FIELD OF THE INVENTION
[0001] The present invention relates to the field of bacteriophages, and their application
as therapeutic and prophylactic agents in the field of human and veterinary industries,
control of bacteriophage populations in livestock in general, as well as sanitizer
and sterilization solutions for solid matrices, including food production and processing
facilities. In particular, the present invention provides new coated bacteriophages
and formulations comprising the same for the said purposes. The new coated bacteriophages
are characterized by forming lipid coatings, vesicles, envelopes, capsules or liposome
like particles containing in its interior at least one bacteriophage.
[0002] The new coated bacteriophages and formulations comprising the same present enhanced
protection of the bacteriophages and an improved stability of the formulations, thus
providing an increased efficacy during its use.
BACKGROUND PRIOR ART
[0003] It is well known in the state of the art, that bacteriophage preparations can be
invaluable in specifically eliminating, or significantly reducing the levels of bacteria
in specific environmental settings, such as: environmental clean-up of food processing
plants, which would substantially reduce the risk of foodborne pathogens contaminating
the food supply, such as slaughterhouses, hospital sanitation, to reduce nosocomial
infections caused by pathogenic bacteria, and workplace or equipment decontamination,
etc.
[0004] Further, the use of bacteriophage in therapy as a treatment option for gastrointestinal
pathogenic bacterial infections both in humans and animals has been subject to extensive
experimental work in the last decades.
[0005] In this context, it is well known in the state of the art that the four main food
borne pathogens from animal origin are
Escherichia coli, Campylobacter, Salmonella and
Listeria. These bacteria are all common contaminants of ruminants, poultry and swine and are
usually carried in their gastrointestinal tract asymptomatically.
[0006] Research on the use of bacteriophages against food borne pathogens from animal origin
has mainly focused on the optimization of preharvest interventions where the bacteriophage,
administration routes and delivery processes have received most attention. Preharvest
treatment strategy is primarily directed to administering bacteriophages to livestock
to prevent bacterial colonization and/or also to minimize the pathogen carriage in
the gastrointestinal tract, thereby preventing pathogen entry to the food supply.
[0007] Several different approaches have been used so far, consisting in aerosol formulations,
spraying and intramuscular injections, bacteriophage administration via addition to
bird drinking water and in general oral delivery systems.
[0008] One of the major problems encountered in designing an efficient bacteriophage formulation
is providing the necessary protection to the bacteriophage to resist the gastric acidic
environment, loss of activity due to low pH conditions and loss of stabilization of
the bacteriophage formulation when the bacteriophage formulation is subject to conservation
and preservation methods, such as lyophilization.
[0009] Different attempts have been made in order to solve the said problems but bacteriophage
inactivation is still reported to be the main cause of failure.
[0012] Canadian patent,
CA2463827, describes methods and compositions for controlled release of bioactive compounds,
such as bacteriophages, comprising a lyophilized formulation of a bacteriophage comprising
a methacrylic acid polymer in addition to lyoprotectants, such as glucose and sucrose.
[0013] International application,
WO 03/093462, describes immobilization of a bacteriophage on a substrate containing on top thereof
a trehalose film.
[0014] United States patent application,
US20112/0258175, describes a bacteriophage formulation containing stearic and palmitic acid.
[0015] The paper, "
A lipid nanovesicle system encasing bacteriophages for inhalational therapy", Balcao
et al., 2010, XVIII International Conference on Bioencapsulation, Porto, Portugal,
October, 1-2, 2010, describes formulating bacteriophages in an oil in water emulsion comprising glycerol,
Softisan® (Caprylic/Capric/Myristic/Stearic Triglyceride mixture) and phosphatidylcholine.
[0017] However, there is still a need for further technical improvement in the field of
the present invention, to increase bacteriophage survival during its passage through
the animal and human digestive systems for an effective prophylactic use or treatment
of intestinal bacterial pathogens, as well as to enhance stability of the formulation
during its use in food production and processing industries as well as when the formulations
are subject to conventional preservation methods.
[0018] The present invention is therefore directed to provide a novel coated bacteriophages
and formulations containing them which solve the stated technical problems encountered
in the state of the art, procuring enhanced stability properties to the bacteriophages
and formulations containing them so as to improve their effectiveness during use thereof.
SUMMARY OF THE INVENTION
[0019] The term "bacteriophage" in the context of the present invention refers to any virus
that infects prokaryotic cells.
[0020] The terms "cocktail" and "bacteriophage cocktail" in the context of the present invention
are equivalent and can be used without distinction. They refer to any formulation
containing at least one or more than one bacteriophage, belonging to a different,
species, subspecies and/or strain, in a similar or different proportion. Those cocktails
additionally can also contain other lytic bacteriophages and/or parts and/or products
of them.
[0021] The terms, "capsule, vesicle, envelope, and liposome-like particle" in the context
of the present invention are equivalent and can be used without distinction. They
are meant to include a mixture of amphipathic lipid substances comprising a polar
(hydrophilic) headgroup region covalently linked to one or two non-polar (hydrophobic)
acyl chains. In presence of aqueous medium, amphipathic lipid substances self-assemble
into spherical close structures entrapping part of the aqueous medium in their inner.
[0022] The term "lipidic component" in the context of the present invention is meant to
include a lipid substance or a mixture of lipid substances formed by one or more lipid
substances selected from a defined group or closed list of lipid substances.
[0023] The term " a first lipidic component" in the context of the present invention is
meant to include at least one lipid substance selected from a first group or closed
list of lipid substances, thus including from a single lipid substance to a mixture
of lipid substances, all of them selected from a defined first group of lipid substances.
[0024] The term "a second lipidic component" in the context of the present invention is
meant to include at least one lipid substance selected from a second group or closed
list of lipid substances, thus including from a single lipid substance to a mixture
of lipid substances, all of them selected from a defined second group of lipid substances.
[0025] The term "a third lipidic component" in the context of the present invention is meant
to include at least one lipid substance selected from a third group or closed list
of lipid substances, thus including from a single lipid substance to a mixture of
lipid substances, all of them selected from a defined third group of lipid substances.
[0026] The term "a fourth lipidic component" in the context of the present invention is
meant to include at least one lipid substance selected from a fourth group or closed
list of lipid substances, thus including from a single lipid substance to a mixture
of lipid substances, all of them selected from a defined fourth group of lipid substances.
[0027] The term "lipid substance" in the context of the present invention relates to each
specific lipid substance forming each of the first, second, third and fourth group
or closed list of lipid substances.
[0028] Lipid substances belonging to the first group or closed list are: 1,2-dilauroyl-rac-glycero-3-phosphocholine
(DLPC), 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine (PC), 1,2-distearoyl-sn-glycero-3-phosphocholine
(DSPC), 1,2-dimyristoyl-sn-glycero-3-phosphocholine (DMPC), 1,2-dioleoyl-sn-glycero-3-phosphocholine
(DOPC), 1,2-dipalmitoyl-sn-glycero-3-phosphocholine (DPPC) and 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine
(POPC).
[0029] Lipid substances belonging to the second group or closed list are: 3β-N-(dimethylaminoethyl)
carbamate hydrochloride (cholesteryl), (N-[1-(2,3-Dioleoyloxy)propyl]-N,N,N-trimethylammonium
chloride) (DOTAP) and cholesteryl hemisuccinate.
[0030] Lipid substances belonging to the third group or closed list are: cholesterol, squalene,
ergosterol and phytosterol.
[0031] Lipid substances belonging to the fourth group or closed list are: cholesteryl-polyethylene
glycol 600 sebacate (Chol-PEG600),1,2-distearoyl-sn-glycero-3-phosphoethanolamine-N-[amino(polyethylene
glycol) -2000 (DSPE- PEG2000), N-(Carbonyl-methoxypolyethyleneglycol 2000)-1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine
(DPPE-PEG5000), 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-350] (PE-PEG350), 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-550] (PE-PEG550), 1,2-dioleoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-750] (PE-PEG750), 1,2-dimyristoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-1000] (PE-PEG1000), 1,2-distearoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-2000] (PE-PEG2000), 1,2-dimyristoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-3000] (PE-PEG3000) and 1,2-dioleoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-5000] (PE-PEG5000).
[0032] The term "animal" in the context of the present invention is meant to include any
warm-blooded animal, included humans. In a preferred embodiment animals are selected
from the group consisting of
Gallus gallus, turkeys and other avian species, in addition to pigs and cattle.
[0033] The term "food" in the context of the present invention is meant to include any plant,
animal or any substance or material from plants and animals (vegetables, meat, eggs,
etc.) that provides nutritional support for the life of humans and animals.
[0034] The term "solid matrices" in the context of the present invention is meant to include
any surface which may be colonized by a microorganism to be eliminated. Those solid
matrices include animal skin, surfaces of farms, slaughterhouses, poultry and swine
barns and/or pens, crates used during animal transportation from farms to the food
processing facilities and other facilities used during animal and food manufacturing
and processing.
[0035] The term "acceptable carrier, vehicles, solvents and/or excipients" in the context
of the present invention are meant to include any carrier, whether pharmaceutically
acceptable or not, which does not cause significant irritation to an organism and
does not abrogate the biological activity and properties of the administered compound/composition.
These vehicles include those acceptable and suitable for administering the compound/composition
for an intended prophylactic and/or therapeutic treatment and those acceptable and
suitable as feed additives or sanitizer and sterilization solutions. Examples include:
water-based carriers, saline water, sterile water, Ringer's solution, buffered physiological
saline, etc.
[0036] According to a first aspect, the invention relates to new coated bacteriophages and
formulations containing them, comprising a lipid mixture encasing, enclosing or enveloping
one or more bacteriophages and forming a lipidic capsule, vesicle, envelope or liposome-like
particle containing one or more bacteriophages characterized in that the lipid mixture
comprises:
- a first lipidic component containing at least one lipid substance selected from the
group consisting of: 1,2-dilauroyl-rac-glycero-3-phosphocholine (DLPC), 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine(PC),
1,2-distearoyl-sn-glycero-3-phosphocholine (DSPC), 1,2-dimyristoyl-sn-glycero-3-phosphocholine
(DMPC), 1,2-dioleoyl-sn-glycero-3-phosphocholine (DOPC), 1,2-dipalmitoyl-sn-glycero-3-phosphocholine
(DPPC) and 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine (POPC),
- a second lipidic component containing at least one lipid substance selected from the
group consisting of: 3β-N-(dimethylaminoethyl) carbamate hydrochloride (cholesteryl),
(N-[1-(2,3-Dioleoyloxy)propyl]-N,N,N-trimethylammonium chloride) (DOTAP) and cholesteryl
hemisuccinate,
- a third lipidic component containing at least one lipid substance selected from the
group consisting of: cholesterol, squalene, ergosterol and phytosterol,
and
- a fourth lipidic component containing at least one lipid substance selected from the
group consisting of: cholesteryl-polyethylene glycol 600 sebacate (Chol-PEG600),1,2-distearoyl-sn-glycero-3-phosphoethanolamine-N-[amino(polyethylene
glycol)-2000 (DSPE- PEG2000), N-(Carbonyl-methoxypolyethyleneglycol 2000)-1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine
(DPPE-PEG5000), 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-350] (PE-PEG350), 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethyleneglycol)-550]
(PE-PEG550), 1,2-dioleoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-750] (PE-PEG750), 1,2-dimyristoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-1000] (PE-PEG1000), 1,2-distearoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-2000] (PE-PEG2000), 1,2-dimyristoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-3000] (PE-PEG3000) and 1,2-dioleoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-5000] (PE-PEG5000).
[0037] A further aspect of the present invention is directed to coated bacteriophages and
formulations containing them, characterized in that the lipid mixture forming the
lipidic capsules, vesicles, envelopes or liposome like particles comprises:
- the said first lipidic component in an amount ranging from 40-60% weight,
- the said second lipidic component in an amount ranging from 30-45% weight,
- the said third lipidic component in an amount ranging from 10-40% weight, and
- the said fourth lipidic component in an amount ranging from 0.5-10% weight.
[0038] A preferred object of the present invention is directed to coated bacteriophages
and formulations containing them, characterized in that the lipid mixture forming
the lipidic capsules, vesicles, envelopes or liposome-like particles comprises:
- the first lipidic component in an amount of 50% weight,
- the second lipidic component in an amount of 35% weight,
- the third lipidic component in an amount of 10% weight, and
- the fourth lipidic component in an amount of 5% weight.
[0039] A more preferred object of the present invention is directed to coated bacteriophages
and formulations containing them, characterized in that the lipid mixture forming
the lipidic capsules, vesicles, envelopes or liposome-like particles comprises:
- 50% weight 1,2-dilauroyl-rac-glycero-3-phosphocholine (DLPC),
- 35% cholesteryl 3P-N-(dimethylaminoethyl)carbamate hydrochloride (cholesteryl),
- 10% cholesterol (Chol), and
- 5% cholesteryl-polyethylene glycol 600 sebacate (Chol-PEG600).
[0040] A still further object of the present invention is directed to coated bacteriophages
as previously defined and formulations containing them, characterized in that the
one or more bacteriophages are selected from the group consisting of: tailed bacteriophages
from the
Caudovirales order, UAB_Phi20, deposited in GenBank under accession number GQ422450, (version:
GQ422450.1 GI: 321282844), UAB_Phi78 deposited in GenBank under accession number GU595417
(version GU595417.1 GI: 322227495) and UAB_Phi87, deposited in GenBank under accession
JN225449, (version JN225449.1 GI: 402760815).
[0041] And a still preferred object of the present invention is directed to coated bacteriophages
as previously defined and formulations containing them, characterized in that the
one or more bacteriophages are selected from the group consisting of: UAB_Phi20, deposited
in GenBank under accession number GQ422450, (version: GQ422450.1 GI: 321282844), UAB_Phi78
deposited in GenBank under accession number GU595417 (version GU595417.1 GI: 322227495)
and UAB_Phi87, deposited in GenBank under accession JN225449, (version JN225449.1
GI: 402760815), and in that the lipid mixture forming the lipidic capsules, vesicles,
envelopes or liposome-like particles is consisting of:
- 50% weight 1,2-dilauroyl-rac-glycero-3-phosphocholine (DLPC),
- 35% cholesteryl 3P-N-(dimethylaminoethyl)carbamate hydrochloride (cholesteryl),
- 10% cholesterol (Chol), and
- 5% cholesteryl-polyethylene glycol 600 sebacate (Chol-PEG600).
[0042] A further object of the present invention is directed to coated bacteriophages and
formulations comprising the same, as previously defined, which are lyophilized.
[0043] Further objects of the present invention are directed to the said coated bacteriophages
and formulations comprising the same characterized in that said coated bacteriophages
have a mean particle size of between 200 - 600 nm, and/or a net surface charge of
+10/+50mV, and/or are small unilamellar vesicles.
[0044] An additional object of the present invention is directed to coated bacteriophages
and formulations comprising the same, according to the said previous features for
the prophylactic and therapeutic treatment of bacterial infections in humans and animals,
as feed additives or for sanitization and/or sterilization of solid matrices in food
production and processing facilities, in particular to control
Salmonella populations in food and solid matrices.
[0045] A still additional object of the present invention is a bacteriophage formulation
comprising coated bacteriophages previously defined together with acceptable carriers,
vehicles, solvents and/or excipients for the said intended purposes.
[0046] A still further object of the present invention is a bacteriophage formulation comprising
between 40% to 55% of coated bacteriophages according to the present invention versus
total titre of bacteriophages.
[0047] A further object of the present invention are bacteriophage formulations as defined
previously in the form of suspensions, sprays, aerosols, powders or granules, emulsions,
hard or soft capsules, syrups or elixirs.
[0048] A further object of the present invention is bacteriophage formulations as defined
previously in the form of an animal feed, drinking water, sanitizer or sterilization
solution.
[0049] A still further object of the present invention is directed to a process for obtaining
the coated bacteriophages according to the present invention, comprising coating the
bacteriophages with a lipid mixture by hydrating under agitation an aqueous solution
containing the desired bacteriophages, at a concentration up to 10
11 pfu/mL, with a dry lipid film having a total amount of lipids from 10 to 30 mM.
[0050] And finally it is also an object of the present invention a process for obtaining
coated bacteriophages which are lyophilized, comprising coating the bacteriophages
with a lipid mixture by hydrating under agitation an aqueous solution containing the
desired bacteriophages at a concentration up to 10
11 pfu/mL and a cryoprotective agent, in particular, trehalose with a dry lipid film
having a total amount of lipids from 10 to 30 mM.
FIGURES
[0051] Figures 1A - C represent the mean size and particle size distribution of lipidic
coated bacteriophages, Fig. 1A: lipidic coated bacteriophage UAB_Phi78, Fig. 1B: lipidic
coated bacteriophage UAB_Phi87 and Fig. 1C: lipidic coated bacteriophage UAB_Phi20.
DETAILED DESCRIPTION OF THE INVENTION
[0052] The present invention provides novel coated bacteriophages and formulations comprising
the same, which are characterized by comprising lipidic coated bacteriophages, in
other words, lipidic capsules, vesicles, envelopes or liposome-like particles comprising
one or more bacteriophages in each capsule, vesicle, envelope or liposome-like particle.
[0053] These novel coated bacteriophage formulations are useful in different industrial
applications, such as, therapeutic and prophylactic agents in the field of human and
veterinary industries, control of bacteria population in livestock in general, and
as sanitizing and/or sterilization agents in animal and food production and processing
industries.
[0054] These novel coated bacteriophage and the formulations comprising them are designed
to improve the stability of the bacteriophages, which in turn leads to a substantial
improvement in the survival rate of the bacteriophage during administration or use
of the coated bacteriophages and the formulations comprising the same.
[0055] In particular, and as regards the use of the coated bacteriophages for prophylactic
and/or therapeutic treatment of bacterial infections as well as control of bacterial
populations in livestock in general, this requires administering the coated bacteriophages
and/or the formulations containing them to an animal or human subject and accordingly,
efficiency of infectivity depends on as long as possible residence time of the bacteriophages
in the digestive tract and intestine where the bacteriophages are expected to exert
bacterial infection. As has been proven in the present invention, residence time in
the digestive tract and intestine of the coated bacteriophages of the present invention
is substantially increased when compared to non-coated bacteriophages.
[0056] In addition coating of the bacteriophages of the present invention is intended to
provide the necessary protection to the bacteriophages during the encasing or encapsulation
of the bacteriophage/s.
[0057] Furthermore the lipidic coat designed according to the present invention protects
the bacteriophages from getting inactivated by extreme process conditions when such
coated bacteriophages or the formulations comprising the same are subject to a preservation
method, such as a lyophylization, desiccation or freeze-drying processes.
[0058] The coated bacteriophages of the present invention are characterized by comprising
a lipid mixture encasing, enclosing or enveloping one or more bacteriophages and thus
forming lipidic capsules, vesicles, envelopes and/or liposome like particles containing
one or more bacteriophages in each of these lipidic capsules, vesicles, envelopes
and/or liposome like particles.
[0059] These capsules, vesicles, envelopes or liposome like particles show a mean particle
size of between 200-600 nm, preferably 320 nm, and a net surface charge of +10 / +50
mV, preferably, +35 mV.
[0060] As regards the shape and form of the lipidic capsules, vesicles, envelopes or liposome
like particles of the present invention, these present preferably spherical form and
are small unilamellar vesicles (SUVs).
[0061] The lipid mixture forming the lipidic capsules, vesicles, envelopes or liposome like
particles of the present invention is comprising a mixture of four different lipidic
components, namely, a first, a second, a third and a fourth lipidic component. Each
of these different four lipid components may comprise at least one lipid substance
selected from a specific closed list of lipid substances.
[0062] In other words, each of the first, second, third and fourth lipidic components may
comprise one, two or more lipid substances selected from a first, a second, a third
and a fourth closed list or group of lipid substances.
[0063] In a preferred embodiment of the present invention, each of the first, second, third
and fourth lipidic component is consisting of one lipid substance selected from each
of the first, second, third and fourth closed list of lipid substances.
[0064] The lipid substances contained in each group are different lipid substances. In particular,
lipid substances belonging to the first closed list and forming part of the first
lipid component are: 1,2-dilauroyl-rac-glycero-3-phosphocholine (DLPC), 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine
(PC), 1,2-distearoyl-sn-glycero-3-phosphocholine (DSPC), 1,2-dimyristoyl-sn-glycero-3-phosphocholine
(DMPC), 1,2-dioleoyl-sn-glycero-3-phosphocholine (DOPC), 1,2-dipalmitoyl-sn-glycero-3-phosphocholine
(DPPC) and 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine (POPC).
[0065] Lipid substances belonging to the second closed list and forming part of the second
lipid component are: 3β-N-(dimethylaminoethyl) carbamate hydrochloride (cholesteryl),
(N-[1-(2,3-Dioleoyloxy)propyl]-N,N,N-trimethylammonium chloride) (DOTAP) and cholesteryl
hemisuccinate.
[0066] Lipid substances belonging to the third closed list and forming part of the third
lipidic component are: cholesterol, squalene, ergosterol and phytosterol.
[0067] Lipid substances belonging to the fourth closed list and forming part of the fourth
lipidic component are: cholesteryl-polyethylene glycol 600 sebacate (Chol-PEG600),1,2-distearoyl-
sn-glycero-3-phosphoethanolamine-N-[amino(polyethylene glycol)-2000 (DSPE- PEG2000),
N-(Carbonyl-methoxypolyethyleneglycol 2000)-1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine
(DPPE-PEG5000), 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-350] (PE-PEG350), 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-550] (PE-PEG550), 1,2-dioleoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-750] (PE-PEG750), 1,2-dimyristoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-1000] (PE-PEG1000), 1,2-distearoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-2000] (PE-PEG2000), 1,2-dimyristoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-3000] (PE-PEG3000) and 1,2-dioleoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-5000] (PE-PEG5000).
[0068] Further, preferably, each of the first, second, third and fourth lipidic component
is present in the lipidic mixture forming the lipidic capsules, vesicles, envelopes
or liposome like particles of the present invention in a defined amount calculated
on a % by weight basis, in particular, the first lipidic component is present in an
amount ranging from 40-60%.weight, preferably, 50%, the second lipidic component in
an amount ranging from 30-45%.weight, preferably 35%, the third lipidic component
in an amount ranging from 20-40%.weight, preferably, 10% the fourth lipidic component
in an amount ranging from 0.5-1 0%.weight, preferably 5%.
[0069] A preferred lipid mixture according to the present invention is represented by the
following lipid components in the specified amounts (weight %):
- 50% of 1,2-Dilauroyl-rac-glycero-3-phosphocholine (DLPC),
- 35% of cholesteryl 3P-N-(dimethylaminoethyl)carbamate hydrochloride (cholesteryl),
- 10% of cholesterol (Chol), and
- 5% of cholesteryl-polyethylene glycol 600 sebacate (Chol-PEG600).
[0070] The coated bacteriophages according to the present invention, formed by lipidic capsules,
vesicles, envelopes or liposome like particles which comprise one or more bacteriophages
in each lipid capsule, vesicle, envelope or liposome like particle are obtained by
thin film hydration technique.
[0071] This method implies the forming of vesicles during hydration and swelling of a dry
lipid film in the presence of a solution containing bacteriophages.
[0072] The method involves in general terms the following phases: preparation of the dry
lipid film for hydration, hydration under agitation in the presence of the solution
containing bacteriophages and sizing to a homogeneous distribution of vesicles.
[0073] The lipid mixture is prepared by dissolving the desired lipids in an organic solvent
to ensure a homogeneous mixture of lipids. The amount of total lipids ranges from
10 to 30 mM, preferably, 17 mM. This process can be carried out using chloroform or
chloroform:methanol mixtures. Once the lipids are thoroughly mixed in the organic
solvent, the solvent is removed by, for example, evaporation under vacuum, to yield
a lipid film. Thereafter, the lipid film is thoroughly dried to remove any residual
solvent by using a dry nitrogen or argon stream. Thereafter, coating of bacteriophages
proceeds by hydrating the dry lipid film under agitation in an aqueous solution, preferably,
an aqueous solution of MgSO
4 10mM containing the desired bacteriophages, at a concentration up to 10
11pfu/mL. The product resulting from hydration is formed by the said lipidic capsules,
vesicles, envelopes or liposome like particles containing said bacteriophages.
[0074] Once the stable, hydrated, lipidic coated bacteriophages suspension has been produced,
the particles are homogenized by extrusion through a, for example, polycarbonate filter
with a defined pore size.
[0075] An additional feature of the present invention refers to the percentage of bacteriophages
which may be coated according to the present invention. As has been shown in Example
3, the percentage of coated bacteriophages versus total titre of bacteriophages is
comprised between 40% to 55%.
[0076] These capsules, vesicles, envelopes or liposome-like particles show a mean particle
size of between 200-600 nm, preferably 320 nm, as measured by dynamic light scattering
technique (DLS), as shown in Figures 1A, B and C.
[0077] The present invention is directed to coating any bacteriophage or bacteriophage cocktail
capable of lysing at least one microorganism, useful in the prophylactic and therapeutic
treatment of bacterial infections in humans and animals, as feed additives or for
sanitization and/or sterilization of solid matrices in food production and processing
facilities, in particular to control
Salmonella populations in food and solid matrices.
[0078] Bacteriophages which may be used for the purpose of the present invention may be
selected from lytic bacteriophages useful in human and animal therapy.
[0079] Amongst others, a preferred embodiment of the present invention is represented by
coated bacteriophages selected from the group consisting of: tailed bacteriophages
from the
Caudovirales order, UAB_Phi20, deposited in GenBank under accession number GQ422450, (version:
GQ422450.1 GI: 321282844), UAB_Phi78 deposited in GenBank under accession number GU595417
(version GU595417.1 GI: 322227495) and UAB_Phi87, deposited in GenBank under accession
JN225449, (version JN225449.1 GI: 402760815).
[0080] The present invention further provides a method for the treatment of infections produced
by pathogenic bacteria consisting in administering to the human or animal in need
thereof, an effective amount of the coated bacteriophages and/or formulations containing
them together with suitable pharmaceutical acceptable vehicles or feed additives.
[0081] The present invention further provides a method for controlling bacterial population
in livestock, food and any solid matrices, consisting in applying an effective amount
of the coated bacteriophages and/or formulations containing them together with suitable
acceptable vehicles or additives to the solid matrices or livestock.
[0082] More specifically, the present invention is suitable for providing stable and effective
coated bacteriophages and formulations comprising the same against bacteria populations,
such as, but not limited to,
Bacillus cereus, Bacillus anthracis, Bacillus subtitils, Bacillus thuringiensis, Bacillus
stearothermophilus, Vibrio parahemolyticus, Vibrio cholera, Vibrio vulnificus, Salmonella
enterica, Clostridium difficile, Clostridium botulinum, Clostridium perfringens, Staphylococcus
aureus, Escherichia coli, Campylobacter jejuni, Campylobacter coli, Campylobacter
lari, Campylobacter fetus, Yersinia enterocolitica, Yersinia pestis, Yersinia pseudotuberculosis,
Listeria monocytogenes, Shigella, Streptococcus, Actinobacillus, Lactobacillus, Citrobacter and
Pseudomonas aeruginosa.
[0083] Most preferred embodiment of the present invention are coated
Salmonella specific bacteriophages and/or coated bacteriophage cocktails belonging to the Caudovirales
order, selected from the group consisting of UAB_Phi20, UAB_Phi78 and UAB_Phi87, deposited
in GenBank under accession numbers GQ422450, GU595417 and JN225449 respectively, and
described in international patent application number
WO2013014273 characterized in that the lipid mixture forming the envelope, vesicle, capsule or
liposome like particle is consisting of the following lipid components in the specified
amounts (weight %):
- 50% 1,2-dilauroyl-rac-glycero-3-phosphocholine (DLPC),
- 35% cholesteryl 3β-N-(dimethylaminoethyl)carbamate hydrochloride (cholesteryl),
- 10% cholesterol (Chol), and
- 5% cholesteryl-polyethylene glycol 600 sebacate (Chol-PEG600).
[0084] In certain embodiments of the present invention, the coated bacteriophages and formulations
comprising the same are suitable for oral administration, injection, inhalation, spraying
and immersion.
[0085] The coated bacteriophages and formulations comprising the same may be in the form
of suspensions, powders, granules, emulsions, hard or soft capsules, syrups or elixirs.
[0086] In each of these cases the coated bacteriophages and the formulations comprising
the same may optionally contain in addition to the coated bacteriophages, suitable
vehicles known from the state of the art, intended for pharmaceutical use, non-pharmaceutical
use, such as sterilization and/or sanitizing solutions or feed additives, e.g., solvents,
including water-based formulations, pharmaceutically acceptable excipients, saline,
sterile water, Ringer's solution, buffered physiological saline, etc.
[0087] Either the coated bacteriophages and/or the formulations comprising the same can
be lyophilized so as to preserve these products for long-term stability, storage and
handling purposes. These freeze dried powders are directly applicable as dry-powder
inhalers or are reconstituted for oral administration, injection or nebulization.
[0088] The lyophilization process followed in the present invention comprises incorporating
a lyoprotective agent, such as, disaccharides, for example, mannitol, sucrose and/or
trehalose, preferably trehalose, to the lipid coated phage preparation step. In this
case, the dry lipid film was hydrated with a solution containing the bacteriophages,
and trehalose at a 1:3.1 - 1:7.8 lipid to carbohydrate ratio (2 - 5% (w/v)), preferably,
at a 1:5 lipid to carbohydrate ratio (3.2% (w/v)). Lipid vesicles loaded with bacteriophages
and trehalose were frozen in liquid nitrogen and finally lyophilized (48 h at -80
°C) and stored at room temperature.
[0089] The stability at 4°C of the lipid coated bacteriophages was evaluated by titration
of these bacteriophages at 0, 15, and 30 days post-encapsulation.
[0090] Freeze dried coated bacteriophages according to the present invention have been stored
at room temperature for at least one month.
[0091] Throughout the description and claims the word "comprise" and variations of the word,
are not intended to exclude other technical features, additives, components, or steps.
Additional objects, advantages and features of the invention will become apparent
to those skilled in the art upon examination of the description or may be learned
by practice of the invention. The following examples are intended for purposes of
illustration only and are not intended to limit the scope of protection. Furthermore,
the present invention covers all possible combinations of particular and preferred
embodiments described herein.
EXAMPLES
Example 1: Obtaining bacteriophages
Bacterial strains and growth conditions
[0092] The virulent strains
Salmonella enterica serovar Typhimurium ATCC14028 (American Type Culture Collection) and
Salmonella enterica serovar Enteritidis LK5 (
Salmonella Genetic Stock Centre, University of Calgary) and non-virulent strain S. Typhimurium
LB5000 (SGSC181; University of Calgary) were used for the propagation of
Salmonella's bacteriophages UAB_Phi20, UAB_Phi78 and UAB_Phi87.
Propagation and purification of bacteriophages
[0093] UAB_Phi20, UAB_Phi78 and UAB_Phi87 bacteriohage lysates were obtained by infecting
exponential cultures of S. Typhimurium LB5000 grown in LB broth at a multiplicity
of infection (MOI; relation between the numbers of infective bacteriophages per bacterial
viable cell) of 0.01 pfu/cfu, and incubated at 37°C during 5 h. After the centrifugation
of cultures at 10,414 x g for 10 min, the supernatant was collected and filtered through
a 0.45 µm and 0.22 µm syringe polyestersulfona (PES) filters and the bacteriophage
titter was determined by plating serial dilutions (1:10) onto LB plates using the
double agar layered method.
[0094] When high titter of bacteriophage lysates were necessary, 50 ml of
Salmonella cultures in LB broth at an initial O.D.
550 of 0.2 were prepared and incubated at 37°C with agitation till obtaining O.D.
550 of 1. Then the culture was infected with the appropriated bacteriophage keeping a
MOI of 0.01. After the infection the suspension was incubated at 37°C for 12-14 h.
Finally, the lysates were recovered similarly as described previously. The bacteriophage
lysates were concentrated and purified by the following method. First of all, the
bacteriophages were concentrated by ultracentrifugation (OptimaTM L-80, Beckman, California,
USA), in an 80Ti rotor (Beckman, California, USA) for 2 h at 51,000 x g at 4°C. All
pellets of the bacteriophages were resuspended with MgSO
4 10 mM and kept shaking overnight. After that, the suspension was filtered through
a 0.45 µm PES filters and stored at 4°C. The bacteriophage titter was determined as
above described. The bacteriophage stock solutions were maintained in MgSO
4 10 mM in milli-Q water solution at 4 °C retaining a constant titter during several
months.
Checking purity of bacteriophage lysates by PCR
[0095] To control the purity of the bacteriophages UAB_Phi20, UAB_Phi78 and UAB_Phi87 lysates,
a method based in the detection of bacteriophages through conventional PCR on the
lysates was used. For this purpose, a pair of specific primers to detect DNA primase
genes in the three bacteriophages (UAB_Phi20, UAB_Phi78 and UAB_Phi87) were designed
(Table 1). PCR reactions were performed using the Expand High Fidelity mix (Roche)
using as DNA template bacteriophage suspensions yielding a titre of 1 x 10
5 - 1 x 10
11 pfu/ml and previously boiled at 100°C for 10 min. Specific primers were used in individual
PCR reactions with the following thermal cycling conditions: 95°C for 5 min, 30 cycles
at 95°C for 30 s, 57°C for 30 s, and 72°C for 1 min, and a final extension step of
7 min at 72°C.
Table 1. Primers used for detection of bacteriophages UAB_Phi20, UAB_Phi78 and UAB_Phi87.
| Primer name |
Gene position (bp) |
Primer sequence |
| UAB_Phi20 GP18 up |
116-139 |
5'-TTAGATGAACGAAATTTTGGTGGT-3' |
| UAB_Phi20 GP18 Rv |
731-713 |
5'-CCGAAATGGAATGGTCTGG-3' |
| UAB_Phi78 GP13 up |
936-958 |
5'-TATGGCTGGCAAATCTAAGGAGT-3' |
| UAB_Phi78 GP13 Rv |
1542-1519 |
5'-ACCACCAAAATTTCGTTCATCTAA-3' |
| UAB_Phi87 ORF131 up |
534-557 |
5'-CAAAACTTCCTCTTCATCCGTATC-3' |
| UAB_Phi87 ORF131 Rv |
1214-1194 |
5'-GCTGCTGGCATTCTCCCTATC-3' |
[0096] The table shows the primer sequences and their position in the DNA primase gene of
each bacteriophage.
Example 2: Lipidic coating of bacteriophages UAB_Phi20, UAB_Phi78 and UAB_Phi87
[0097] The coating of bacteriophages in lipids was prepared using the thin film hydration
method from a lipid mixture of DLPC, Chol-PEG, Chol and cholesteryl at 1:0.1:0.2:0.7
molar ratios respectively. The amount of total lipid was 17 mM. Lipids were dissolved
in chloroform and the solvent was removed by evaporation under vacuum and nitrogen.
The lipids were hydrated with the appropriate solution of each of the bacteriophages,
UAB_Phi20, UAB_Phi78 and UAB_Phi87 at a concentration in each case of 10
11 pfu/mL, and the lipid structures thus obtained were homogenized to 400 nm by means
of an extruder (Lipex Biomembranes, Vancouver, Canada). Lipid envelopes loaded with
the bacteriophages present a mean particle size of 320 nm with a polydispersity index
(Pdl) of 0.19, which is an optimal size for an efficient bacteriophage encapsulation.
Additionally, zeta potential measurements revealed a net surface charge of +35 mV
on liposomes. Liposomes loaded with bacteriophages are close structures and present
small unilamellar vesicle (SUVs) morphology.
Example 3: Titration of lipidic coating bacteriophages
[0098] The titre of lipidic coating bacteriophages obtained in the previous example was
determined by plating serial dilutions (1:10) onto LB plates using the double agar
layered using the same
Salmonella tester strain. This titre corresponds to the free or non-coated bacteriophages. In
order to ascertain the coating efficiency, the total titre of bacteriophages was determined,
by treating 0.5 ml of the coated bacteriophages with 0.5 ml of bile salts 50 mM (Sigma-Aldrich).
Afterwards, appropriate dilutions were plated using the double agar layer method.
The percentage of coating was calculated using the following formula: 100-[(free bacteriophages
titre/total titre)x100], obtaining a coating percentage of bacteriophages comprising
between 40% to 55%. In this sense, the percentage (%) of lipid coating for the bacteriophages
UAB_Phi20, UAB_Phi78 and UAB_Phi87 was of 50 ± 1.1, 43.3 ± 2.3, and 41.6 ± 3.1, respectively,
after three independents experiments.
Example 4. Stability of lipidic coated bacteriophages at 4°C
[0099] The effect of the storage temperature of 4°C on infectivity of lipidic coating bacteriophages
UAB_Phi20, UAB_Phi78 and UAB_Phi87 of the present invention was determined. For this
purpose, coated bacteriophages were kept a 4°C for 30 days. The capsules were tittered
at 0, 15 and 30 days. The titration of the coating bacteriophages were done as detailed
in Example 3.
[0100] The results indicated that the percentage of UAB_Phi20, UAB_Phi78 and UAB_Phi87 bacteriophage
lipidic capsules remained stable for 30 days when they are stored at 4°C (Table 2).
TABLE 2. Stability of bacteriophage lipidic capsules after storage at 4 °C.
| Bacteriophage |
Percentage of coated bacteriophages* |
| Storage time (days) |
| 0 |
15 |
30 |
| UAB_Phi20 |
50 ± 1.1 |
66.7 ± 0.6 |
45.5 ± 3.5 |
| UAB_Phi78 |
43.3 ± 2.3 |
45 ± 1.4 |
35.5 ± 3.5 |
| UAB_Phi87 |
41.6 ± 3.1 |
56 ± 5.7 |
57 ± 3.1 |
| * Each value is the average of three independent experiments ± standard error |
Example 5. Stability of lipidic coated bacteriophages at acidic pH 2.8
[0101] The effect of pH on infectivity of lipidic coating bacteriophages UAB_Phi20, UAB_Phi78
and UAB_Phi87 of the present invention was determined by mimicking stomach conditions.
For this purpose, a solution composed by NaCl 0.85%; pepsin (Sigma) 3 mg/ml, and pH
2.8 and an incubation temperature of 42 °C was used. The methodology was as followed,
0.1 ml of the lipidic coating bacteriophages were added to 10 ml of the stomach solution
while the pH was checked. The bottles were incubated in a water bath with agitation
and samples were taken at 0, 30, and 60 min. Those samples were treated with bile
salts 50 mM and plated as described previously to determine the lipidic coating bacteriophages
total titre. The same methodology was applied to non-coated bacteriophages in order
to determine the protection efficacy of the lipid envelopes on the infectivity of
the bacteriophages.
[0102] The results indicated that lipidic envelopes protect bacteriophages from the acid
pH. After 60 min in contact with acid pH, coated bacteriophages showed a titre of
0.9 log
10, 1.7 log
10 and, 2.3 log
10 for UAB_Phi20, UAB_Phi78 and UAB_Phi87, respectively, higher compared with the non-coated
bacteriophages (Table 3). Therefore, lipidic coating confers to the bacteriophages
a high stability at extremely acid pH.
TABLE 3. Survival of lipidic coating bacteriophages after exposure to acid pH
| Bacteriophage |
Lipidic coat |
Bacteriophage titre (Log10 pfu/ml) |
| Time exposure (min) |
| 0 |
30 |
60 |
| UAB_Phi20 |
+ |
9.2 ± 0.0 |
6.2 ± 0.1 |
4.4 ± 0.3 |
| - |
9.2 ± 0.1 |
5.4 ± 0.2 |
3.5 ± 0.1 |
| UAB_Phi78 |
+ |
9.0 ± 0.2 |
4.5 ± 0.4 |
1.7 ± 0.1 |
| - |
9.3 ± 0.2 |
1.2 ± 0.2 |
ND |
| UAB_Phi87 |
+ |
8.8 ± 0.1 |
3.8 ± 0.0 |
3.5 ± 0.1 |
| - |
8.9 ± 0.0 |
2.4 ± 0.1 |
1.2 ± 0.2 |
[0103] Values shown are means ± standard deviations (n = 2). ND, not detected
Example 6. Lipidic coated bacteriophages stability after lyophilisation
[0104] Coated and non-coated bacteriophage UAB_Phi20 was subjected to freeze-drying lyophilisation.
The non-coated bacteriophage was set as control for the determination of lyophilisation
effect on the bacteriophage titre. The procedure for preparing the lipidic coated
bacteriophages was similar to the one above described. A lipid mixture of DLPC, Chol-PEG,
Chol and cholesteryl at 1:0.1:0.2:0.7 molar ratios were dissolved in chloroform and
the solvent was removed by evaporation under vacuum and nitrogen. The amount of total
lipid was 17 mM. The lipids were hydrated with the appropriate solution of each of
the bacteriophages containing the predissolved cryoprotective agent (trehalose) at
a 1:5 lipid to carbohydrate ratio (3.2 % (w/v)), and the lipid structures thus obtained
were homogenized to 400 nm by means of an extruder (Lipex Biomembranes, Vancouver,
Canada). After a step of freezing at -80°C for 2 h, the lyophilisation was performed
at -40°C for 48 h. Table 4 shows the titre of bacteriophages UAB_Phi20 before and
after lyophilisation process.
[0105] As it is showed in Table 4 the infectivity of non-coated and coated bacteriophage
UAB_Phi20 was 46.8% and 100%, respectively. Therefore, the lipidic coat protects bacteriophages
from getting inactivated by the extreme process conditions of the lyophilisation process.
TABLE 4. Survival of lipidic coated bacteriophages after lyophilisation
| Bacteriophage |
Lipidic coat |
Bacteriophage titre (pfu/ml) |
Percentage of infectivity (%) |
| Lyophilisation |
| - |
+ |
- |
+ |
| UAB_Phi20 |
- |
7.9E+09 |
3.7E+09 |
100 |
46.8 |
| + |
1.2E+10 |
1.2E+10 |
100 |
100 |
Example 7. Residence time of lipidic coated bacteriophages in the cecum of broilers.
[0106] The experiment was developed in the Servei de Granges i Camps Experimentals of the
Universitat Autònoma de Barcelona (Cerdanyola del Vallès, Spain). The area showed
a biosecurity level-2 (NBS2). Each poultry yard had a suspended sprue connected to
the tap water with continuous refill and a feeder which was adapted depending on the
animal needs. Temperature in the room was adapted depending on the growth and metabolism
of the chickens, hence during the first week the room was maintained at 30°C and at
8th day the temperature was decreased until 26°C and was maintained during the rest
of the experiment. The illumination of the farm alternated cycles of 5 h of green
and blue light with cycles of 1 h with blue light, with the purpose to increase the
feeding impulse of the animals. Feed and water were supplied ad libitum.
[0107] The residence time of bacteriophages in the chick digestive system was determined
over 72 h. To achieve this, two groups of 64 one-day chickens were housed on two poultry
yards. One group was administered with a non-lipidic coating bacteriophage cocktail
and the other with lipidic coating bacteriophage cocktail at a dose of 10
10 pfu of each bacteriophage/animal obtained according to the methods previously described.
These cocktails were composed by bacteriophages UAB_Phi20, UAB_Phi78 and UAB_Phi87
(1:1:1) at a concentration of 10
11 pfu of each bacteriophage/ml in MgSO
4 10 mM. One hundred µl was orally administered at 0 h and, twenty one chicks of each
group were euthanized at 2, 48 and 72 h and bacteriophages were recovered from cecum
of these animals. To do this, cecum homogenates on peptone water were serially diluted
and plated onto LB plates using the double agar layered method and were incubated
at 37°C for 18 h.
[0108] As it is showed in Table 5, after 2 h no significant differences in the recovery
of bacteriophages from animals treated with coated and non-coated bacteriophages were
observed. However at 48 h lipidic coated and non-coated bacteriophages were found
in the cecum of the 90.5 % and 38.1 % of broilers, respectively (P<0.001). Likely,
significant differences were found at 72 h. These results demonstrate that the lipidic
envelope improves the residence time of bacteriophages in the animals' digestive system.
TABLE 5. Persistence of coated and non-coated bacteriophages in the ceca of broilers
| Time (h) |
Percentage (%) of broilers with bacteriophages in cecum |
| |
Coated |
Non-coated |
| 2 |
66.7 |
57.1 |
| 48 |
90.5*** |
38.1 |
| 72 |
38.1 * |
9.5 |
| *, p < 0.05; *** p < 0.001 |
1. Coated bacteriophages comprising a lipid mixture encasing, enclosing or enveloping
one or more bacteriophages and forming a lipidic capsule, vesicle, envelope or liposome-like
particle containing one or more bacteriophages,
characterized in that the lipid mixture comprises:
- a first lipidic component containing at least one lipid substance selected from
the group consisting of: 1,2-dilauroyl-rac-glycero-3-phosphocholine (DLPC), 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine
(PC), 1,2-distearoyl-sn-glycero-3-phosphocholine (DSPC), 1,2-dimyristoyl-sn-glycero-3-phosphocholine
(DMPC), 1,2-dioleoyl-sn-glycero-3-phosphocholine (DOPC), 1,2-dipalmitoyl-sn-glycero-3-phosphocholine
(DPPC) and 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine (POPC),
- a second lipidic component containing at least one lipid substance selected from
the group consisting of: 3β-N-(dimethylaminoethyl) carbamate hydrochloride (cholesteryl),
(N-[1-(2,3-Dioleoyloxy)propyl]-N,N,N-trimethylammonium chloride) (DOTAP) and cholesteryl
hemisuccinate,
- a third lipidic component containing at least one lipid substance selected from
the group consisting of: cholesterol, squalene, ergosterol and phytosterol,
and
- a fourth lipidic component containing at least one lipid substance selected from
the group consisting of: cholesteryl-polyethylene glycol 600 sebacate (Chol-PEG600),1,2-distearoyl-sn-glycero-3-phosphoethanolamine-N-[amino(polyethylene glycol)-2000 (DSPE- PEG2000),
N-(Carbonyl-methoxypolyethyleneglycol 2000)-1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine
(DPPE-PEG5000), 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-350] (PE-PEG350), 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-550] (PE-PEG550), 1,2-dioleoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-750] (PE-PEG750), 1,2-dimyristoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-1000] (PE-PEG1000), 1,2-distearoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-2000] (PE-PEG2000), 1,2-dimyristoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-3000] (PE-PEG3000) and 1,2-dioleoyl-sn-glycero-3-phosphoethanolamine-N-[methoxy(polyethylene
glycol)-5000] (PE-PEG5000).
2. Coated bacteriophages according to claim 1
characterized in that the lipid mixture forming the lipidic capsules, vesicles, envelopes or liposome-like
particles comprises:
- the first lipidic component in an amount ranging from 40-60%.weight,
- the second lipidic component in an amount ranging from 30-45%.weight,
- the third lipidic component in an amount ranging from 10-40%.weight, and
- the fourth lipidic component in an amount ranging from 0.5-1 0%.weight.
3. Coated bacteriophages according to claims 1 - 2,
characterized in that the lipid mixture forming the lipidic capsules, vesicles, envelopes or liposome-like
particles comprises:
- the first lipidic component in an amount of 50%.weight,
- the second lipidic component in an amount of 35%.weight,
- the third lipidic component in an amount of 10% weight, and
- the fourth lipidic component in an amount of 5%.weight.
4. Coated bacteriophages according to claims 1 - 3,
characterized in that the lipid mixture forming the lipidic capsules, vesicles, envelopes or liposome-like
particles comprises:
- 50% weight 1,2-dilauroyl-rac-glycero-3-phosphocholine (DLPC),
- 35% cholesteryl 3P-N-(dimethylaminoethyl)carbamate hydrochloride (cholesteryl),
- 10% cholesterol (Chol), and
- 5% cholesteryl-polyethylene glycol 600 sebacate (Chol-PEG600).
5. Coated bacteriophages according to claims 1 - 4, characterized in that the lipidic capsules, vesicles, envelopes or liposome-like particles are small unilamellar
vesicles (SUVs).
6. Coated bacteriophages according to claims 1 - 5, characterized in that the lipidic capsules, vesicles, envelopes or liposome-like particles have a mean
particle size of between 200-600 nm and a net surface charge of +10 / +50 mV.
7. Coated bacteriophages according to claims 1 - 6, characterized in that the one or more bacteriophages are selected from the group consisting of: tailed
bacteriophages from the Caudovirales order, UAB-Phi20, deposited in GenBank under accession number GQ422450, (version:
GQ422450.1 GI: 321282844), UAB-Phi78 deposited in GenBank under accession number GU595417
(version GU595417.1 GI: 322227495) and UAB_Phi87, deposited in GenBank under accession
JN225449, (version JN225449.1 GI: 402760815).
8. Coated bacteriophages according to claims 1 - 7,
characterized in that the one or more bacteriophages are selected from the group consisting of: UAB_Phi20,
deposited in GenBank under accession number GQ422450, (version: GQ422450.1 GI: 321282844),
UAB_Phi78 deposited in GenBank under accession number GU595417 (version GU595417.1
GI: 322227495) and UAB_Phi87, deposited in GenBank under accession JN225449, (version
JN225449.1 GI: 402760815), and
in that the lipid mixture forming the lipidic capsules, vesicles, envelopes or liposome-like
particles is consisting of:
- 50% weight 1,2-dilauroyl-rac-glycero-3-phosphocholine (DLPC),
- 35% cholesteryl 3β-N-(dimethylaminoethyl)carbamate hydrochloride (cholesteryl),
- 10% cholesterol (Chol), and
- 5% cholesteryl-polyethylene glycol 600 sebacate (Chol-PEG600).
9. Coated bacteriophages according to claims 1 - 8 characterized in that they are lyophilized.
10. A process for obtaining coated bacteriophages according to claim 1 - 8, comprising
coating the bacteriophages with a lipid mixture by hydrating under agitation an aqueous
solution containing the desired bacteriophages, at a concentration up to 1011 pfu/mL, with a dry lipid film having a total amount of lipids from 10 to 30 mM.
11. A process for obtaining coated bacteriophages according to claim 9, comprising coating
the bacteriophages with a lipid mixture by hydrating under agitation an aqueous solution
containing the desired bacteriophages at a concentration up to 1011 pfu/mL,and a cryoprotective agent, with a dry lipid film having a total amount of
lipids from 10 to 30 mM.
12. A bacteriophage formulation comprising coated bacteriophages according to any of
claims 1 - 9 together with acceptable carriers, vehicles, solvents and/or excipients
for the prophylactic and therapeutic treatment of bacterial infections in humans and
animals, as feed additives or for sanitization and/or sterilization of solid matrices
in food production and processing facilities.
13. A bacteriophage formulation according to claim 12 characterized in that the percentage of coated bacteriophages is comprising between 40% to 55%.
14. A bacteriophage formulation according to any of claims 12 and 13 in the form of a
suspension, spray, aerosol, powders or granules, emulsions, hard or soft capsules,
syrups or elixirs.
15. A bacteriophage formulation according to any of claims 12 and 13 in the form of an
animal feed, drinking water, sanitizer or sterilization solution.