Sealer-less plasma bottle and top for same
11559464 ยท 2023-01-24
Assignee
Inventors
Cpc classification
A61J1/20
HUMAN NECESSITIES
A61J1/05
HUMAN NECESSITIES
International classification
A61J1/20
HUMAN NECESSITIES
A61J1/05
HUMAN NECESSITIES
Abstract
A top for a plasma storage container includes a top body that defines the structure of the top and seals an opening of the plasma storage container. The top also includes a first opening and a vent opening extending through the top body. A septum is located at least partially within the first opening and includes an aperture therethrough. The septum allows a blunt cannula to pass through the aperture to access the interior of the plasma storage container. The top also includes a hydrophobic membrane located on underside of the top body. The membrane covers the vent opening and allows air to vent through the vent opening during plasma collection.
Claims
1. A top for a plasma storage container comprising: a top body defining the structure of the top and configured to seal an opening of the plasma storage container; a first opening extending through the top body; a septum located at least partially within the first opening, the septum including an aperture therethrough and configured to allow a blunt cannula or other instrument to pass through the aperture to repeatedly access the interior of the plasma storage container, the septum further configured to seal the first opening when the blunt cannula or other instrument is not connected; a vent opening extending through the top body; and a hydrophobic membrane located on underside of the top body and covering the vent opening, the hydrophobic membrane configured to allow air to vent through the vent opening during filling of the plasma storage container.
2. A top for a plasma storage container according to claim 1, further comprising: a skirt extending from the underside of the top body around the first opening, the septum located and secured within the skirt.
3. A top for a plasma storage container according to claim 2, wherein the septum is secured within the skirt via swage connection.
4. A top for a plasma storage container according to claim 3, wherein the skirt and/or the swage connection applies a radially inward force on the septum, the radially inward force keeping the septum secured within the skirt.
5. A top for a plasma storage container according to claim 1, wherein the aperture is closed when the blunt cannula or other instrument is not connected.
6. A top for a plasma storage container according to claim 1, wherein the first opening is larger than the vent opening.
7. A top for a plasma storage container according to claim 1, wherein the top body includes at least one flow channel on an underside of the top body, the at least one flow channel in fluid communication with the vent opening to allow airflow in and out of the plasma storage container via the vent opening.
8. A top for a plasma storage container according to claim 1, wherein a surface area of the hydrophobic membrane is larger than a cross-sectional area of the vent opening.
9. A top for a plasma storage container according to claim 1, wherein the hydrophobic membrane is ultrasonically welded to the underside of the top body.
10. A top for a plasma storage container according to claim 1, wherein the hydrophobic membrane is sealed to the underside of the top body.
11. A top for a plasma storage container according to claim 1, further comprising: a retainer located on a top surface of the top body, the retainer configured to hold the blunt cannula in place during filling of the plasma storage container.
12. A top for a plasma storage container according to claim 11, wherein the retainer is a clip.
13. A top for a plasma storage container according to claim 1, wherein the other instrument is a sample collection container holder, the septum further configured to allow the sample collection container holder to pass through the aperture to access the interior of the plasma collection container.
14. A top for a plasma storage container according to claim 13, wherein the sample collection container holder is a vacutainer holder.
15. A top for a plasma storage container according to claim 1, wherein the blunt cannula is part of a tubing set connected to a blood processing device.
16. A plasma storage container comprising: a container body defining the structure of the plasma storage container and defining an interior; a container top configured to seal an opening of the plasma storage container; a first opening extending through the container top; a septum located at least partially within the first opening, the septum including an aperture therethrough and configured to allow a blunt cannula or other instrument to pass through the aperture to repeatedly access the interior of the plasma storage container, the septum further configured to seal the first opening when the blunt cannula or other instrument is not connected; a vent opening extending through the container top; and a hydrophobic membrane located on underside of the container top and covering the vent opening, the hydrophobic membrane configured to allow air to pass through the vent opening during plasma collection.
17. A plasma storage container according to claim 16, further comprising: a skirt extending from the underside of the container top around the first opening, the septum located and secured within the skirt.
18. A plasma storage container according to claim 17, wherein the septum is secured within the skirt via swage connection.
19. A plasma storage container according to claim 18, wherein the skirt and/or the swage connection applies a radially inward force on the aperture, the radially inward force biasing the aperture closed.
20. A plasma storage container according to claim 17, wherein the septum is overmolded within the skirt.
21. A plasma storage container according to claim 16, wherein the aperture is closed when the blunt cannula or other instrument is not connected.
22. A plasma storage container according to claim 16, wherein the first opening is larger than the vent opening.
23. A plasma storage container according to claim 16, wherein the container top includes at least one flow channel on an underside of the container top, the at least one flow channel in fluid communication with the vent opening to allow airflow in and out of the plasma storage container via the vent opening.
24. A plasma storage container according to claim 23, wherein a surface area of the hydrophobic membrane is larger than a cross-sectional area of the vent opening.
25. A plasma storage container according to claim 16, wherein the hydrophobic membrane is ultrasonically welded to the underside of the container top.
26. A plasma storage container according to claim 16, wherein the hydrophobic membrane is sealed to the underside of the container top.
27. A plasma storage container according to claim 16, further comprising: a retainer located on a top surface of the container top, the retainer configured to hold the blunt cannula in place during filling of the plasma storage container.
28. A plasma storage container according to claim 27, wherein the retainer is a clip.
29. A plasma storage container according to claim 16, wherein the other instrument is a sample collection container holder, the septum is further configured to allow the sample collection container holder to pass through the aperture to access the interior of the plasma collection container.
30. A plasma storage container according to claim 29, wherein the sample collection container holder is a vacutainer holder.
31. A plasma storage container according to claim 16, wherein the blunt cannula is part of a tubing set connected to a blood processing device.
32. A top for a plasma storage container comprising: a top body defining the structure of the top and configured to seal an opening of the plasma storage container; a first opening extending through the top body; a septum located at least partially within the first opening, the septum including an aperture therethrough and configured to allow a blunt cannula to pass through the aperture to access the interior of the plasma storage container; a vent opening extending through the top body; a hydrophobic membrane located on underside of the top body and covering the vent opening, the hydrophobic membrane configured to allow air to vent through the vent opening during filling of the plasma storage container; and a retainer located on a top surface of the top body, the retainer configured to hold the blunt cannula in place during filling of the plasma storage container and when the blunt cannula is accessing the interior of the plasma storage container.
33. A top for a plasma storage container according to claim 32, further comprising: a skirt extending from the underside of the top body around the first opening, the septum located and secured within the skirt.
34. A top for a plasma storage container according to claim 33, wherein the septum is secured within the skirt via swage connection.
35. A top for a plasma storage container according to claim 34, wherein the skirt and/or the swage connection applies a radially inward force on the septum, the radially inward force keeping the septum secured within the skirt.
36. A top for a plasma storage container according to claim 32, wherein the aperture is closed when the blunt cannula is not connected.
37. A top for a plasma storage container according to claim 32, wherein the top body includes at least one flow channel on an underside of the top body, the at least one flow channel in fluid communication with the vent opening to allow airflow in and out of the plasma storage container via the vent opening.
38. A top for a plasma storage container according to claim 32, wherein a surface area of the hydrophobic membrane is larger than a cross-sectional area of the vent opening.
39. A top for a plasma storage container according to claim 32, wherein the retainer is a clip.
40. A top for a plasma storage container according to claim 32, wherein the septum is further configured to allow a sample collection container holder to pass through the aperture to access the interior of the plasma collection container.
41. A top for a plasma storage container according to claim 32, wherein the blunt cannula is part of a tubing set connected to a blood processing device.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The foregoing features of embodiments will be more readily understood by reference to the following detailed description, taken with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION OF SPECIFIC EMBODIMENTS
(11)
(12) As shown in
(13) On the underside 124, the top 120 may include a skirt 190 that extends distally from the top 120 (e.g., downward from the top 120) and around the inlet opening 170. To help maintain the sterility of the container 100 and keep the inlet opening 170 closed when the container is not being filled with plasma (e.g., before and after filling), the top 120 may include a septum 200 located and secured within the skirt 190. As best shown in
(14) It should be noted that, although the aperture 210 is shown as a slit within
(15) Also on the underside 124, the top 120 may include a hydrophobic membrane 230 located under the vent hole 160 such that the hydrophobic membrane 230 may provide a sterile barrier for the vent hole 160. During filling of the plasma container 100, the hydrophobic membrane 230 will allow air to pass through the membrane 230 and the vent hole 160 to prevent atmospheric pressure differentials from building up in the container 100. To help with air flow, the top may also include a number of channels 220 within the surface under the hydrophobic membrane 230. The channels 220 can extend to the edge of the vent hole 160 and allow air pass through the membrane 230, for example, even if the membrane 230 is pushed against the underside 124 of the top 120 (e.g., during high-air-flow-rate periods).
(16) The hydrophobic membrane 230 may be ultrasonically welded to the top 120 (or otherwise sealed to the top 120) to prevent air from leaking past the hydrophobic membrane 230. To that end, the top 120 may include an energy director 222 for use during the ultrasonic welding process to ensure that the hydrophobic membrane 230 is properly sealed and secured to the underside 124 of the top 120. Alternatively, the membrane 230 may be secured to the top 120 via other joining methods including, but not limited to, adhesives, hot melt glue, and laser welding.
(17) As shown in
(18) It should be noted that the top 120 and container body 110 may be formed as two separate pieces and then secured together via ultrasonically welded together. To help facilitate the ultrasonic welding, the top 120 may include a distally extending wall 126 that extends over the top of the container body 110 when the top 120 is placed on the body 110 (e.g., over the proximal end 140 of the body 110). Additionally, on the underside 124, the top 120 may include an energy director 128 to aid in the ultrasonic welding process (e.g., to secure the top 120 to the body 110).
(19) During use and plasma collection, the user may connect the plasma container 100 to a blood processing device via the blunt cannula 240 (
(20) As the blood processing device separates the plasma from whole blood and sends the plasma to the storage container 100, the plasma may flow through the tubing set 300 and into the interior volume 150 of the container 100 via the blunt cannula 240. As the plasma flows into the container 100, air will exit the container 100 through the hydrophobic membrane 230 and the vent hole/opening 160. This, in turn, will prevent pressure from building up within the container 100. As needed/required by the blood processing device, air may also enter the container 100 through hydrophobic/sterilizing membrane 230 and the vent hole/opening 160. This, in turn, will prevent vacuum from building up within the container 100.
(21) In order to aid in storage and to ensure that the opening in the outlet portion 242 of the cannula 240 is covered and not exposed to the atmosphere, the tubing set 300 may include a cap 320 that can be used for both the blood processing device connector 310 and the outlet portion 242 of the cannula 240. For example, the cap 320 may have an open end 322 that may be placed over the blood processing device connector 310 when not in use. Additionally, the top 324 of the cap 320 may have an opening 326 in which the outlet portion 242 of the cannula 240 may be inserted. In some embodiments, the cap 320 may be tethered to the blood component device connector 310.
(22) Once the plasma has been collected within the container 100, there may be a need to sample the collected plasma at various times (e.g., after collection, sometime during storage, prior to use). To that end, the user may insert a sample collection container holder (e.g., a vacutainer holder) into the septum 200/aperture 210 to access the volume of plasma within the container 100. The user may then turn the container 100 upside down and connect a vacutainer to the holder to begin collecting a sample of plasma within the vacutainer. It should be noted that collecting the plasma sample in this manner provides the most representative sample of the plasma in the container 100 possible and minimizes/eliminates any loss of plasma, where residual plasma might otherwise be lost in sampling means that involve sampling through tubing external to the top 120.
(23) Although the embodiments described above eliminate both the port for introducing plasma into prior art containers and the port for venting prior art containers (e.g., the ports extending from the plasma container and the sections of tubing connected to the ports, discussed above), some embodiments may eliminate only a single port (e.g., the container may retain one port). For example, some embodiments may utilize the inlet hole 170 and septum 200 but retain the vent port (e.g., a vent port extending from the plasma container and having a section of tubing connected to it). Alternatively, some embodiments may utilize the vent hole 160 and hydrophobic membrane 230 but retain the port to introduce plasma into the bottle (e.g., an inlet port extending from the plasma container and having a section of tubing extending from it).
(24) It should be noted that various embodiments of the present invention provide numerous advantages over prior art plasma storage containers. For example, because embodiments of the present invention eliminate one or more of the plastic stubs and ports mentioned above, some embodiments of the present invention are able to reduce and/or eliminate the risk of breaking and comprising product sterility. Furthermore, various embodiments of the present invention are able to eliminate the need for heat/RF sealing equipment and processes for sealing tubing prior to transportation and storage. Additionally, because embodiments of the present invention allow for sample collection directly via the septum 200 (e.g., as opposed to drawing plasma into a section of tubing first like in many prior art systems), the present invention is able to collect a highly representative sample of the plasma with little/no loss.
(25) The embodiments of the invention described above are intended to be merely exemplary; numerous variations and modifications will be apparent to those skilled in the art. All such variations and modifications are intended to be within the scope of the present invention as defined in any appended claims.