dd, 1H, PhCH=CH2), 5.65 (1H, dd, PhCH=CHH), 5.32 (1H. dd, PhCH=CHH), 4.85 (2H, t, PhCH2CH2OH), 2.98 (2H, t, PhCH2CH2OH), 1.50 (1H, s, OH).
H. Standard Procedure for the Synthesis of Tether Precursor RCM-TB4
1H NMR (CDCl3 ppm): 7.55-7.45 (1H, m, Ph), 7.25-7.10 (3H, m, Ph), 7.05 (dd, 1H, PhCH=CH2), 5.65 (1H, dd, PhCH=CHH), 5.30 (1H. dd, PhCH=CHH), 3.70 (2H, t, PhCH2CH2CH2OH), 2.80 (2H, t, PhCH2CH2CH2OH), 1.90-1.80 (2H, m, PhCH2CH2CH2OH), 1.45 (1H, s, OH).
I. Standard Procedure for the Synthesis of Tether T45
J. Standard Procedure for the Synthesis of Tether T65
1H NMR (CDCl3): δ 7.38-7.35 (bd, 1H), 7.30-7.19 (m, 1H), 6.92 (dd, 2H), 4.88 (bs, 1H), 4.16-4.11 (bt, 4H), 3.98-3.95 (t, 2H), 1.46 (s, 9H). 13CNMR (CDCl3): δ 156.7, 155.8, 133.6, 130.0, 121.3, 114.8, 113.1, 112,9, 90.2, 70.8, 61.4, 28.6
K. Standard Procedure for the Synthesis of Tether T66
1H NMR (CDCl3): δ 7.27-7.21 (td, 1H), 7.15-7.10 (dd, 1H), 7.00.6.85, (m, 2H), 6.62-6.58 (bd, 1H), 5.77-5.70 (dt, 1H), 4.13-4.03 (m, 2H), 3.97-3.95 (m, 2H), 3.9-3.88 (bd, 2H), 1.46, (s, 9H)
L. Standard Procedure for the Synthesis of Tether T67
1NMR (CDCl3, ppm): 7.18 (1H, t), 7.03 (1H, d), 6.88 (2H, t), 4.23-4.04 (4H, m), 3.73-3.70 (2H, m), 1.48 (1H, broad), 1.28 (9H, s), 1.12-1.06 (1H, m), 1.0-0.93 (1H, m), 0.76 (2H, dt).
M. Standard Procedure for the Synthesis of Tether T68
1H NMR (CDCl3): 8 7.32-7.20 (td, 2H), 7.10-6.85, (m, 2H), 4.25-4.13 (m, 2H), 4.10-3.99 (m, 2H), 3.41-3.36 (dd, 1H), 2.15-2.02 (m, 1H), 1.38 (s, 9H), 1.04-0.96 (dq, 1H), 0.78-0.73 (q, 1H)
13C NMR (CDCl3): δ 158.0, 130.7, 130.4, 127.9, 127.5, 127.1, 121.2, 121.0, 111.6, 111.2, 79.5 69.8, 61.5, 28.7, 17.8, 16.8, 7.2
N. Standard Procedure for the Synthesis of Tether T69
TLC (25/75 AcOEt/Hex): Rf: 0.03; detection: UV, ninhydrin
1H NMR (CDCl3): δ 7.06-7.00 (bt, 1H), 6.61-6.52 (m, 4H), 6.35 (m, 1H), 5.12 (bt, 1H), 4.03 (m, 2H), 3.95 (m, 2H), 3.77 (s, 6H), 3.11-3.04 (bq, 2H), 2.60 (bt, 2H), 1.75 (m, 8H)
13C NMR (CDCl3): δ 163.9, 160.9, 160.6,157.6, 157.5, 155.6,149.5, 130.8, 130.6, 125.9, 107.26, 106.9, 103.2, 98,4, 80.8, 77.5, 69.9, 61,3, 60.9, 60.6, 55,4, 40.3, 30.4, 29.3, 26.9,
LC-MS (Grad_A4) tR: 8.37 min
O. Standard Procedure for the Synthesis of Tether T70
TLC (25/75 AcOEt/Hex): Rf: 0.03; detection: UV, ninhydrin
1H NMR (CDCl3): δ 6.84-6.75 (m, 3H), 6.52 (bs, 2H), 6.34 (m, 1H), 5.17 (bt, 1H), 4.01 (m, 2H), 3.93 (m, 2H), 3.77 (s, 6H), 3.10 (bq, 2H), 2.63 (bt, 2H), 1.74 (m, 8H)
13C NMR (CDCl3): δ 160.9, 158.9, 155.8, 155.6, 152.9, 152.9, 149.5, 132.4, 132.3, 117.1, 116.8, 112.7,112.6, 103.2, 98.4, 80.8, 70.4, 61.6, 55.5, 40.2, 30.3, 29.3, 27.4.
LC-MS (Grad_A4) tR: 8.29 min
TLC (25/75 AcOEt/Hex): Rf: 0.03; detection: UV, ninhydrin
1H NMR (CDCl3): δ 7.12-7.08 (bd, 2H), 6.76-6.73 (d, 1H), 6.52 (m, 2H), 6.33 (bs, 1H), 5.15 (bt, 1H), 4.02 (m, 2H), 3.95 (m, 2H), 3.79 (s, 6H), 3.09 (bq, 2H), 2.61 (bt, 2H), 1.74(m,8H)
13C NMR (CDCl3): δ 160.8, 155.6, 155.4, 149.5, 132.4, 130.1, 127.0, 126.0, 112.8, 103.2, 98.4, 80.8, 70.0, 61.4, 55.5, 40.3, 30.2, 29.3, 24.5, 27.4
LC-MS (Grad_A4) tR: 9.60 min
TLC (1/1, Hex/AcOEt): Rf: 0.16
1H NMR (ppm): 1.49 (Boc), 1.8 (CH2), 2.7 (CH2), 3.1 (CH2), 4.0 (CH2), 4.1 (CH2), 4.9 (NH), 6.9 (CH aromatic), 7.35 (CH aromatic), 7.4 (CH aromatic)
13C NMR (ppm): 29, 30, 40, 61, 70, 110, 124, 128, 132, 160
TLC (60/40 AcOEt/Hex): Rf: 0.11; detection: UV, ninhydrin
1H NMR (CDCl3): δ 7.06-6.99, (m, 2H), 6.84-6.81 (m, 1H), 6.5 (m, 2H), 6.32 (m, 1H), 5.11 (bt, 1H), 4.07(m, 2H), 3.90(bt, 2H), 3.79 (s, 6H), 3.39 (s, 3H), 3.09 (bt, 2H), 2.64 (bt, 2H), 1.85-1.74 (m, 8H), 1.46 (bs, 9H)
13C NMR (CDCl3): δ 160.8, 157.1, 155.6, 151.9, 149,5, 131.3, 131.0, 128.43, 128.37, 111.6, 103.2, 98.4, 84.8, 80.8, 69.9, 61.4, 60.6, 55.5, 41.8, 40.2, 30.0, 29.3, 28.1, 27.3 ppm.
LC-MS (Grad_A4) tR: 8.26 min.
S. Standard Procedure for the Synthesis of Tether T74
TLC (50/50 AcOEt/Hex): Rf: 0.09; Detection: UV, CMA
1H NMR (DMSO-d6): δ 7.14 (bd, 1H), 6.76-6.71 (m, 2H), 6.53 (m, 2H), 6.33 (bs, 1H), 5.15 (bt, 1H), 4.08 (m, 2H), 3.95 (m, 2H), 3.79 (s, 6H), 3.41 (s, 3H), 3.01 (bq, 2H), 2.64 (bt, 2H), 1.75 (m, 8H), 1.47 (s, 9H)
13C NMR (DMSO-d6): δ 156.1, 152.3, 150.8, 147.0, 144.7, 129.8, 126.9, 125.6, 116.8, 108.4, 98.5, 93.6, 80.3, 76.1, 65.1, 56.7, 50.7, 37.1, 35.6, 25.3, 24.5, 23.4, 22.6
LC-MS (Grad_A4) tR: 8.21 min
U. Standard Procedure for the Synthesis of Tether T76
TLC (hexanes/dichloromethane, 3:1): Rf= 0.3; detection: CMA and UV
TLC (hexanes/dichloromethane, 3:1): Rf= 0.5; detection: CMA and UV
TLC (hexanes/ethyl acetate, 7:3): Rf = 0.3; detection: CMA and UV
TLC (hexanes/ethyl acetate, 1:1): Rf= 0.3; detection: CMA and UV,
1H NMR (CDCl3): δ 1.73 (s, 6H), 1.75-1.95 (m, 4H), 2.60 (m, 2H), 2.70-2.90 (m, 2H), 3.10 (m, 2H), 3.72 (s, 6H), 3.75 (m, 2H), 4.12 (m, 1H), 5.20 (m, 1H), 6.35 (s, 1H), 6.50 (s, 2H), 6.80 (m, 1H), 6.90 (m, 2H).
13C NMR (CDCl3): 0 23.93 (CH2), 24.97 (CH2), 27.07 (CH2), 29.35 (CH3), 30.45 (CH2), 40.23 (CH2), 55.47 (CH3), 65.76 (CH2), 80.72 (CH), 98.44 (CH), 103.22 (CH), 120.29 (CH), 121.90 (Cq), 127.76 (CH), 128.14 (CH), 129.42 (Cq), 149.56 (Cq), 152.55 (Cq), 155.56 (Cq), 160.84 (Cq).
LC-MS (Grad_A4): tR: 9.46 min; Mass found: 443
V. Standard Procedure for the Synthesis of Tether T77
Molecular weight calcd for C5H4BrNO: 173; (M+H)+ found: 174
Molecular weight calcd. for C13H22BrNO2Si 331; (M+H)+ found: 332
TLC (hexanes/ethyl acetate, 1:3): Rf; = 0.3; detection: CMA
Molecular weight calcd. for C28H40N2O6Si: 528; (M+H)+ found: 529
TLC [(hexanes/ethyl acetate, 1:3); Rf; = 0.3 detection: CMA]
Molecular weight calcd. for C28R44N2O6Si: 532, (M+H)+ found: 533
1H NMR (CDCl3): δ 1.73 (s, 6H), 1.75 (m, 2H), 2.65 (m, 2H), 3.15 (m, 2H), 3.75 (s, 6H), 3.90 (m, 2H), 4.50 (m, 2H), 5,01 (sb, 1H), 6.30 (s, 1H), 6.50 (s, 2H), 6.80 (m, 1H), 7.40 (m, 1H), 8.01 (m, 1H).
13C NMR (CDCl3): δ 27.23 (CH2), 29.24 (CH3), 29.71 (CH2), 40.17 (CH2), 55.44 (CH3), 62.76 (CH2), 69.11 (CH2), 80.76 (Cq), 98.24 (CH), 103.24 (CH), 117.54 (CH), 124.68 (Cq), 138.82 (CH), 144.17 (CH), 149.45 (Cq), 155.50 (Cq), 160.84 (Cq), 162.03 (Cq).
Molecular weight calcd. for C22H30N2O6:418; (M+H)+ found: 419
Example 2
Synthesis of Representative Macrocyclic Compounds
Compound 1
1H NMR (300 MHz, DMSO-d6): δ 8.53, 8.41, 8.34 (doublets J = 8.7 Hz for all, 1H); 8.13-8.06, 7.82-7.75 (multiplets, 1H); 7.30-7.05 (m, 8H); 6.90-6.77 (m, 2H);
4.58-4.46, 4.40-4.29, 4.27-4.16 (multiplets, 1H); 4.09-3.99, 3.97-3.82 (multiplets, 2H); 3.77-3.44 (m, 2H); 3.37-3.19 (m, 4H); 3.15, 3.08 (2s, 2H); 2.98-2.86 (m, 5H); 2.52 (s, 3H); 1.94-1.75, 1.60-1.30 (multiplets, 2H); 1.22 (br s, 4H); 0.86-0.75 (m, 3H).
HRMS calc. for C29H40N4O4; 508.3049; found 508.3040 ± 0.0015.
HPLC tR = 8.94 min.
Compound 3
1H NMR (300 MHz, DMSO-d6): δ 8.54 (d, J = 9.4 Hz), 8.43-8.36 (m), and 8.12 (br t, J = 5.65 Hz) (1H); 7.90 (d, J = 6.6 Hz), 7.79-7.72 (m) (1H); 7.30-7.05 (m, 6H); 6.90-6.76 (m, 3H); 4.60-4.50 (m), 4.43 (d, J = 18.3 Hz), 4.26-4.16 (m) (1H); 4.13-4.02 (m, 1H); 4.01-3.84 (m, 2H); 3.74-3.41 (m, 2H); 3.17, 3.09 (2s, 3H); 2.99-2.86 (m, 5H); 2.43-2.18 (m, 1H); 1.97-1.75 (m, 3H); 1.72-1.39 (m, 1H); 0.96 (d, 5.76 Hz, 3H); 0.93-0.77 (m, 2H); 0.68 (d, 5.76 Hz, 3H).
HRMS calc. for C28H38N4O4; 494.2893; found 494.2888 ± 0.0015.
HPLC tR = 8.11 min.
Compound 4
1H NMR (300 MHz, CD3CN): δ 7.48-7.19 (m, 6H); 7.13-6.98 (m, 3H); 4.71-4.51 (m, 3H); 4.48-4.32 (m, 1H); 4.26-4.01 (m, 1H); 3.79-3.57 (m, 2H); 3.48-3.20 (m, 3H); 3.19-3.06 (m, 5H); 3.01-2.89 (m, 2H); 2.80-2.62 (m, 2H); 2.09-1.96 (m, 3H); 1.94-1.70 (m, 1H); 1.57-1.36 (m, 4H); 1.32-1.26 (m, 1H); 1.08-0.97 (m, 3H).
HRMS calcd for C29H40N4O4; 508.3049; found 508.3045 ± 0.0015
HPLC tR= 8.37 min
Compound 6
1H NMR (300 MHz, DMSO-D6): δ 10.80 (s, 1H); 8.46 (d, J = 9.65 Hz), 8.36-8.28 (m), 8.14-8.07 (m), and 8.02 (d, J = 9.65 Hz) (1H); 7.73-7.65 (m), 7.59 (d, 8.2 Hz), and 7.51 (d, J = 8.2 Hz) (1H); 7.3 (d, J = 8.2 Hz, 1H); 7.16-6.91 (m, 5H); 6.89-6.76 (m, 2H); 4.62-4.49 (m) and 4.42-4.24 (m) (1H); 4.15-3.81 (m, 2H); 3.77-3.43 (m, 2H); 3.41-3.19 (m, 6H); 3.22-2.85 (m, 6H); 2.52 (s, 3H); 1.89-1.69 (m, 1H); 1.59-1.02 (m, 4H); 0.88-0.74 (m, 3H).
HRMS calc. for C30H39N5O4; 533.3002; found 533.2990 ± 0.0016.
HPLC tR = 8.22 min.
Compound 8
1H NMR (300 MHz, DMSO-d6): δ 9.47 (br s), 9.07 (s) (1H) and 8.32 (br s) (2H); 7.94 (d, 6.6 Hz, 1H); 7.60-7.42 (m, 2H); 7.38 (d, 9.0 Hz, 1H); 7.28-7.04 (m, 7H); 6.93 (t, 8.1 Hz, 1H); 6.60 (d, J= 14.4 Hz) and 6.39-6.27 (m) (1H); 4.51-4.38 (m, 1H); 4.29-4.08 (m, 2H); 3.87-3.63 (m, 2H); 3.40-3.13 (m, 2H); 2.94 (t, J = 14.1 Hz, 1H); 2.53-2.50 (m, 1H); 2.32-2.17 (m, 1H); 1.86-1.06 (m, 10H); 0.95-0.79 (m, 6H).
HRMS calc. for C32H42N4O4; 546.3206; found 546.3198 ± 0.0016.
HPLC tR = 9.02 min.
Compound 9
1H NMR (300 MHz, DMSO-d6): δ 8.48 (s, 1H); 7.92 (d, J = 5.3 Hz, 1H); 7.81 (d, J = 8.5 Hz, 1H); 7.26-7.08 (m, 7H); 6.88-6.75 (m, 2H); 4.30 (br t, J = 10.1 Hz, 1H); 4.0 (t, J = 8.6 Hz, 1H); 3.87 (br d, J = 8.6 Hz, 1H); 3.70-3.58 (m, 1H); 3.4-3.25 (m, 1H); 3.04-2.85 (m, 3H); 2.73 (d, 7.67 Hz, 1H); 2.53 (s, 3H); 2.35-2.09 (m, 2H); 1.92-1.44 (m, 8H); 1.42-1.18 (m, 2H); 0.85, 0.81 (2 doublets, J = 6.76 Hz, 6H).
13C NMR (75 MHz, DMSO-d6): δ 176.15; 173.20; 171.27; 157.18; 140.08; 130.72; 130.52; 129.71; 128.64; 127.87; 126.62; 120.88; 111.44; 68.29; 67.10; 66.99; 55.24; 48.42; 41.11; 41.03; 39.36; 36.93; 35.77; 34.65; 32.38; 30.55; 29.96; 23.83; 22.65; 19.87.
HRMS calc. for C31H42O4; 534.3206; found 534.2139 ± 0.0016.
HPLC tR = 9.29 min.
Compound 10
1H NMR (300 MHz, DMSO-d6): δ 8.53, 8.41, 8.38 (doublets, J = 8.8, 8.5, 8.5 Hz, 1H); 8.16-8.05, 7.87-7.71 (multiplets, 1H); 7.31-7.04 (m, 7H); 6.91-6.75 (m, 2H); 4.60-4.45, 4.39-4.30, 4.28-4.16 (m, 1H), 4.10-4.00, 3.97-3.83 (m, 2H); 3.73-3.46 (m, 2H); 3.22-3.20 (m 1H), 3.16, 3.09 (2 s, 3H), 2.45-2.39 (m, 1H); 2.99-2.86 (m, 1H); 2.85-2.58 (m, 5H); 2.48-2.22 (m, 1H); 2.07 (s, 1H), 1.95-1.78 (m, 1H), 1.75-1.42 (m, 1H), 1.42-1.17 (m, 4H), 0.88-0.77 (m, 3H).
HRMS calc. for C28H38N4O4; 494.2893; found 494.2888 ± 0.0015
HPLC tR= 8.27 min.
Compound 221
1H NMR (300 MHz, DMSO-d6): δ 7.86 (d, J = 6.7 Hz) and 7.65-7.58 (m) (1H); 7.28-7.06 (m, 7H); 6.88 (d, 8.06 Hz, 1H); 6.81 (t, J = 6.7 Hz, 1H); 4.07-3.91 (m, 3H); 3.77-3.65 (m, 1H); 3.56-3.38 (m, 2H); 3.35-3.25 (m, 3H); 3.25-3.07 (m, 2H); 3.04-2.63 (m, 3H); 2.52 (s, 3H); 2.01-1.71 (m, 4H); 1.66-1.49 (m, 2H); 1.47-1.17 (m, 4H); 0.90-0.78 (m, 3H).
13C NMR (75 MHz, DMSO-d6): δ 172.15; 170.81; 170.74; 157.29; 139.62; 130.76; 130.56; 129.56; 128.82; 61.73; 59.29; 56.37; 47.90; 41.11; 41.03; 39.36; 35.81; 35.43; 30.23; 30.03; 29.63; 25.12; 19.15; 14.66.
HRMS calc. for C30H40N4O4; 520.3049; found 520.3041 ± 0.0016.
HPLC tR = 8.30 min.
Example 3
Alternative Synthetic Strategies
A. Method LS1 for Representative Large Scale Synthesis of Compounds of the Invention
Step LS1-A: Synthesis of LS1-8
TLC (30% AcOEt, 70% hexanes); Rf = 0.56; detection: UV and CMA
1H NMR (CDCl3): δ 7.37-7.26 (5H, m, Ph), 7.19-7.13 (2H, m, Ph), 6.90 (1H, t, Ph), 6.83 (1H, d, Ph), 5.10 (2H, s, NHC(O)OCH2Ph), 4.96 (1H, broad, NHCbz), 4.59 (1H, sextuplet, PhOCH(CH3)CH2Br), 3.58-3.47 (2H, m, CH2Br), 3.19 (2H, q, CH2NHCbz), 2.67 (2H, t, PhCH2CH2), 1.78 (2H, quint, PhCH2CH2), 1.44 (3H, d, CHCH3).
LC/MS (Grad_A4): tR = 11.15 min
Step LS1-B1: Synthesis of LS1-10
TLC (30% AcOEt, 70% hexanes); Rf= 0.32; detection: UV and CMA,
1H NMR (CDCl3): δ 7.35-7.29 (5H, m, Ph), 7.17-7.12 (2H, m, Ph), 6.91-6.84 (2H, m, Ph), 5.51 (1H, broad, CH2NHCHRR'), 5.09 (2H, s, OCH2Ph), 4.67-4.51 (1H, m, PhOCH(CH3)R), 3.65 (3H, s, C(O)OCH3), 3.24-3.10 (3H, m, NHCH(Pr)CO2Me and CH2NHCbz), 2.87-2.41 (4H, m, PhCH2CH2 and NHCH2CH(Me)OPh), 1.86-1.76 (2H, m, PhCH2CH2), 1.70-1.63 (2H, m, CH3CH2CH2), 1.36-1.28 (2H, m, CH3CH2CH2), 1.23 (3H, d, CHCH3), 0.90 (3H, t, CH3CH2CH2).
13C NMR (CDCl3): δ 176.44, 156.88, 155.58, 137.14, 131.16, 130.57, 128.68, 128.34, 128.21, 127.33, 120.79, 112.62, 73.16, 66.62, 61.30, 54.21, 51.95, 40.86, 36.02, 30.60, 27.88, 19.20, 17.80, 14.07.
LC/MS (Grad_A4): tR = 6.76 min
Step LS1-B2: Alternative synthesis of LS1-10
TLC (50% AcOEt, 50% hexanes); Rf = 0.47; detection: UV and CMA
1H NMR (CDCl3): δ 7.74 (2H, d, Ph), 7.36-7.26 (7H, m, Ph), 7.14-7.08 (2H, m, Ph), 6.88 (1H, t, Ph), 6.74 (1H, d, Ph), 5.10 (2H, s, NHC(O)OCH2Ph), 4.97 (1H, broad, NHCbz), 4.61-4.55 (1H, m, PhOCH(CH3)CH2OTs), 4.19-4.05 (2H, m, CH2OTs), 3.15 (2H, q, CH2NHCbz), 2.56 (2H, td, PhCH2CH2), 2.42 (3H, s, PhCH3) 1.74 (2H, quint, PhCH2CH2), 1.27 (3H, d, CHCH3)
13C NMR (CDCl3): δ 156.67, 155.05, 145.20, 137.04, 133.02, 131.16, 130.65, 130.11, 128.72, 128.28, 128.23, 128.10, 127.39, 121.50, 112.87, 71.99, 71.42, 66.68, 40.79, 30.32, 27.57, 21.87, 16.74.
LC-MS (Grad_A4): tR = 11.02 min
Application of the procedure in Step LS1-B1, substituting the tosylate LSl-8b as alkylating agent gave 73% yield of LS1-10 with 2 eq of H-Nva-OMe.Step LS1-C1: Synthesis of LS1-7
TLC (50% AcOEt, 50% hexane); Rf = 0.32; detection: UV and CMA
13NMR (CDCl3): δ 176.11, 156.81, 155.51, 155.18, 136.93, 131.13, 130.37, 128.72, 128.31, 127.44, 121.20, 113.70, 81.36, 73.40, 66.79, 61.99, 40.80, 32.83, 31.56, 30.33, 28.48, 27.48, 20.10, 17.53, 14.11.
LC/MS (Grad_A4): tR =12.50 min
Step LS1-C2: Divergent Synthetic Route (no amine protection)
TLC (50% AcOEt, 50% hexane); Rf = 0.71; detection: UV and CMA
LS1-13, despite the presence of the free amine, has been used in the remaining part of the synthetic scheme to successfully access the desired macrocycle.Step LS1-D: Synthesis of dipeptide LS1-6
1H NMR (DMSO-d6): δ 9.40-8.70 (3H, d and 2 broads, C(O)NH and CH3NH2+Cl-), 7.39-7.17 (10H, m, Ph), 5.11 (2H, s, C(O)OCH2Ph), 4.69-4.61 (1H, m, CHCH3), 3.69 (1H, dd, CHCH2Ph), 3.31 (3H, s, CH3NH2+Cl-), 3.17-3.11 and 2.97-2.90 (CHCH2Ph), 1.28 (3H, d, CHCH3)
13C NMR (DMSO-d6): δ 171.33, 169.18, 137.63, 136.31, 129.92, 129.11, 128.95, 128.83, 128.63, 127.30, 67.00, 56.57, 54.38, 36.98, 31.11, 16.47.
LC/MS (Grad_A4): tR = 6.17 min
Step LS1-E: Synthesis of amino acid LS1-5
TLC (50% AcOEt, 50% hexanes): Rf= 0.78; detection: UV and CMA
LC/MS (Grad_A4): tR =15.15 min
TLC (50% AcOEt, 50% hexanes): Rf= 0.52; detection: UV and CMA
LCMS (Grad_A4): tR = 8.23 min
Step LS1-F: Macrocyclization and final deprotection
TLC (5:95 MeOH:DCM): Rf=0.43; detection: UV and CMA
1H NMR (DMSO-d6 60°C): 8 7.62.(1H, d, NH), 7.47 (1H, broad, NH), 7.27-7.08 (7H, m, Ph), 6.85-6.79 (2H, m, Ph), 4.78 (1H, broad), 4.51-4.38 (1H, m), 4.11-4.02 (2H, m), 3.62-3.56 (1H, m), 3.32-3.04 (5H, m), 2.92 (3H, s, N-CH3), 2.72-2.46 (2H, m), 1.90-1.59 (4H, m), 1.46 (9H, s, C(CH3)3), 1.28-1.06 (8H, m), 0.65 (3H, t, CH2CH3).
13C NMR (DMSO-d6): δ 172.03, 171.07, 155.83, 155.60, 139.69, 131.82, 130.82, 129.69, 128.73, 127.73, 126.75, 121.06, 113.40, 80.66, 74.75, 57.22, 56.66, 50.49, 35.88, 33.72, 32.71, 30.41, 28.68, 19.35, 18.44,14.95, 14.19.
LC-MS (Grad_A4): tR = 12.82 min
Macrocycle LS1-11 (565 mg, 0.91mmol, 1.0 eq) was dissolved in a solution of 4 M HCl/dioxane (4.6 mL, 20 eq) and the mixture stirred 2 h at room temperature. The mixture was concentrated under reduced pressure and placed under vacuum (oil pump) to give final macrocycle Compound 410 as a white solid (508 mg, 100%).1H NMR (DMSO-d6, 60°C): δ 9.38 (1H, broad), 8.28 (1H, d), 8.13 (1H, broad), 7.81 (1H, t), 7.28-7.13 (7H, m, Ph), 6.93-6.87 (2H, m, Ph), 4.84-4.77 (1H, m), 4.54-4.40 (3H, m), 3.35-3.07 (6H, m), 2.94 (3H, s, N-CH3), 2.90-2.81 and 2.64-2.47 (2H, m), 1.85-1.64 (4H, m), 1.38-1.21 (5H, m),1.10 (3H, d, CH3), 0.88 (3H, t, CH2CH3).
13C NMR (CDCl3): δ 171.92, 171.46, 170.44, 155.11, 139.07, 131.68, 130.47, 129.87, 128.67, 127.54, 126.90, 121.50, 112.94, 69.83, 67.03, 58.14, 56.33, 55.61, 55.29, 53.88, 50.48, 37.29, 32.29, 31.08, 29.70, 28.58, 18.15, 17.89, 15.20, 14.55.
LC-MS (Grad_A4): tR = 6.23 min
LC chiral (Grad35A-05): tR = 26.49 min
LC chiral (Grad40A-05): tR = 26.54 min
B. Method LS2 for Representative Large Scale Synthesis of Compounds of the Invention
Step LS2-A: Synthesis of dipeptide LS2-21
TLC (hexanes/ethyl acetate, 1:1): Rf= 0.3; detection: CMA and UV
1H NMR (CDCl3): δ 1.25 (m, 2H), 1.40 (s, 9H), 2.66 (s. 3H), 2.85 (dd, 1H), 3.15 (dd, 1H), 4.70 (q, 2H), 5.15 (s, 2H), 6.50 (sb, 1H), 7.15 (m, 2H), 7.20 (m, 3H), 7.35 (m, 5H).
13C NMR (CDCl3): δ 28.18, 38.23, 53.61, 53.61, 67.87, 127.12, 128.40, 128.19, 128.40, 128.61, 128.8, 129.53, 170.01.
LC/MS (Grad_A4); tR = 9.73 min; Mass found: 440
TLC (100% AcOEt): Rf= 0.1; detection: CMA and UV.
1H NMR (CDCl3): δ 1.20 (d J=7.03 Hz, 3H) (s, 9H), 2.40 (s, /H), 3.01-3.20 (m, 3H), 4.80 (q, 1H), 7.20 (m, 5H), 7.60 (m, 1H).
13C NMR (CDCl3): δ 19.64, 28.18, 35.12, 38.46, 53.06, 60.42, 82.29, 127.05, 128.50, 129.71, 136.61, 170.85, 174.28.
LC-MS (Grad_A4): tR = 5.86 min; Mass found: 306
Step LS2-B: Synthesis of tripeptide LS2-22
TLC (hexanes/ethyl acetate, 3:2): Rf= 0.3; detection: CMA and UV
1H NMR (CDCl3): δ 0.95 (m, 3H), 1.20 (d, 2H), 1.40(s, 9H), 1.42-1.70 (m, 4H), 2.60 (m, 2H), 2.90 (s, 3H), 4.40 (m, 1H), 4.80 (m, 1H), 4.92 (m, 1H), 6.10 (m,1H), 6.30 (M, 1H), 6.40 (m, 1H), 6.90 (m, 2H), 7.20 (m, 3H), 7.40-7.60 (m, 2H), 7.90 (m,1H), 8.10 (m, 1H).
13C NMR (CDCl3): δ 23.42, 26.32, 33.12, 48.63, 49.10, 49.85, 77.56, 117.63, 120.67, 122.35, 122.93, 123.11, 123.80, 124.13, 124.68, 124.75, 131.45, 147.67, 165.16,165.68, 167.66.
LC-MS (Grad_A4): tR =11.48 min; Mass found: 602
Step LS2-C: Synthesis of LS2- 23
TLC (hexanes/ethyl acetate, 2:1): Rf= 0.4; detection: CMA and UV
1H NMR (DMSO-d6): 0.5 (m, 1H), 0.70 (m, 1H), 1.01-1.40 (m, )1.60 (m, 3H), 1.80 (m, 1H), 2.55 (m,), 2.95 (m, 4H), 3.1 (m, 2), 3.30 (m, 2H), 3.60 (m, 1H), 3.90 (m, 1H), 4.30 (m, 1H), 4.80 (m,), 6.80 (m, 3H), 7.05 (m, 6H), 7.60 (2H), 7.95 (m, 1H), 8.20 (m, 1H), 8.25 (m, 1H), 8.90 (s, 2H).
13C NMR (CDCl3): δ 13.84, 15.36, 17.40, 17.70, 19.40, 22.17, 27.52, 28.14, 28.67, 30.29, 31.27, 33.27; 38.01, 40.35, 51.02, 53.08, 54.35, 56.72, 70.25, 73.13, 81.10, 113.49, 120.94, 122.28, 125.44, 127.01, 127.19, 127.19, 127.68, 127.68, 127.79, 128,64, 129.57,130.06, 136.2, 137.10, 165.10,170.10, 171.10.
LC-MS (Grad_A4): tR =15.10 min; Mass found: 892
LC/MS (Grad_A4): tR = 8.55 min; Mass found: 737
Step LS2-D: Synthesis of LS2-26 (Macrolactamization)
TLC (ethyl acetate/ hexanes, 3:1): Rf= 0.3; detection: CMA and UV
1H NMR (CDCl3): δ 0.64 (m, 3H), 0.87 (m, 1H), 1.02 (m, 2H), 1.20 (m, 6H), 1.40 (m, 3H), 1.60 (m, 4 H), 1.80 (m, 1H0, 2.01 (m, 1H), 2.40 (m, 1H), 2.80 (m, 1H), 3.15 (s, 3H), 3.20 (m, 2H), 3.45 (m, 1H), 3.60-3.80 (m, 2H), 4.40-4.60 (dd, 2H), 4.70 (m, 2H), 5.01 (m, 1H), 5.90 (m, 1H), 6.80 (m, 2H), 6.90 (m, 1H), 7.15-7.25 (m, 7H), 7.60 (m, 2H), 8.01 (m, 1H), 8.10 (m, 1H).
13C NMR (CDCl3): δ 13.28, 13.55, 18.75, 18.98, 28.89, 29.92, 29.92, 33.19, 36.81, 36.98, 39.55, 51.94, 53.83, 55.25, 59.51, 74.64, 111.66, 120.64, 122.51, 125.15, 127.10, 127.37, 127.84, 128.07, 128.86, 129.47, 130.51, 136.55, 137.30, 152.58, 155.86, 165.33, 169.75, 170.09, 171.66.
LC/MS (Grad_A4): tR =13.17 min; Mass found: 719
LC Chiral (column ODRH, Grad 55A-05): tR = 42.059.
Stey LS2-E: Synthesis of Compound 410
TLC (100% AcOEt): Rf= 0.2; detection: CMA and UV
1H NMR (DMSO-d6): δ 0.79 (m, 3H), 1.20 (m, 9H), 1.30 (M, 1H), 1.60 (m, 1H), 1.90 (m, 1H), 2.10 (sb, 1H), 2.35 (ddd, J=4.98, 4.95, 4.69 Hz, 1H), 2.56 (sb, 1H), 2.63 (m, 1H), 2.80 (ddd, J=4.99, 4.69, 4.40 Hz, 1H), 3.01-3.15 (m, 5H), 3.25 (dd, J=4.69, 4.11 Hz, 1H), 3.30 (s, 2H), 3.55 (sb, 1H), 3.95 (q, J=7.33, 7.04 Hz, 1H), 4.50 (sb, 1H), 6.80 (m, 1H), 6.90 (m,1H), 7.10-7.30 (m, 7H), 7.70 (m, 2H).
13C NMR (DMSO-d6): δ 14.60, 14.84, 18.46, 18.85, 29.80, 29.96, 34.03, 35.84, 36.31, 40.68, 54.79, 55.67, 57.77, 58.11, 73.42, 112.26, 120.58, 126.84, 127.81, 128.80, 129.73, 131.10, 140.10, 158.10, 172.10, 172.40, 176.10.
LC/MS (Grad_A4): tR = 6.19 min; Mass found: 522
Example 4
Synthesis and Biological Results for Representative Compound 298
A. Solution Synthesis of Compound 298
1H NMR (CD3OD): δ 4.88 (3H, s, NH3+), 3.85 (3H, s, CH3O), 3.36-3.33 (1H, d, NH3+CHCH3O), 1.19-1.10 (1H, m, CH(CH2)2), 0.83-0.53 (4H, m, CH(CH2)2).
1H NMR (CDCl3): δ 7.37-7.26 (5H, m, Ph), 7.19-7.13 (2H, m, Ph), 6.92-6.88 (1H, t, Ph), 6.84-6.81 (1H, d, Ph), 5.10 (2H, s, NHC(O)OCH2Ph), 4.96 (1H, broad, NHCbz), 4.62-4.56 (1H, sextuplet, PhOCH(CH3)CH2Br), 3.58-3.45 (2H, m, CH2Br), 3.22-3.16 (2H, q, CH2NHCbz), 2.69-2.64 (2H, t, PhCH2CH2), 1.83-1.78 (2H, quint, PhCH2CH2),1.45 (3H, d, CHCH3).
13C NMR (CDCl3): δ 156.66, 155.08, 136.99, 131.28, 130.77, 128.75, 128.32, 128.28, 127.49, 121.56, 113.03, 73.12, 66.76, 40.69, 36.12, 30.45, 27.48, 19.00.
LC/MS (Grad_A4): tR =11.04 min
1H NMR (CDCl3): δ 3.70 (3H, s, CH3O), 2.88-2.85 (1H, d, NH2CHCH3O), 1.54 (1H, s, NH2), 1.04-0.97 (1H, m, CH(CH2)2), 0.56-0.27 (4H, m, CH(CH2)2).
TLC [hexanes/AcOEt (1:1)]: Rf= 0.35; detection: UV and CMA
1H NMR (CDCl3): δ 7.31-7.22 (5H, m, Ph), 7.07-7.03 (2H, m, Ph), 6.80-6.74 (2H, m, Ph), 5.48 (1H, broad, CH2NHCHRR'), 5.00 (2H, s, OCH2Ph), 4.49-4.43 (1H, m, PhOCH(CH3)R), 3.56 (3H, s, C(O)OCH3), 3.18-3.11 (3H, m, NHCH(Pr)CO2Me and CH2NHCbz), 2.75-2.50 (4H, m, PhCH2CH2 and NHCH2CH(Me)OPh), 1.76-1.68 (2H, m, PhCH2CH2), 1.19-1.14 (3H, d, PhOCH(CH3)R), 0.88-0.80 (1H, m, CH(CH2)2), 0.46-0.13 (4H, m, CH(CH2)2).
LC/MS (Grad_A4): tR =6.63 min
TLC [hexanes/AcOEt (1:1)]: Rf = 0.57; detection: UV and CMA
LC/MS (Grad_A4): 12.98 min.
LC/MS (Grad_A4): tR =12.16 min
1H NMR (DMSO-d6): 8 8.40 (3H, bs, NH3Cl), 7.47-7.36 (2H, d, Ph), 7.37-7.06 (11H, m, Ph), 5.15 (2H, s, OCH2Ph), 4.37 (1H, bt, CHCH2Ph), 3.09-3.05 (2H, m, CHCH2Ph), 2.27 (3H, s, CH3Ph).
13C NMR (DMSO-d6): δ 169.52 163.83, 160.62, 140.01, 138.56, 135.48, 132.16, 132.04, 131.33, 131.28, 129.09, 129.05, 128.84, 128.72, 127.09, 126.20, 116.18, 115.89, 67.83, 53.88, 35.83, 21.47.
LC/MS (Grad_A4): tR = 6.12 min
Melting point (uncorrected): 165-167°C.
1H NMR (CDCl3): δ 7.38-7.28 (5H, m, OCH2Ph), 7.10-7.06 (2H, m, Ph(4F)), 6.96-6.90 (2H, m, Ph(4F)), 5.13 (2H, d, OCH2Ph), 3.76-3.71 (1H, t, CHCH2Ph), (2H, dq, CHCH2Ph), 1.53 (2H, s, NH2)
1H NMR (DMSO-d6): δ 9.31-9.28 (1H, d, C(O)NH), 7.38-7.26 (7H, m, Ph), 7.09-7.04 (2H, m, Ph), 5.10 (2H, s, C(O)OCH2Ph), 4.65-4.57 (1H, m, CHCH3), 3.76-3.69 (1H, d, CHCH2Ph), 3.15-3.08 and 2.99-2.91 (CHCH2Ph), 2.221 (3H, s, CH3NH2+Cl-), 1.31-1.28 (3H, d, CHCH3).
13C NMR (DMSO-d6): δ 171.33, 169.18, 137.63, 136.31, 129.92, 129.11, 128.95, 128.83, 128.63, 127.30, 67.00, 56.57, 54.38, 36.98, 31.11, 16.47.
LC/MS (Grad_A4): tR = 6.26 min
LC Chiral (Iso100B_05): tR = 29.6 min. 97% UV
Melting point (uncorrected): 140-142 °C
LC/MS (Grad_A4): tR =15.06 min
LC/MS (Grad_A4): tR = 8.05 min
LC/MS (Grad_A4): tR = 5.38 min.
LC/MS (Grad_A4): tR = 6.19 min
LC/MS (Grad_A4): 6.18 min; Purity (UV/ELSD/CLND): 100/100/100.
LC/MS (Grad_A4): tR =12.09 min.
LC/MS (Grad_A4): tR = 5.40 min.
B. Biological Results
1. Radioligand Binding Assay on Ghrelin Receptor (human clone, hGHS-R1a) Objective
Key Aspects of Method
1. Binding performed on membranes prepared from HEK293 expressing the transfected, cloned human ghrelin receptor (hGHS-R1a).
2. [125I]Ghrelin was used as the radioligand for displacement (Kd = 0.01 nM, test concentration = 0.007 nM).
3. Ghrelin (unlabeled, 1 µM) was used to determine non-specific binding.
4. Compound 298 tested in duplicate samples over an 11-point concentration curve.
Results
2. Cell-based, Functional Assays on Ghrelin Receptor (human clone, hGHS-R1a) Objectives
Key Aspects of Method
Results
3. Compound 298 (i.v.) Effect on Growth Hormone (GH) Release in Conscious, Freely-Moving Rats.
Objectives
Method
Results
4. Compound 298 Effect on hGHS-R1a Receptor Desensitization
Objective
Method
Results
5. Compound 298 Effect on Gastric Emptying of a Solid Meal in Naïve Rat Objectives
Methods
Results
6. Effect of Compound 298 in the Treatment of Post-operative Ileus in Rat Objective
Methods
Results
7. The Effect of Compounds of the Invention on Gastric Emptying and Gastrointestinal Transit in a Model of Opioid-Delayed Gastric Emptying
Objective
Methods
Results
8. Metabolic Stability in Human Plasma
Experimental method
| Triplicates | Free amine | Free Amine + PBS | HCl Salt | HCl Salt + PBS | ||||
| 2 Hours (%) | 24 Hours (%) | 2 Hours (%) | 24 Hours (%) | 2 Hours (%) | 24 Hours (%) | 2 Hours (%) | 24 Hours (%) | |
| Assay #1 | 101.0 | 105.5 | 98.3 | 97.9 | 100.2 | 96.6 | 102.9 | 97.8 |
| Assay #2 | 100.3 | 95.6 | 100.4 | 100.8 | 99.1 | 104.3 | 97.4 | 101.9 |
| Assay #3 | 101.3 | 100.9 | 98.3 | 101.9 | 101.6 | 102.3 | 99.4 | 98.5 |
| Mean | 100.9 | 100.7 | 99.0 | 100.2 | 100.3 | 101.1 | 99.9 | 99.4 |
| Standard Deviation | 0.5 | 4.9 | 1.2 | 2.1 | 1.3 | 4.0 | 2.7 | 2.2 |
| RSD | 0.5 | 4.9 | 1.3 | 2.1 | 1.3 | 4.0 | 2.7 | 2.2 |
9. Compound 298 Interaction Profile at Nine Human Cytochrome P450 Enzyme Subtypes
10. Compound 298 Profile in hERG channel inhibition
Example 5
Gastroparesis Animal Model
Materials
Method
| Cm pd X | R1 | R2 | m R7 | R3 | R4 | n Z1 | R5 | R6 | p Z2 | T | |
| 1N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 2N-H | H |
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OH | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 3N-H | H |
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OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 4N-H | H |
|
OCH3 | H | CH3 | ON-H |
|
H | ON- H |
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|
| 5 N-H | H |
|
OCH2 CH, | H | H | ON-H |
|
H | ON- H |
|
|
| 6N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 7N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 8N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 9N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
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||
| 10 N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 11 N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 12 N-H |
|
H | OH | H |
|
ON-H | H |
|
ON- H |
|
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| 13 N-H |
|
H | OH | H |
|
ON-H | H |
|
ON- H |
|
|
| 14N-H | H |
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OH | CH3 | H | ON-H | H |
|
ON- H |
|
|
| 15 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
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| 16 N-H | H |
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OCH3 | CR3 | H | ON-H |
|
H | ON- H |
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| 17 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
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| 18 N-H |
|
OH |
|
ON-H | H |
|
ON- H |
|
|||
| 19a N-H | H |
|
OCH3 | CH3 | H | ON-H | H |
|
ON- H |
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| 19b | diastereomer | ||||||||||
| 20 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 21 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 22N-H |
H |
|
ON-H | H |
|
ON- H |
|
||||
| 23 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 24 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 25N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 26 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 27 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 28 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 29 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 30 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 31 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 32N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
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| 33N-H | H |
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OCH3 | CH3 | H | ON-H |
|
H | ON- H |
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| 34N-H | H |
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OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
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| 35 N-H | H |
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OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
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| 36 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
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| 37aN-H | H |
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OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
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| 37b | diastereomer | ||||||||||
| 38 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
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| 39 N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
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| 40 N-H | H |
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OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
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| 41 N-H | H |
|
OCH3 |
|
H | ON-H |
|
H | ON- H |
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| 42 N-H | H |
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OCH3, | CH3 | H | ON-H |
|
H | ON- H |
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| 43 N-H | H |
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OCH2 CH3 | CH3 | H | ON-H |
|
H | ON- H |
|
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| 47N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
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||
| 52 N-H | H |
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OCH3 | H | H | ON-H |
|
H | ON- H |
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| 55 N-H |
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H | OCH3 | H | H | ON-H |
|
H | ON- H |
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| 57N-H | H |
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OCH3 | H | H | ON-H | H |
|
ON- H |
|
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| 59 N-H | H |
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O | H | CH3 | ON-H |
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H | ON- H |
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| 60 N-H | H |
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OH | CH3 | H | ON-H |
|
H | ON- H |
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| 61 N-H | H |
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OH | H | H | ON-H |
|
H | ON- H |
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| 62 N -H | H |
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OH | H |
|
ON-H |
|
H | ON- H |
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| 65 N-H | H |
|
OH |
|
H | ON-H |
|
H | ON- H |
|
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| 66 N-H | H |
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OH | CH3 | CH3 | ON-H |
|
H | ON- H |
|
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| 67N-H | H |
|
OH |
|
ON-H |
|
H | ON- H |
|
||
| 68N-H | H |
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OH | H |
|
ON-H |
|
H | ON- H |
|
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| 72 N-H | H | CH3 | OCH3 | H | H | ON-H |
|
H | ON- H |
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| 74 H- | H |
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OCH3 | H | H | ON-H |
|
H | ON- H |
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| 75 H- | H |
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OCH3 | H | H | ON-H |
|
H | ON- H |
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| 77 N-H | H |
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OCH3 | H | H | ON-H |
|
H | ON- H |
|
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| 79 N-H | H |
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OCH3 | H | CH3 | ON-H |
|
H | ON- H |
|
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| 84 N-H | H |
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OCH3 | H | H | ON-H |
|
H | ON- H |
|
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| 88 N- | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 89 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 90N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 93N-H | H |
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OH | H | CH3 | ON-H | H |
|
ON- H |
|
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| 94 N-H | H |
|
OH | CH3 | H | ON-H | H |
|
ON- H |
|
|
| 95 N- H | H |
|
ON | CH3 | CH3 | ON-H | H |
|
ON-H |
|
|
| 97 N-H | H |
|
OH |
|
ON-H |
|
H | ON- H |
|
||
|
|
|||||||||||
| 100 N-H | H | CH3 | OH |
|
ON-H | H |
|
ON- H |
|
||
| 101 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 102 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 105N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 108N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 109 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 111 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 112 N-H | H | H | OH |
|
ON-H | H |
|
ON- H |
|
||
| 113 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 116 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 117 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 118 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 119 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 120 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 122 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 123 N-H | H |
|
OH H |
|
ON-H | H |
|
ON- H |
|
||
| 124 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 116N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 127 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 130 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 131 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 132 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 133 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 134 N-H | H |
|
OH |
|
ON- H | H |
|
ON- H |
|
||
| 135 N- | H |
|
OH |
|
ON-H | H |
|
ON-H |
|
||
| 136N-a H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 136 b | diastereomer | ||||||||||
| 137 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 138 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 139 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 140 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 141 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 142 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 143 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 144 N-H | H |
|
OCH3 |
|
H | ON-H |
|
H | ON- H |
|
|
| 145 N-a H | H |
|
OCH3 | H |
|
ON-H |
|
H | ON- H |
|
|
| 145 b | diastereomer | ||||||||||
| 146 N-a H | H |
|
OCH3 | H |
|
ON-H |
|
H | ON- H |
|
|
| 146 b | diastereomer | ||||||||||
| 147 N-H | H |
|
OCH3 |
|
H | ON-H |
|
H | ON- H |
|
|
| 148 N-H | H |
|
OCH, | H |
|
ON-H |
|
H | ON- H |
|
|
| 149 N-H | H |
|
OCH3 |
|
H | ON-H |
|
H | ON- H |
|
|
| 150 N-a H | H |
|
OCH3 | H |
|
ON-H |
|
H | ON- H |
|
|
| 151 N-H | H |
|
OH |
|
H | ON-H |
|
H | ON- H |
|
|
| 152 N-a H | H |
|
OCH3 | H |
|
ON-H |
|
H | ON- H |
|
|
| 152 N- bH | diastereomer | ||||||||||
| 153 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 154 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 155 N-H | H |
|
OH H |
|
ON-H | H |
|
ON- H |
|
||
| 156N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 157 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 158N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 159 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 160 N-a H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 160 b | diastereomer | ||||||||||
| 161 N-a H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 161 b | diastereomer | ||||||||||
| 162 N-a H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 164 N-H | H |
|
ON |
|
ON-H | H |
|
ON- H |
|
||
| 168 N-H | H |
- |
OH |
|
ON-H |
|
ON- 12H |
|
|||
| 169 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON-H |
|
|
| 170 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON-H |
|
|
| 171 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON-H |
|
|
| 173 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON-H |
|
|
| 174 N-H | H |
|
OCH3 | CH3 | H | ON- H |
|
H | ON- H |
|
|
| 175 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 176 N-H | H |
|
OCH3 | CH, | H | ON-H |
|
H | ON- H |
|
|
| 177 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 178 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 179 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 180 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 184 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 184 1 | diastaeomer | ||||||||||
| 85 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 186 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 187 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 188 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 189 N-a H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 189 b | diastereomer | ||||||||||
| 190N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 191 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 192 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 193 N-H | H |
H |
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 194 N-a H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 194 b | diasteromer | ||||||||||
| 193 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 197 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 199 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 200 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 201 N-Me | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 203 N-Me | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 208 N-a Me | H |
|
OH O |
|
ON-H | H |
|
ON- H |
|
||
| 208b b | diastereomer | ||||||||||
| 209 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 210 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 211 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 212 N-H | H |
|
OCH3 | H |
|
ON-H |
|
H | ON- H |
|
|
| 213 N-H | H |
|
OCH3 |
|
H | ON-H |
|
H | ON- H |
|
|
| 214 N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 215 N-H | H |
|
OH |
|
H | ON-H |
|
H | ON- H |
|
|
| 216 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 218 N-H |
|
OH |
|
ON-H | H |
|
ON- H |
|
|||
| 219 N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
| Com pound | R2 | R3 | R4 | R7 | R5 | R6 | Tether |
| 298 |
|
CH3 | H | CH3 |
|
H |
|
| 299 |
|
CH3 | H | CH3 |
|
H |
|
| 301 |
|
|
H | H |
|
|
|
| 303 |
|
|
H | H |
|
|
|
| 305 |
|
CH3 | H | CH3 |
|
H |
|
| 306a |
|
CH3 | H | CH3 |
|
H |
|
| 306b | diastereomer | ||||||
| 307 |
|
CH3 | H | CH3 |
|
H |
|
| 308 |
|
CH3 | H | CH3 |
|
H |
|
| 309 |
|
CH3 | H | CH3 |
|
H |
|
| 310 |
|
CH3 | H | CH3 |
|
H |
|
| 311 |
|
CH3 | H | CH3 |
|
H |
|
| 312 |
|
CH3 | H | CH3 |
|
H |
|
| 313 |
|
CH3 | H | CH3 |
|
H |
|
| 314 |
|
CH3 | H | CH3 |
|
H |
|
| 315 |
|
CH3 | H | CH3 |
|
H |
|
| 316 |
|
CH3 | H | CH3 |
|
H |
|
| 317 |
|
CH3 | H | CH3 |
|
H |
|
| 318 |
|
CH3 | H | CH3 |
|
H |
|
| 319 |
|
CH3 | H | CH3 |
|
H |
|
| 320 |
|
CH3 | H | CH3 |
|
H |
|
| 321 |
|
CH3 | H | CH3 |
|
H |
|
| 322 |
|
CH3 | H | CH3 |
|
H |
|
| 323 |
|
CH3 | H | CH3 |
|
H |
|
| 324 |
|
CH3 | H | CH3 |
|
H |
|
| 325 |
|
|
H | H |
|
|
|
| 326 |
|
|
H | H |
|
|
|
| 327a |
|
|
H | H |
|
|
|
| 327b | diastereomer | ||||||
| 328 |
|
|
H | H |
|
|
|
| 329 |
|
|
H | H |
|
|
|
| 330 |
|
|
H | H |
|
|
|
| 331a |
|
|
H | H |
|
|
|
| 331b | diastereomer | ||||||
| 332a |
|
|
H | H |
|
|
|
| 332b | diastereomer | ||||||
| 333 |
|
|
H | H |
|
|
|
| 335 |
|
CH3 | H | CH3 |
|
H |
|
| 336 |
|
CH3 | H | CH3 |
|
H |
|
| 337 |
|
CH3 | H | CH3 |
|
H |
|
| 338 |
|
CH3 | H | CH3 |
|
H |
|
| 339 |
|
CH3 | H | CH3 |
|
H |
|
| 340 |
|
CH3 | H | CH3 |
|
H |
|
| 341 |
|
|
H | H |
|
|
|
| 342 |
|
|
H | H |
|
|
|
| 343 |
|
|
H | H |
|
|
|
| 344 |
|
|
H | H |
|
|
|
| 345a |
|
|
H | H |
|
|
|
| 346 |
|
|
H | H |
|
|
|
| 347 |
|
|
H | H |
|
|
|
| 348a |
|
CH3 | CH3 | H | H |
|
|
| 348b | diastereomer | ||||||
| 353a |
|
CH3 | H | CH3 |
|
H |
|
| 353b | diastereomer | ||||||
| 354 |
|
CH3 | H | CH3 |
|
H |
|
| 355 |
|
CH3 | H | CH3 |
|
H |
|
| 356 |
|
CH3 | H | CH3 |
|
H |
|
| 357 |
|
CH3 | H | CH3 |
|
H |
|
| 358a |
|
|
H | H |
|
|
|
| 358b | diastereomer | ||||||
| 359 |
|
|
H | H |
|
|
|
| 360 |
|
|
H | H |
|
|
|
| 361 |
|
|
H | H |
|
|
|
| 362 |
|
|
H | H |
|
|
|
| 363 |
|
|
H | H |
|
|
|
| 364 |
|
|
H | H |
|
|
|
| 365 |
|
|
H | H |
|
|
|
| 366 |
|
|
H | H |
|
|
|
| 367 |
|
CH3 | H | CH3 |
|
H |
|
| 368a |
|
|
H | H |
|
|
|
| 368b | diastereomer | ||||||
| 369 |
|
|
H | H |
|
|
|
| 370 |
|
|
H | H |
|
|
|
| 371 |
|
|
H | H |
|
|
|
| 372 |
|
CH3 | H | CH3 |
|
H |
|
| 373 |
|
CH3 | H | CH3 |
|
H |
|
| 374 |
|
CH3 | H | CH3 |
|
H |
|
| 375 |
|
CH3 | H | CH3 |
|
H |
|
| 376 |
|
CH3 | H | CH3 |
|
H |
|
| 377 |
|
CH3 | H | CH3 |
|
H |
|
| 378 |
|
CH3 | H | CH3 |
|
H |
|
| 379 |
|
CH3 | H | CH3 |
|
H |
|
| 380 |
|
|
H | H |
|
|
|
| 381 |
|
|
H | H |
|
|
|
| 382 |
|
|
H | H |
|
|
|
| 383 |
|
|
H | H |
|
|
|
| 384 |
|
|
H | H |
|
|
|
| 385 |
|
|
H | H |
|
|
|
| 386 |
|
|
H | H |
|
|
|
| 387 |
|
|
H | H |
|
|
|
| 388 |
|
|
H | H |
|
|
|
| 389a |
|
CH3 | H | CH3 |
|
H |
|
| 389b | diastereomer | ||||||
| 390 |
|
|
H | H |
|
|
|
| 391 |
|
CH3 | H | CH3 |
|
H |
|
| 392 |
|
|
H | H |
|
|
|
| 393 |
|
|
H | H |
|
|
|
| 394 |
|
CH3 | H | CH3 |
|
H |
|
| 395 |
|
|
H | H |
|
|
|
| 398 |
|
CH3 | H | CH3 |
|
H |
|
| 399a |
|
|
H | H |
|
|
|
| 399b | diastereomer | ||||||
| 400 |
|
CH3 | H | CH3 |
|
H |
|
| 401 |
|
CH3 | H | CH3 |
|
H |
|
| 402a |
|
|
H | H |
|
|
|
| 402b | diastereomer | ||||||
| Com pound | R1 | R2 | R3 | R4 | R7 | R5 | R6 | Tether |
| 435 | H |
|
CH3 | H | CH3 |
|
H |
|
| 436 | H |
|
CH3 | H | CH3 |
|
H |
|
| 437 |
|
|
H | H |
|
|
||
| 438 | H |
|
|
H | H |
|
|
|
| 439 | H |
|
|
H | H |
|
|
|
| 440 | H |
|
|
H | CH3 |
|
|
|
| 441 | H |
|
|
H | H |
|
|
|
| 445 | H |
|
CH3 | H | CH3 |
|
H |
|
| 446a | H |
|
CH3 | H | CH3 |
|
H |
|
| 446b | diastereomer | |||||||
| 447 | H |
|
|
H | H |
|
|
|
| 488 | H |
|
H | H | CH3 | H |
|
|
| 449 | H |
|
|
H | H |
|
|
a modulator of formula I, as is defined in claim 2 or claim 4, which has any of the
following structures:
or an optical isomer, enantiomer, diastereomer, racemate or stereochemical mixture
thereof, or a pharmaceutically acceptable salt thereof; and a pharmaceutically acceptable
carrier, excipient or diluent.
| Verbin dung X | R1 | R2 | m R7 | R3 | R4 | n Z1 | R5 | R6 | p Z2 | T | |
| 1N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 2N-H | H |
|
OH | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 3N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 4N-H | H |
|
OCH3 | H | CH3 | ON-H |
|
H | ON- H |
|
|
| 5N-H | H |
|
OCH2 CH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 6N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 7N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 8N-H | H |
|
OH X |
|
ON-H | H |
|
ON- H |
|
||
| 9N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 10N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 11N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 12N-H |
|
H | OH | H |
|
ON-H | H |
|
ON- H |
|
|
| 13N-H |
|
H | OH | H |
|
ON-H | H |
|
ON- H |
|
|
| 14N-H | H |
|
OH | CH, | H | ON-H | H |
|
ON- H |
|
|
| 15N-H | H |
|
OCH3 | CH3 | H | ON- |
|
H | ON- H |
|
|
| 16N-H | H |
|
OCH3 | CH3 | H | ON- |
|
H | ON- H |
|
|
| 17N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 18N-H |
|
OH |
|
ON-H | H |
|
ON- H |
|
|||
| 19aN-H | H |
|
OCH3 | CH3 | H | ON-H | H |
|
ON- H |
|
|
| 19b | diastercomer | ||||||||||
| 20N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 21N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 22N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 23N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 24N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 25N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 26N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 27N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 28N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 29N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 30N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 31N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 32N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 33N-H | H |
|
OCH3 | CH, | H | ON-H |
|
H | ON- H |
|
|
| 34N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 35N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 36N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 37aN-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 37b | diastereomer | ||||||||||
| 38N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 39N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 40N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 41N-H | H |
|
OCH3 |
|
H | ON-H |
|
H | ON- H |
|
|
| 42N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 43N-H | H |
|
OCH2 CH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 47N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 52N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 55N-H |
|
H | OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 57N-H | H |
|
OCH3 | H | H | ON-H | H |
|
ON- H |
|
|
| 59N-H | H |
|
OH | H | CH3 | ON-H |
|
H | ON- H |
|
|
| 60N-H | H |
|
OH | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 61N-H | H |
|
OH | H | H | ON-H |
|
H | ON- H |
|
|
| 62N-H | H |
|
OH | H |
|
ON-H |
|
H | ON- H |
|
|
| 65N-H | H |
|
OH |
|
H | ON-H |
|
H | ON- H |
|
|
| 66N-H | H |
|
OH | CH3 | CH3 | ON-H |
|
H | ON- H |
|
|
| 67N-H | H |
|
H |
|
ON-H |
|
H | ON- H |
|
||
| 68N-H | H |
|
OH | H |
|
ON-H |
|
H | ON- H |
|
|
| 72N-H | H | CH3 | CH3 | H | H | ON-H |
|
H | ON-H |
|
|
| 74N-H | H |
|
OCH3, | H | H | ON-H |
|
H | ON-H |
|
|
| 73N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 77N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON-H |
|
|
| 79N-H | H |
|
OCH3 | H | CH3 | ON-H |
|
H | ON-H |
|
|
| 84N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON-H |
|
|
| 88N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 89N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 90N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 93N-H | H |
|
OH | H | CH3 | ON-H | H |
|
ON- H |
|
|
| 94N-H | H |
|
OH | CH3 | H | ON-H | H |
|
ON- H |
|
|
| 95N-H | H |
|
OH | CH3 | CH3 | ON-H | H |
|
ON- H |
|
|
| 97N-H | H |
|
OH |
|
ON-H |
|
H | ON- H |
|
||
|
|
|||||||||||
| 100N-H | H | CH3 | OH |
|
ON-H | H |
|
ON- H |
|
||
| 101N H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 102N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 105N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 108N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 109N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 111N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 112N-H | H | H | OH |
|
ON-H | H |
|
ON- H |
|
||
| 113N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 116N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 117N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 118N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 119N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 120N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 122N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 123N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 124N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 126N-H | H |
|
OH |
|
ON- | H |
H H |
ON- |
|
||
| 127N-H | H |
|
OH |
|
ON- | H |
H H |
ON- |
|
||
| 130N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 131N-H | N |
|
OH |
|
ON-H | H |
|
H |
|
||
| 132N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 133N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 134N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 135N-H | H |
|
OH |
|
ON-H | H |
|
ON- |
|
||
| 136N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 136b | diastareomer | ||||||||||
| 137N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 138N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 139N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 140N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 141N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 142N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 143N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 144N-H | H |
|
OCH3 |
|
H | ON-H |
|
H | ON- H |
|
|
| 145N-H | H |
|
OCH3 | H |
|
ON-H |
|
H | ON- H |
|
|
| 143b | diastereomer | ||||||||||
| 146N-aH | H |
|
OCH3 | H |
|
ON-H |
|
H | ON H |
|
|
| 146b | diastereomer | ||||||||||
| 147N-H | H |
|
OCH3 |
|
H | ON-H |
|
H | ON- H |
|
|
| 148N-H | H |
|
OCH3 | H |
|
ON-H |
|
H | ON- H |
|
|
| 149N-H | H |
|
OCH3 |
|
H | ON-H |
|
H | ON- H |
|
|
| 150N-H | H |
|
OCH3 | H |
|
ON-H |
|
H | ON- H |
|
|
| 151N-H | H |
|
OH |
|
H | ON-H |
|
H | ON- H |
|
|
| 152N-H | H |
|
OCH3 | H |
|
ON-H |
|
H | ON- H |
|
|
| 152N-bH | diastereomer | ||||||||||
| 153N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 154N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 155N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 156N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 157N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 158N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 159N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 160N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 160b | diastereomer | ||||||||||
| 161N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 161b | diastereom | ||||||||||
| 162N-H | er H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 164N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 168N-H | H |
|
OH |
|
ON-H |
|
ON- 12 H |
|
|||
| 169N-H | H |
|
OCH3 | CH3 | H | ON-H |
H |
H | ON- H |
|
|
| 170N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON-N- |
|
|
| 171N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H H |
|
|
| 173N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 174N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 175N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 176N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 177N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 178N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 179N-H | H |
|
OCH, | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 180N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 184N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 184 | diastereomer | ||||||||||
| 185N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 186N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 187N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 188N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 189N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 189 b | diastereomer | ||||||||||
| 190N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 191N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 192N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 193N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 194N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 194b | diasteromer | ||||||||||
| 195N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 197N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 199N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 200N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 201N-Me | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 203N-Me | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 208N-a Me | H |
|
OH |
|
ON-H | H |
|
ON H |
|
||
| 208b | diastereomer | ||||||||||
| 209N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 210N-H | H |
OH |
|
ON-H | H |
|
ON- H |
|
|||
| 211N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 212N-H | H |
|
OCH3 | H |
|
ON-H |
|
H | H |
|
|
| 213N-H | H |
|
OCH3 |
|
H | ON-H |
|
H | ON- H |
|
|
| 214N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 215N-H | H |
|
OH |
|
H | ON- |
|
H | ON- |
|
|
| 216N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 218N-H |
|
OH |
|
ON-H | H |
|
ON- H |
|
|||
| 219N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
| Verbindung | R2 | R3 | R4 | R7 | R5 | R6 | Tether |
| 298 |
|
CH3 | H | CH3 |
|
H |
|
| 299 |
|
CH3 | H | CH3 |
|
H |
|
| 300 |
|
|
H | H |
|
|
|
| 303 |
|
|
H | H |
|
|
|
| 305 |
|
CH3 | H | CH3 |
|
H |
|
| 306a |
|
CH3 | 11 | CH3 |
|
H |
|
| 306b | diastereomer | ||||||
| 307 |
|
CH3 | H | CH3 |
|
H |
|
| 308 |
|
CH3 | H | CH3 |
|
H |
|
| 309 |
|
CH3 | H | CH3 |
|
H |
|
| 310 |
|
CH3 | H | CH3 |
|
H |
|
| 311 |
|
CH3 | H | CH3 |
|
H |
|
| 312 |
|
CH3 | H | CH3 |
|
H |
|
| 313 |
|
CH3 | 11 | CH3 |
|
H |
|
| 314 |
|
CH3 | H | CH3 |
|
H |
|
| 315 |
|
CH3 | H | CH3 |
|
H |
|
| 316 |
|
CH3 | H | CH3 |
|
H |
|
| 317 |
|
CH3 | H | CH3 |
|
H |
|
| 318 |
|
CH3 | H | CH3 |
|
H |
|
| 319 |
|
CH3 | H | CH3 |
|
H |
|
| 320 |
|
CH3 | H | CH3 |
|
H |
|
| 321 |
|
CH3 | H | CH3 |
|
H |
|
| 322 |
|
CH3 | H | CH3 |
|
H |
|
| 323 |
|
CH3 | H | CH3 |
|
H |
|
| 324 |
|
CH3 | H | CH3 |
|
H |
|
| 325 |
|
|
H | H |
|
|
|
| 326 |
|
|
H | H |
|
|
|
| 327a |
|
|
H | H |
|
|
|
| 327b | diastereomer | ||||||
| 328 |
|
|
H | H |
|
|
|
| 329 |
|
|
H | H |
|
|
|
| 330 |
|
|
H | H |
|
|
|
| 331a |
|
|
H | H |
|
|
|
| 331b | diastereomer | ||||||
| 332a |
|
|
H | H |
|
|
|
| 332b 333 |
|
|
H | H |
|
|
|
| 333 |
|
CH3 | H | CH3 |
|
H |
|
| 336 |
|
CH3 | H | CH3 |
|
H |
|
| 337 |
|
CH3 | H | CH3 |
|
H |
|
| 338 |
|
CH3 | H | CH3 |
|
H |
|
| 339 |
|
CH3 | H | CH3 |
|
H |
|
| 340 |
|
CH3 | H | CH3 |
|
H |
|
| 341 |
|
|
H | H |
|
|
|
| 342 |
|
|
H | H |
|
|
|
| 343 |
|
|
H | H |
|
|
|
| 344 |
|
|
H | H |
|
|
|
| 345a |
|
|
H | H |
|
|
|
| 346 |
|
|
H | H |
|
|
|
| 347 |
|
|
H | H |
|
|
|
| 348a |
|
CH3 | CH3 | H | H |
|
|
| 348b | diastereomer | ||||||
| 353a |
|
CH3 | H | CH3 |
|
H |
|
| 353b | diastereomer | ||||||
| 354 |
|
CH3 | H | CH3 |
|
H |
|
| 355 |
|
CH3 | H | CH3 |
|
H |
|
| 356 |
|
CH3 | H | CH3 |
|
H |
|
| 357 |
|
CH3 | H | CH3 |
|
H |
|
| 338a |
|
|
H | H |
|
|
|
| 358b | diastereomer | ||||||
| 359 |
|
|
H | H |
|
|
|
| 360 |
|
|
H | H |
|
|
|
| 361 |
|
|
H | H |
|
|
|
| 362 |
|
|
H | H |
|
|
|
| 363 |
|
|
H | H |
|
|
|
| 364 |
|
|
H | H |
|
|
|
| 365 |
|
|
H | H |
|
|
|
| 366 |
|
|
H | H |
|
|
|
| 367 |
|
CH3 | H | CH3 |
|
H |
|
| 368a |
|
|
H | H |
|
|
|
| 368b | diastereomer | ||||||
| 369 |
|
|
H | H |
|
|
|
| 370 |
|
|
H | H |
|
|
|
| 371 |
|
|
H | H |
|
|
|
| 372 |
|
CH3 | H | CH3 |
|
H |
|
| 373 |
|
CH3 | H | CH3 |
|
H |
|
| 374 |
|
CH3 | H | CH3 |
|
H |
|
| 375 |
|
CH3 | H | CH3 |
|
H |
|
| 376 |
|
CH3 | H | CH3 |
|
H |
|
| 377 |
|
CH3 | H | CH3 |
|
H |
|
| 378 |
|
CH3 | H | CH3 |
|
H |
|
| 379 |
|
CH3 | H | CH3 |
|
H |
|
| 380 |
|
|
H | H |
|
|
|
| 381 |
|
|
H | H |
|
|
|
| 382 |
|
|
H | H |
|
|
|
| 383 |
|
|
H | H |
|
|
|
| 384 |
|
|
H | H |
|
|
|
| 385 |
|
|
H | H |
|
|
|
| 386 |
|
|
H | H |
|
|
|
| 387 |
|
|
H | H |
|
|
|
| 388 |
|
|
H | H |
|
|
|
| 389a |
|
CH3 | H | CH3 |
|
H |
|
| 389b | diastereomer | ||||||
| 390 |
|
|
H | H |
|
|
|
| 391 |
|
CH3 | H | CH3 |
|
H |
|
| 392 |
|
|
H | H |
|
|
|
| 393 |
|
|
H | H |
|
|
|
| 394 |
|
CH3 | H | CH3 |
|
H |
|
| 395 |
|
|
H | H |
|
|
|
| 398 |
|
CH3 | H | CH3 |
|
H |
|
| 399a |
|
|
H | H |
|
|
|
| 399b | diastereomer | ||||||
| 400 |
|
CH3 | H | CH3 |
|
H |
|
| 401 |
|
CH3 | H | CH3 |
|
H |
|
| 402a |
|
|
H | H |
|
|
|
| 402b | diastereomer | ||||||
| Verbindung | R1 | R2 | R3 | R4 | R7 | R5 | R6 | Tether |
| 435 | H |
|
CH3 | H | CH3 |
|
H |
|
| 436 | H |
|
CH3 | H | CH3 |
|
H |
|
| 437 |
|
|
H | H |
|
|
||
| 438 | H |
|
|
H | H |
|
|
|
| 439 | H |
|
|
H | H |
|
|
|
| 440 | H |
|
|
H | CH3 |
|
|
|
| 441 | H |
|
|
H | H |
|
|
|
| 445 | H |
|
CH3 | H | CH3 |
|
H |
|
| 446a | H |
|
CH3 | H | CH3 |
|
H |
|
| 446b | diastereomer | |||||||
| 447 | H |
|
|
H | H |
|
|
|
| 448 | H |
|
H | H | CH3 | H |
|
|
| 449 | H |
|
|
H | H |
|
|
einen Modulator der Formel I, wie er in Anspruch 2 oder Anspruch 4 definiert ist,
welcher eine der folgenden Strukturen hat:
oder ein optisches Isomer, Enantiomer, Diastereomer, Racemat oder stereochemisches
Gemisch davon oder ein pharmazeutisch verträgliches Salz davon; und einen pharmazeutisch
verträglichen Träger, Excipienten oder Verdünnungsmittel.
| Composé X | R1 | R2 | m R7 | R3 | R4 | n Z1 | R5 | R6 | p Z2 | T | |
| 1N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 2N-H | H |
|
OH | CH3 | H | ON-H | H | ON- H |
|
||
| 3N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 4N-H | R |
|
OCH3 | H | CH3 | ON-H |
|
H | ON- H |
|
|
| 5N-H | H |
|
OCH2 CH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 6N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 7N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 8N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 9N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 10N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 11N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 12N-H |
|
H | OH | H |
|
ON-H | H |
|
ON- H |
|
|
| 13N-H |
|
H | OH | H |
|
ON-H | H |
|
ON- H |
|
|
| 14N-H | H |
|
OH | CH3 | H | ON-H | H |
|
ON- H |
|
|
| 15N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 16N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 17N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 18N-H |
|
OH |
|
ON-H | H |
|
ON- H |
|
|||
| 19aN-H | H |
|
OCH3 | CH3 | H | ON-H | H |
|
ON- H |
|
|
| 19b | diastéréoisomère | ||||||||||
| 20N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 21N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 22N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 23N-H | H |
|
OCH3 | CH5 | H | ON-H |
|
H | ON- H |
|
|
| 24N-H | H |
|
OCH3 | CH5 | H | ON-H |
|
H | ON- H |
|
|
| 25N-H | H |
|
OCH3 | CH5 | H | ON-H |
|
H | ON- H |
|
|
| 26N-H | H |
|
OCH3 | CH5 | H | ON-H |
|
H | ON- H |
|
|
| 27N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 28N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 29N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 30N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 31N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 32N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 33N-H | H |
|
OCH3 | CH5 | H | ON-H |
|
H | ON- H |
|
|
| 34N-H | H |
H |
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 35N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 36N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 37aN-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 37b | diastéréoisomère | ||||||||||
| 38N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON H |
|
|
| 39N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 40N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 41N-H | H |
|
OCH3 |
|
H | ON-H |
|
H | ON- H |
|
|
| 42N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 43N-H | H |
|
OCH2 CH3 | CH3 | H | ON- |
|
H | ON-H |
|
|
| 47N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 52N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 55N-H |
|
H | OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 57N-H | H |
|
OCH3 | H | H | ON-H | H |
|
ON- H |
|
|
| 59N-H | H |
|
OH | H | CH3 | ON-H |
|
H | ON- H |
|
|
| 60N-H | H |
|
OH | CH3 | H | ON-H |
H |
H | ON- |
|
|
| 61N-H | H |
|
OH | H | H | ON-H |
|
H | ON- H |
|
|
| 62N-H | H |
|
OH | H |
|
ON-H |
|
H | ON- H |
|
|
| 65N-H | H |
|
OH |
|
H | ON-H |
|
H | ON H |
|
|
| 66N-H | H |
|
OH | CH3 | CH3 | ON-H |
|
H | ON- H |
|
|
| 67N-H | H |
|
OH |
|
ON-H |
|
H | ON- H |
|
||
| 68N-H | H |
|
OH | H |
|
ON-H |
|
H | ON- H |
|
|
| 72N-H | H | CH3 | OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 74N-H | H |
|
OCH, | H | H | ON-H |
|
H | ON- H |
|
|
| 75N-H | H |
|
OCR3 | H | H | ON-H |
|
H | ON- H |
|
|
| 77N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 79N-H | H |
|
OCH3 | H | CH3 | ON- H |
|
H | ON-H |
|
|
| 84N-H | H |
|
OCH3 | H | H | ON-H |
|
H | ON- H |
|
|
| 88N-H | H |
|
OH |
|
ON- H | H |
|
ON- H |
|
||
| 89N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 90N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 93N-H | H |
|
OH | H | CH3 | ON-H | H |
|
ON- H |
|
|
| 94N-H | H |
|
OH | CH3 | H | ON-H | H |
|
ON- H |
|
|
| 95N-H | H |
|
OH | CH3 | CH3 | ON-H | H |
|
ON- H |
|
|
| 97N-H | H |
|
OH |
|
ON-H |
|
H | ON- H |
|
||
|
|
|||||||||||
| 100N-H | H | CH3 | OH |
|
ON-H | H |
|
ON- H |
|
||
| 101N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 102N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 105N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 108N-H | H |
|
OH |
|
ON- | H |
H |
ON- |
|
||
| 109N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 111N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 112N-H | H | H | OH |
|
ON-H | H |
|
ON- H |
|
||
| 113N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 116N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 117N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 118N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 119N-H | H |
|
OCH3 | CH, | H | ON-H |
|
H | ON- H |
|
|
| 120N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 122N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 123N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 124N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 126N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 127N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 130N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 131N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 132N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 133N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 134N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 135N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 136N-a H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 136b | diastéréoisomère | ||||||||||
| 137N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 138N-H | H |
|
OH H |
|
ON-H | H |
|
ON- H |
|
||
| 139N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 140N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 141N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 142N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 143N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 144N-H | H |
|
OCH3 |
|
H ON- | H |
|
H | ON- H |
|
|
| 145N-aH | H |
|
OCH3 | H |
|
ON-H |
|
H | ON- H |
|
|
| 143b | diastéréoisomère | ||||||||||
| 146N-aH | H |
|
OCH3 | H |
|
ON-H |
|
H | ON- H |
|
|
| 146b | diastéréoisomère | ||||||||||
| 147N-H | H |
|
OCH3 |
|
H | ON-H |
|
H | ON- H |
|
|
| 148N-H | H |
|
OCH3 | H |
|
ON-H |
|
H | ON- H |
|
|
| 149N-H | H |
|
OCH3 |
|
H | ON-H |
|
H | ON- H |
|
|
| 150N-aH | H |
|
OCH3 | H |
|
ON-H |
|
H | ON- H |
|
|
| 151N-H | H |
|
OH |
|
H | ON-H |
|
H | ON- H |
|
|
| 152N-aH | H |
|
OCH3 | H |
|
ON-H |
|
H | ON- H |
|
|
| 152N-bH | diastéréoisomère | ||||||||||
| 153N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 154N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 155N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 156N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 157N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 158N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 159N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 160N-a H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 160 b | diastéréoisomère | ||||||||||
| 161N-aH | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 161b | diastéréoisomère | ||||||||||
| 162N-aH | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 164N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 168N-H | H |
|
OH |
|
ON-H |
|
OH- 12 H |
|
|||
| 169N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 170N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 171N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 173N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 174N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 175N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 176N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 177N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 178N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 179N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 180N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 184N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 184 | diastéréoisomère | ||||||||||
| 185N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 186N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 187N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 188N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 189N-a H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 189 b | diastéréoisomère | ||||||||||
| 190N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 191N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 192N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON H |
|
|
| 193N-H | H |
|
OCH3 | CH3 H | ON-H |
|
H | ON- H |
|
||
| 194N-aH | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 194b | diastéréoisomère | ||||||||||
| 195N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON H |
|
|
| 197N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON- H |
|
|
| 199N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 200N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 201N-Me | H |
|
OCH3 | CH3, | H | ON-H |
|
H | ON H |
|
|
| 203N-Me | H |
|
OH |
|
ON-H | H |
|
ON H |
|
||
| 208N-a Me | H |
|
OH |
|
ON-H | H |
|
ON H |
|
||
| 208b | diastéréoisomère | ||||||||||
| 209N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON H |
|
|
| 210N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 211N-H | H |
|
OH |
|
ON-H | H |
|
ON- H |
|
||
| 212N-H | H |
|
OCH3 | H |
|
ON-H |
|
H | ON- H |
|
|
| 213N-H | H |
|
OCH3 |
|
H | ON-H |
|
H | ON- H |
|
|
| 214N-H | H |
|
OCH3 | CH3 | H | ON-H |
|
H | ON H |
|
|
| 215N-H | H |
|
OH |
|
H | ON-H |
|
H | ON H |
|
|
| 216N-H | H |
|
OH |
|
ON-H | H |
|
ON H |
|
||
| 218N-H |
|
OH |
|
ON-H | H |
|
ON H |
|
|||
| 219N-H | H |
|
OH |
|
ON-H | H |
|
ON H |
|
| Composé | R2 | R3 | R4 | R7 | R5 | R6 | Tether |
| 298 |
|
CH3 | H | CH3 |
|
H |
|
| 299 |
|
CH3 | H | CH3 |
|
H |
|
| 301 |
|
|
H | H |
|
|
|
| 303 |
|
|
H | H |
|
|
|
| 305 |
|
CH3 | H | CH3 |
|
H |
|
| 306a |
|
CH3 | H | CH3 |
|
H |
|
| 306b | diastéréoisomère | ||||||
| 307 |
|
CH3 | H | CH3 |
|
H |
|
| 308 |
|
CH3 | H | CH3 |
|
H |
|
| 309 |
|
CH3 | H | CH3 |
|
H |
|
| 310 |
|
CH3 | H | CH3 |
|
H |
|
| 311 |
|
CH3 | H | CH3 |
|
H |
|
| 312 |
|
CH3 | H | CH3 |
|
H |
|
| 313 |
|
CH3 | H | CH3 |
|
H |
|
| 314 |
|
CH3 | H | CH3 |
|
H |
|
| 315 |
|
CH3 | H | CH3 |
|
H |
|
| 316 |
|
CH3 | H | CH3 |
|
H |
|
| 317 |
|
CH3 | H | CH3 |
|
H |
|
| 318 |
|
CH3 | H | CH3 |
|
H |
|
| 319 |
|
CH3 | H | CH3 |
|
H |
|
| 320 |
|
CH3 | H | CH3 |
|
H |
|
| 321 |
|
CH3 | H | CH3 |
|
H |
|
| 322 |
|
CH3 | H | CH3 |
|
H |
|
| 323 |
|
CH3 | H | CH3 |
|
H |
|
| 324 |
|
CH3 | H | CH3 |
|
H |
|
| 325 |
|
|
H | H |
|
|
|
| 326 |
|
|
H | H |
|
|
|
| 317a |
|
|
H | H |
|
|
|
| 327b | |||||||
| 328 |
|
|
H | H |
|
|
|
| 329 |
|
|
H | H |
|
|
|
| 330 |
|
|
H | H |
|
|
|
| 331a |
|
|
H | H |
|
|
|
| 331b | diastéréoisomère | ||||||
| 332a |
|
|
H | H |
|
|
|
| 332b | diastéréoisomère | ||||||
| 333 |
|
|
H | H |
|
|
|
| 333 |
|
CH3 | H | CH3 |
|
H |
|
| 336 |
|
CH3 | H | CH3 |
|
H |
|
| 337 |
|
CH3 | H | CH3 |
|
H |
|
| 338 |
|
CH3 | H | CH3 |
|
H |
|
| 339 |
|
CH3 | H | CH3 |
|
H |
|
| 340 |
|
CH3 | H | CH3 |
|
H |
|
| 341 |
|
|
H | H |
|
|
|
| 342 |
|
|
H | H |
|
|
|
| 343 |
|
|
H | H |
|
|
|
| 344 |
|
|
H | H |
|
|
|
| 345a |
|
|
H | H |
|
|
|
| 346 |
|
|
H | H |
|
|
|
| 347 |
|
|
H | H |
|
|
|
| 348a |
|
CH3 | CH3 | H | H |
|
|
| 348b | diastéréoisomère | ||||||
| 353a |
|
CH3 | H | CH3 |
|
H |
|
| 353b | diastéréoisomère | ||||||
| 3S4 |
|
CH3 | H | CH3 |
|
H |
|
| 355 |
|
CH3 | H | CH3 |
|
H |
|
| 356 |
|
CH3 | H | CH3 |
|
H |
|
| 357 |
|
CH3 | H | CH3 |
|
H |
|
| 35Be |
|
|
H | H |
|
|
|
| 358b | diastéréoisomère | ||||||
| 359 |
|
|
H | E |
|
|
|
| 360 |
|
|
H | H |
|
|
|
| 361 |
|
|
H | H |
|
|
|
| 362 |
|
|
H | H |
|
|
|
| 363 |
|
|
H | H |
|
|
|
| 364 |
|
|
H | H |
|
|
|
| 363 |
|
|
H | H |
|
|
|
| 366 |
|
|
H | H |
|
|
|
| 367 |
|
CH3 | H | CH3 |
|
H |
|
| 368a |
|
|
H | H |
|
|
|
| 368b | diastéréoisomère | ||||||
| 369 |
|
|
H | H |
|
|
|
| 370 |
|
|
H | H |
|
|
|
| 371 |
|
|
H | H |
|
|
|
| 372 |
|
CH3 | H | CH3 |
|
H |
|
| 373 | CH3 | H | CH3 |
|
H |
|
|
| 374 | CH3 | H | CH3 |
|
H |
|
|
| 375 | CH3 | H | CH3 |
|
H |
|
|
| 376 |
|
CH3 | H | CH3 |
|
H |
|
| 377 | CH3 | H | CE3 |
|
H |
|
|
| 378 | CH3 | H | CH3 |
|
H |
|
|
| 379 | CH3 | H | CH3 |
|
H |
|
|
| 380 |
|
|
H | H |
|
|
|
| 381 |
|
|
H | H |
|
|
|
| 382 |
|
|
H | H |
|
|
|
| 383 |
|
|
H | H |
|
|
|
| 384 |
|
|
H | H |
|
|
|
| 383 |
|
|
H | H |
|
|
|
| 386 |
|
|
H | H |
|
|
|
| 387 |
|
|
H | H |
|
|
|
| 388 |
|
|
H | H |
|
|
|
| 389a |
|
CH3 | H | CH3 |
|
H |
|
| 389b | |||||||
| 390 |
|
|
H | H |
|
|
|
| 391 |
|
CH3 | H | CH3 |
|
H |
|
| 392 |
|
|
H | H |
|
|
|
| 393 |
|
|
H | H |
|
|
|
| 394 |
|
CH3 | H | CH3 |
|
H |
|
| 395 |
|
|
H | H |
|
|
|
| 398 |
|
CH3 | H | CH3 |
|
H |
|
| 399a |
|
|
H | H |
|
|
|
| 399b | diastéréoisomère | ||||||
| 400 |
|
CH3 | H | CH3 |
|
H |
|
| 401 |
|
CH3 | H | CH3 |
|
H |
|
| 402a |
|
|
H | H |
|
|
|
| 402b | diastéréoisomère | ||||||
| Composé | R1 | R2 | R3 | R4 | R7 | R5 | R6 | Tether |
| 435 | H |
|
CH3 | H | CH3 |
|
H |
|
| 436 | H |
|
CH3 | H | CH3 |
|
H |
|
| 437 |
|
|
H | H |
|
|
||
| 438 | H |
|
|
H | H |
|
|
|
| 439 | H |
|
|
H | H |
|
|
|
| 440 | H |
|
|
H | CH3 |
|
|
|
| 441 | H |
|
|
H | H |
|
|
|
| 445 | H |
|
CH3 | H | CH3 |
|
H |
|
| 446a | H |
|
CH3 | H | CH3 |
|
H |
|
| 446b | diastéréoisomère | |||||||
| 447 | H |
|
H | H |
|
|
||
| 448 | H |
|
H | H | CH3 | H |
|
|
| 449 | H |
|
|
H | H |
|
|
un modulateur de formule I, telle que définie dans la revendication 2 ou la revendication
4, qui a l'une des structures suivantes:
ou un isomère optique, énantiomère, diastéréoisomère, mélange racémique ou stéréochimique
de celui-ci, ou un sel pharmaceutiquement acceptable de celui-ci; et un véhicule,
excipient ou diluant pharmaceutiquement acceptable.
REFERENCES CITED IN THE DESCRIPTION
Patent documents cited in the description
Non-patent literature cited in the description