(19)
(11)EP 3 705 145 A1

(12)EUROPEAN PATENT APPLICATION
published in accordance with Art. 153(4) EPC

(43)Date of publication:
09.09.2020 Bulletin 2020/37

(21)Application number: 17931049.5

(22)Date of filing:  11.12.2017
(51)International Patent Classification (IPC): 
A61M 1/36(2006.01)
G01N 21/17(2006.01)
A61M 1/38(2006.01)
(86)International application number:
PCT/CN2017/115387
(87)International publication number:
WO 2019/085156 (09.05.2019 Gazette  2019/19)
(84)Designated Contracting States:
AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR
Designated Extension States:
BA ME
Designated Validation States:
MA MD TN

(30)Priority: 31.10.2017 CN 201711048620

(71)Applicant: Sichuan Nigale Biotechnology Co., Ltd
Chengdu, Sichuan 641403 (CN)

(72)Inventors:
  • PENG, Chun
    Chengdu Sichuan 641403 (CN)
  • WANG, Chaofu
    Chengdu Sichuan 641403 (CN)

(74)Representative: Ipside 
7-9 Allées Haussmann
33300 Bordeaux Cedex
33300 Bordeaux Cedex (FR)

  


(54)PLASMA COLLECTING SYSTEM FOR OPTIMIZING AMOUNT OF ANTICOAGULANT


(57) The invention discloses a plasma collecting system for optimizing amount of anticoagulant, comprising a blood pump for driving blood to flow in the tube; an anticoagulant pump for driving an anticoagulant to flow in the tube; an HCT testing device for testing the blood HCT content; a calculating device for calculating a mixing ratio of the anticoagulant to whole blood according to the blood HCT content; and a control device for calculating the rotational speed ratio of an anticoagulant pump to a blood pump according to the mixing ratio of the anticoagulant to whole blood and a flow ratio of the anticoagulant pump to the blood pump. The required anticoagulant dosage is calculated by means of measuring the blood HCT content of every plasma donor to obtain the optimal anticoagulant dosage. The optimization is beneficial to the health of the plasma donor and to improving the quality of collected plasma. Meanwhile, the non-intrusive method of testing the blood HCT content introduces no contamination to the plasmapheresis and provides reliable basis for precision control of the anticoagulant dosage.




Description

Technical Field



[0001] The present invention relates to the field of plasma collection and transfusion, in particular to a plasma collecting system for optimizing amount of anticoagulant.

Background of the Invention



[0002] The plasmapheresis stations in China collect plasma by means of plasmapheresis machines at a uniform 1:16 anticoagulant to blood ratio. The main basis for establishing the ratio is that the general Hct ranges from 0.35 to 0.55 despite Hct varies among individuals. According to the ratio, the anticoagulation effect is ensured for all plasma donors with hematocrits (Hcts) in the normal range if the exact Hct of an individual is unknown before plasmapheresis. It also means that for people with higher Hct, in particular to males, the excessive ratio of the anticoagulant indicates an excessive anticoagulant dosage resulting in excessive citrate, and the probability of side effects caused by the excessive citrate increases accordingly. Therefore, optimization of the anticoagulant dosage reduces the impact of the anticoagulant on the health of long-term plasma donors.

Summary of the Invention



[0003] The invention is implemented in a plurality of ways, including as a method, a system, a device, an apparatus, or a computer readable medium. There are some embodiments of the invention presented below.

[0004] To solve the problem, the present invention provides a plasma collecting system for optimizing amount of anticoagulant according to the blood HCT content.

[0005] As a plasma collecting system for optimizing amount of anticoagulant, an embodiment of the invention comprises:

a blood pump for driving blood to flow in the tube;

an anticoagulant pump for driving an anticoagulant to flow in the tube;

an HCT testing device for testing the blood HCT content;

a calculating device for calculating a mixing ratio of the anticoagulant to whole blood according to the blood HCT content; and

a control device for calculating the rotational speed ratio of an anticoagulant pump to a blood pump according to the mixing ratio of the anticoagulant to whole blood and a flow ratio of the anticoagulant pump to the blood pump.



[0006] Further, according to the blood HCT content, the mixing ratio of the anticoagulant to the whole blood is calculated as follows:



[0007] Where, A=PplasmaCci.min, a=PplasmaCNaci, Vci indicates the total amount of the anticoagulant required, VB indicates the total amount of the whole blood collected, Pplasma indicates the average whole blood separation rate in the plasma collection process, cci.min indicates the citrate concentration of the plasma, and CNaci indicates the concentration of 4% sodium citrate-based anticoagulant used by the plasmapheresis stations.

[0008] Further, the HCT testing device is embedded in a transparent tube connected with a blood collector and a plasma tube respectively at two ends.

[0009] Further, the HCT testing device comprises:

a transmitter optical sub-assembly for transmitting an optical signal;

a photosensitive receiving assembly for converting the optical signal passing through the transparent blood tube into an electrical signal;

a signal processing module comprising an amplifier and an AD converter; and

a microprocessor for calculating an HCT value according to the electric signal processed by the signal processing module.



[0010] Other aspects and advantages of the invention will become apparent from the following detailed description in combination with the drawings which illustrate, by way of embodiments, the principles of the invention.

Brief description of the Drawings



[0011] The invention will be described in combination with embodiments and accompanying drawings, in which:
Fig. 1 shows a structural block diagram of a plasma collecting system for optimizing amount of anticoagulant provided by the embodiment of the invention.

Detailed Description of Embodiments



[0012] All features or steps in all methods and procedures disclosed in the specification can be combined in any way, except mutually exclusive features and/or steps.

[0013] Any feature disclosed in the specification can be replaced with other equivalent or similar features, unless otherwise specified, that is, each feature is only an example of series of equivalent or similar features, unless otherwise specified.

[0014] Defects of the prior art: The anticoagulant ratio used for plasma collection in domestic plasmapheresis stations is uniformly set to 1:16. For people with high HCT, in particular to males, the anticoagulant dosage calculated according to a fixed ratio is excessively high. Part of the anticoagulant will enter the plasma donor with erythrocytes during the plasmapheresis, and the probability of side effects caused by the excessive citrate increases accordingly.

[0015] To solve the technical problem, the present invention provides a plasma collection system with highly-accurate anticoagulant dosage.

[0016] A plasma collecting system for optimizing amount of anticoagulant, comprises:

a blood pump for driving blood to flow in the tube;

an anticoagulant pump for driving an anticoagulant to flow in the tube;

an HCT testing device for testing the blood HCT content;

a calculating device for calculating a mixing ratio of the anticoagulant to whole blood according to the blood HCT content; and

a control device for calculating the rotational speed ratio of an anticoagulant pump to a blood pump according to the mixing ratio of the anticoagulant to whole blood and a flow ratio of the anticoagulant pump to the blood pump.



[0017] The anticoagulant pump of the invention is arranged in the anticoagulant tube to drive the anticoagulant to flow therein, and the blood pump is arranged in the blood tube to drive blood to flow therein. The anticoagulant pump and the blood pump are conventional devices for plasma collection. The anticoagulant pump and the blood pump work simultaneously to mix the anticoagulant and the blood and drive the mixture to flow into a centrifuge. The blood pump runs independently to drive the erythrocytes centrifugalized by the centrifuge back to the human body. In that case, part of the anticoagulant will enter the plasma donor with erythrocytes. Therefore, it is necessary to optimize the anticoagulant dosage to reduce the impact of the citrate-based anticoagulant on the health of the plasma donor.

[0018] The HCT testing device of the invention is embedded in a transparent tube connected with a blood collector and a plasma tube respectively at two ends. The HCT testing device comprises a transmitter optical sub-assembly for transmitting an optical signal, a photosensitive receiving assembly for converting the optical signal passing through the transparent blood tube into an electrical signal; a signal processing module comprising an amplifier and an AD converter; and a microprocessor for calculating an HCT value according to the electric signal processed by the signal processing module.

[0019] The blood drawn out by the blood collector passes through the transparent tube to form a transparent blood tube. When the optical signal from the transmitter optical sub-assembly irradiates the transparent blood tube, the intensity of the optical signal changes. The photosensitive receiving assembly converts the optical signal with changed intensity after irradiation to the transparent blood tube into the electrical signal. The electrical signal is amplified by a low-noise high-gain pre-amplifier and then input to an AD converter after an anti-aliasing filtering. The AD converter transmits the electrical signal to the microprocessor to analyze the electrical signal. An HCT value is obtained according to the obtained blood transmittance, and a blood HCT content is obtained accordingly. The HCT testing device regularly outputs the testing results through a serial interface. Only one external interface is arranged in the HCT testing device, and updates of communication, power supply and firmware are completed therein. The non-intrusive method of testing the blood HCT content introduces no contamination to the plasmapheresis and provides reliable basis for precision control of the anticoagulant dosage. In addition, the HCT testing device of the invention has advantages of low cost, simple operation and short testing time.

[0020] The calculating device of the invention is used to calculate the mixing ratio of the anticoagulant to whole blood by means of mathematical operations with the HCT content tested by the HCT testing device. The mixing ratio of the anticoagulant to whole blood refers to the volume ratio of the anticoagulant to whole blood in their mixture. The mixing ratio of the anticoagulant to whole blood is calculated as follows:



[0021] Where, A=PplasmaCci.min, a=PplasmaCNaci, Vci indicates the total amount of the anticoagulant required, VB indicates the total amount of whole blood collected, Pplasma indicates the average whole blood separation rate in the plasma collection process, Cci.min indicates the citrate concentration of the plasma, and CNaci indicates the concentration of 4% sodium citrate-based anticoagulant used by the plasmapheresis stations.

[0022] Theoretical analysis of the anticoagulant dosage

1.1 Known conditional parameters:



[0023] 
  1. 1). a content of calcium ions (CiCa++) in serum, unchanged with a content of serum protein;
  2. 2). a citrate concentration (Cci.min) of plasma, sufficient to realize an effective anticoagulation effect;
  3. 3). Hematocrit (HCT)
  4. 4). in whole blood, the calcium ion content rises with the decreasing hematocrit (HCT); and
  5. 5). the concentration of 4% sodium citrate-based anticoagulant used by the plasmapheresis station (CNaci) is 136mmol/L.

1.2 Calculation of anticoagulant ratio



[0024] 
  1. 1). Vt-target amount of plasma collected;
  2. 2). Pplasma-average whole blood separation rate in the process of plasma collection (refers to the percentage of plasma collected in all plasma in the whole blood capacity in a collection process; the Pplasma is used to measure the sufficiency of plasma separation and collection in a collection process).


[0025] The volume of citrate in the plasma is as follows:



[0026] The volume of the anticoagulant in the plasma bag is as follows:



[0027] The total amount of the anticoagulant required in the whole collection process is as follows:



[0028] The relationship between the HCT and the anticoagulant ratio Rac is calculated as follows.



[0029] These formulas are simplified as follows:



[0030] Considering the errors in actual use, to ensure the anticoagulation effect, 1 is added to the minimum anticoagulant citrate concentration Cci.min, i.e., Cci.min=11mmol/L.

[0031] The total whole blood capacity in the collection process is as follows:


1.3 Calculation of theoretical minimum anticoagulant dosage



[0032] When calculating the theoretical minimum anticoagulant dosage, the new anticoagulant ratio Rac calculated by formula (5) is used

to obtain:



[0033] Where, A=PplasmaCci.min, a=PplasmaCNaci,
Pplasma indicates the average whole blood separation rate in the plasma collection process, and refers to the percentage of plasma collected in all plasma in the whole blood capacity in a collection process; and the Pplasma is used to measure the sufficiency of plasma separation and collection in a collection process. The existing plasmapheresis stations adopt plasmapheresis machines at a fixed centrifugal speed. If a plasmapheresis machine at a centrifugal speed of 7000RPM is adopted as an embodiment, the centrifugal separation rate is about 70%, and the Pplasma is 0.7. Cci.min indicates the citrate concentration of plasma. Considering the errors in actual use, to ensure the anticoagulation effect, 1 is added to the minimum anticoagulant citrate concentration Cci.min, i.e., Cci.min=11mmol/L. CNaci indicates the concentration of 4% sodium citrate-based anticoagulant used by the plasmapheresis stations, CNaci= 136 mmol/L. The HCT value obtained by the HCT testing device can be substituted into the formula to obtain a high-precision anticoagulant dosage. The required anticoagulant dosage is calculated by means of measuring the blood HCT content of every plasma donor to obtain the optimal anticoagulant dosage. The optimization is beneficial to the health of the plasma donor and to improving the quality of collected plasma.

[0034] The control device of the invention is used to calculate the rotational speed ratio of the anticoagulant pump to the blood pump according to the mixing ratio of the anticoagulant to whole blood and a flow ratio of the anticoagulant pump to the blood pump, and the implementations of the control device comprise but are not limited to a single-chip microcomputer, a microprocessor or a central processing unit. The rotational speed ratio of the anticoagulant pump to the blood pump is as follows:



[0035] Where,

indicates the flow ratio of the anticoagulant pump to the blood pump. Preferably, a flow monitoring device is arranged in the invention, to maintain the flow ratio of the anticoagulant pump and the blood pump at a set point.

[0036] The system of the invention further comprises an air detection probe respectively arranged in the anticoagulant tube and the blood tube to detect presence of air in the tube. The air detection probe determines the existence of air in the blood and the anticoagulant based on transfer velocity difference between ultrasonic in liquid and gas.

[0037] The various aspects, embodiments, implementations or features of the invention can be used separately or in any combination.

[0038] The invention has a plurality of advantages. Different aspects, embodiments or implementations yield one or more of the following advantages. The invention has an advantage that the required anticoagulant dosage is calculated by means of measuring the blood HCT content of every plasma donor to obtain the optimal anticoagulant dosage. The optimization is beneficial to the health of the plasma donor and to improving the quality of collected plasma. The invention has another advantage that the non-intrusive method of testing the blood HCT content introduces no contamination to the plasmapheresis and provides reliable basis for precision control of the anticoagulant dosage. The invention has another advantage that the HCT testing device of the invention is featured by low cost, short measurement time and simple operation, and the HCT testing device is simply clamped on a specified testing section of the consumables for measurement.

[0039] The invention is not limited to abovementioned embodiments. The invention expands to any new feature or any new combination disclosed in the specification, and steps in any new method or procedure or any new combination disclosed.


Claims

1. A plasma collecting system for optimizing amount of anticoagulant, characterized by comprising:

a blood pump for driving blood to flow in the tube;

an anticoagulant pump for driving an anticoagulant to flow in the tube;

an HCT testing device for testing the blood HCT content;

a calculating device for calculating a mixing ratio of the anticoagulant to whole blood according to the blood HCT content; and

a control device for calculating the rotational speed ratio of an anticoagulant pump to a blood pump according to the mixing ratio of the anticoagulant to whole blood and a flow ratio of the anticoagulant pump to the blood pump.


 
2. The plasma collecting system for optimizing amount of anticoagulant according to claim 1, characterized in that the mixing ratio of the anticoagulant to whole blood is calculated as follows according to the blood HCT content:

wherein, A=PplasmaCci.min, a=PplasmaCNaci, Vci indicates the total amount of anticoagulant required, VB indicates the total amount of whole blood collected, Pplasma indicates the average whole blood separation rate during plasma collection, Cci.min indicates the citrate concentration of the plasma, and CNaci indicates the concentration of 4% sodium citrate-based anticoagulant used by plasmapheresis stations.
 
3. The plasma collecting system for optimizing amount of anticoagulant of claim 1, characterized in that:
the HCT testing device is embedded in a transparent tube connected with a blood collector and a plasma tube respectively at two ends.
 
4. The plasma collecting system for optimizing amount of anticoagulant of claim 1, characterized in that the HCT testing device comprises:

a transmitter optical sub-assembly for transmitting an optical signal;

a photosensitive receiving assembly for converting the optical signal passing through the transparent blood tube into an electrical signal;

a signal processing module comprising an amplifier and an AD converter; and

and a microprocessor for calculating an HCT value according to the electric signal processed by the signal processing module.


 
5. The plasma collecting system for optimizing amount of anticoagulant of claim 2, characterized in that the rotational speed ratio of the anticoagulant pump to the blood pump is:

wherein,

indicates the flow ratio of the anticoagulant pump to the blood pump.
 
6. The plasma collecting system for optimizing amount of anticoagulant according to claim 1, characterized in that the plasma collecting system for optimizing amount of anticoagulant comprises an air detection probe respectively arranged in an anticoagulant tube and a blood tube to detect presence of air in the tube.
 




Drawing







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