Method for the preparation of containment units of biological liquids
10745153 ยท 2020-08-18
Assignee
Inventors
Cpc classification
A61M1/0231
HUMAN NECESSITIES
A61M1/0272
HUMAN NECESSITIES
International classification
B65B3/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The method for the preparation of containment units of biological liquids, comprises the following stages of: furnishing a device (1) comprising a main body (2) which defines at least a continuous filling channel (3), having at least an inlet gap (3a) of a biological liquid and at least an air outlet gap (3b), a plurality of containment units (4) arranged in succession to one another so as to communicate with each other and defining respective containment chambers (5) positioned along the filling channel (3) and placed in between the inlet gap (3a) and the outlet gap (3b), a hydrophobic air filtering device (6) associated with the body (2) in correspondence to the outlet gap (3b), wherein the containment units (4) are bulbous members each having opposing elastically deformable sides that define the respective containment chambers therebetween, and wherein after deformation the sides return to a convex non-deformed idle configuration in which the sides are at a non-zero distance from one another; injecting a biological fluid along the channel (3) through the inlet opening (3a) so as to push towards outside the air contained inside the containment chambers (5) through the outlet gap (3b) and to gradually filling the containment chambers (5) which it crosses; closing and isolating the containment units (4) the one from the other.
Claims
1. A method for the preparation of containment units of biological liquids, wherein it comprises the following stages of: furnishing a device (1) comprising a main body (2) which defines at least a continuous filling channel (3), having at least an inlet gap (3a) of a biological liquid and at least an air outlet gap (3b), a plurality of containment units (4) arranged in succession to one another so as to communicate with each other and defining respective containment chambers (5) positioned along said filling channel (3) and placed in between said inlet gap (3a) and said outlet gap (3b), a hydrophobic air filtering device (6) associated with said body (2) in correspondence to said outlet gap (3b), wherein said containment units (4) are bulbous members each having opposing elastically deformable sides that define the respective containment chambers therebetween, and wherein after deformation the sides return to a convex non-deformed idle configuration in which the sides are at a non-zero distance from one another; injecting a biological fluid along said channel (3) through said inlet opening (3a) so as to push towards outside the air contained inside said containment chambers (5) through the outlet gap (3b) and to gradually filling the containment chambers (5) which it crosses; closing and isolating said containment units (4) the one from the other.
2. The method according to claim 1, wherein it comprises the stage of separating said containment units (4) the one another after said stage of closing and isolating, said containment nits (4) being configured to be a separate single, elastically deformable, containment unit from which the biological liquid is dispensed when elastically deformed.
3. The method according to claim 1, wherein said filling channel (3) comprises at least one additional mouth (12) and wherein it comprises at least the stage of introducing one or more activating substances into said additional mouth (12).
4. The method according to claim 1, wherein said closing and isolating is carried out by means of a welding.
5. The method according to claim 4, wherein said body (2) comprises at least an intermediate tubular element (7a) placed in between each pair of consecutive containment units (4) and at least two extremal tubular elements (7b) associated with the first and last of said containment units (4) respectively and defining said inlet gap (3a) and said outlet gap (3b), and wherein said closing and isolating is carried out by means of a welding long each of said tubular elements (7a, 7b).
6. The method according to claim 5, wherein at least one of said tubular elements (7a, 7b) comprises a first and a second portion (9a, 9b) associated integral the one with the other and crossed by said filling channel (3), said first portion (9a) being separable from said second portion (9b) so as to interrupt the filling channel (3) and define an outlet mouth for the biological liquid on the second portion itself, and wherein said closing of each tubular element (7a, 7b) is suitably done in correspondence to the relative first portion (9a), in such a way that this can then be detached from the corresponding second portion (9b) to close it.
7. The method according to claim 1, wherein said injecting a biological fluid is carried out by means of a syringe.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other characteristics and advantages of the present invention will become more evident from the description of a preferred, but not sole, embodiment of a device for the preparation of containment units of biological liquids, illustrated purely as an example but not limited to the annexed drawings in which:
(2)
(3)
(4)
(5)
EMBODIMENTS OF THE INVENTION
(6) With particular reference to such figures, globally indicated by 1 is a device for the preparation of containment units of biological liquids, such as stem cells, platelet concentrates, serum eye drops, plasma, etc. . . . .
(7) According to the invention, the device 1 comprises at least one main body 2 which defines at least a filling channel 3 having an inlet gap 3a, connectable to a syringe containing a biological liquid, and at least an outlet gap 3b for air expulsion.
(8) Moreover, the body 2 comprises a plurality of containment units 4, arranged in succession to one another, which define respective containment chambers 5 positioned along the channel 3 and placed in between the inlet gap 3a and the outlet gap 3b.
(9) The chambers 5 communicate therefore with the filling channel 3. More in particular, the chambers 5 communicate with the inlet gap 3a and outlet gap 3b.
(10) More in detail, the inlet gap 3a and the outlet gap 3b are arranged in correspondence to the opposite extremity sections of the body 2. The inlet gap 3a and the outlet gap 3b are therefore arranged on opposite sides with respect to the containment units 4.
(11) The units 4 can be of the soft, semi-rigid or rigid type.
(12) Preferably, the units 4 are of the semi-rigid type. More in particular, the units 4 are elastically deformable, and so they naturally tend to return to an idle configuration wherein the walls delimiting the relative chambers 5 are at a distance from one another.
(13) The body 2 comprises, in correspondence to the inlet gap 3a, a connection of the luer lock type.
(14) Furthermore, the device 1 comprises a filtering device 6 of hydrophobic type associated with the body 2 in correspondence to the outlet gap 3b.
(15) Advantageously, the body 2 comprises at least an intermediate tubular element 7a placed in between each pair of consecutive containment units 4 and at least two extremal tubular elements 7b associated with the first and last of the units 4 respectively and defining the inlet gap 3a and the outlet gap 3b. Each tubular element 7a and 7b therefore defines a corresponding section of the filling channel 3.
(16) More in particular, each unit 4 has two openings 8, arranged on opposite sides, each of which is associated with a respective intermediate or extremal tubular element 7a and 7b.
(17) Preferably, the units 4 are made separately with respect to the tubular elements 7a and 7b and are associated integral with the latter in correspondence to their extremal portions.
(18) Different embodiments cannot be ruled wherein the units 4 are made in a single body piece with the tubular elements 7a and 7b.
(19) In the second embodiment shown in the
(20) Preferably, the first portion 9a is removable by tearing off from the second portion 9b and separation means 11 are provided for separating the portions 9a and 9b. More in detail, the separation means 11 comprise two pairs of fins, of which one pair is associated with the first portion 9a and the other pair is associated with the second portion 9b, suitable for being gripped by an operator to facilitate the reciprocal rotation of the portions 9a and 9b.
(21) Suitably, the units 4 have bigger section than the tubular elements 7a and 7b. Advantageously, the channel 3 also comprises at least an additional mouth 12 associable with an additional syringe, e.g., for the introduction of substances for activating the biological liquid.
(22) In the first and in the second embodiments shown in the
(23) In the third embodiment shown in
(24) Advantageously, as shown in
(25) Suitably, the additional gap 14 is arranged on the opposite side of the outlet gap 3b with respect to the units 4.
(26) More in particular, the additional gap 14 is defined along the extremal tubular element 7b which also defines the inlet gap 3a.
(27) In the embodiment shown in
(28) The device 1 then comprises a further filtering device 15, this too of the hydrophobic and breathable type, associated with the body 2 and fitted in the additional gap 14.
(29) Furthermore, the device 1 comprises a further valve element 16 associated with the body 2 in correspondence to the additional gap 14 and which can be operated to place selectively in communication the inlet gap 3a with the additional gap 14 or with the chambers 5.
(30) The operation of the present invention is the following.
(31) Initially, a syringe is introduced containing a biological liquid inside the inlet gap 3a and the biological liquid is injected along the channel 3 by pressing the piston of the syringe itself.
(32) The biological liquid injected this way runs along the entire channel 3 and gradually fills the containment chambers 5 which it crosses.
(33) Before injecting the biological liquid along the channel 3, there is air inside the chambers 5 and the tubular elements 7a and 7b. As the biological liquid moves forward, this air volume is pushed towards the outlet gap 3b, and consequently as the biological liquid moves forward inside the channel 3, the air initially present along the filling channel itself escapes outside the body 2.
(34) If it then becomes necessary to introduce one or more activating substances, such as autologous and homologous thrombin and batroxobin in the case of platelet concentrates, inside the units 4, the relative syringe is introduced into the additional mouth 12 thus injecting its contents along the channel 3.
(35) In the first and in the second embodiment shown in the
(36) In the third embodiment shown in
(37) Once all the units 4 have been filled with biological liquid, these are closed and isolated the one from the other.
(38) More in particular, in the embodiments described above, the units 4 are closed by means of a welding long each tubular element 7a and 7b. At this point, each unit 4 can be separated from the others and managed independently.
(39) As regards the second embodiment described and shown in
(40) It has in point of fact been ascertained how the described invention achieves the proposed objects and in particular the fact is underlined that it allows preparing a plurality of containment units of biological liquids in a considerably more simple and practical way compared to devices of known type.
(41) In fact, the positioning of the containment units in series along an open channel allows automatically expelling the air inside the channel itself by effect of the introduction of the biological liquid.
(42) Again, the method according to the invention can be used with any type of containment units, meaning both with soft containment units and with semi-rigid or rigid ones.
(43) Furthermore, the method according to the invention allows filling any number of containment units in a very easy way, without this affecting at all its ease of handling.