CELL CULTURE CONTAINER
20230126643 · 2023-04-27
Inventors
- Farlan Veraitch (London, Greater London, GB)
- Jason Palmer (Yaxley Cambridgeshire, GB)
- Arman Amini (London, Greater London, GB)
- William Raimes (London, Greater London, GB)
Cpc classification
International classification
Abstract
A cell culture container comprising a base section and a compressible wall element. The base section includes a substantially planar rigid base plate. The compressible wall element extends from the base section in an axial direction and defines an internal volume of the cell culture container. The compressible wall element is compressible in the axial direction. There is also disclosed a bioreactor that includes the cell culture container.
Claims
1. A cell culture container comprising: a base section including a substantially planar rigid base plate; and a compressible wall element extending from the base section in an axial direction and defining an internal volume of the cell culture container, the compressible wall element being compressible in the axial direction.
2. The cell culture container of claim 1, wherein the compressible wall element is attached to the rigid base plate by a connection chosen from a weld, a clamp, a clip, or an adhering connection.
3. (canceled)
4. The cell culture container of claim 1, wherein the compressible wall element is integrally molded with the rigid base plate as an over-mold onto a part of the compressible wall element.
5. The cell culture container of claim 1, wherein the compressible wall element comprises a deformable portion disposed at a position chosen from at a joint between the compressible wall element and the rigid base plate or immediately adjacent to the joint between the compressible wall element and the rigid base plate.
6. The cell culture container of claim 1, further comprising a base sheet extending over the rigid base plate within the internal volume of the cell culture container.
7. The cell culture container of claim 6, wherein the base sheet extends from the compressible wall element and is integrally molded with the compressible wall element.
8. The cell culture container of claim 6, wherein the base sheet is oxygen permeable.
9. The cell culture container of claim 8, wherein the rigid base plate comprises one or more gas permeable openings.
10. The cell culture container of claim 8, wherein the rigid base plate comprises one or more spacers adapted to space the base sheet from the rigid base plate.
11. The cell culture container of claim 1, wherein the compressible wall element comprises an inwardly deformable portion, an outwardly deformable portion, and a leaf portion extending between the inwardly deformable portion and the outwardly deformable portion, and wherein the inwardly deformable portion and the outwardly deformable portion are adapted to deform to cause the compressible wall element to compress.
12. The cell culture container of claim 11, wherein a portion chosen from the inwardly deformable portion or the outwardly deformable portion is disposed at a position chosen from at a joint between the compressible wall element and the rigid base plate or immediately adjacent to the joint between the compressible wall element and the rigid base plate.
13. The cell culture container of claim 1, wherein the rigid base plate comprises a sensor window chosen from a transparent sensor window or a translucent sensor window.
14. The cell culture container of claim 1, wherein the compressible wall element comprises a material chosen from a silicone, a low density polyethylene, or a thermoplastic elastomer.
15. The cell culture container of claim 1, wherein the compressible wall element comprises an outer portion and an element chosen from a liner or an insert.
16. The cell culture container of claim 1, wherein the compressible wall element comprises an inner portion and a jacket.
17. The cell culture container of claim 1, wherein at least a part of the compressible wall element comprises a gas impermeable coating.
18. The cell culture container of claim 1, wherein the rigid base plate comprises a material chosen from a high density polyethylene or a polycarbonate.
19. (canceled)
20. A bioreactor for a cell culturing process, the bioreactor comprising: a cell culture container including a base section including a substantially planar rigid base plate, and a compressible wall element extending from the base section in an axial direction and defining an internal volume of the cell culture container, the compressible wall element being compressible in the axial direction; and an interface plate attachable to the compressible wall element opposite to the base section to close the cell culture container.
21. (canceled)
22. The bioreactor of claim 20, wherein the interface plate comprises a connector interface.
23. A cell processing system, comprising: a bioreactor comprising a cell culture container including a base section including a substantially planar rigid base plate, and a compressible wall element extending from the base section in an axial direction and defining an internal volume of the cell culture container, the compressible wall element being compressible in the axial direction; and an agitator configured to move the base section to agitate a fluid in the cell culture container.
24. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Embodiments of the disclosure are further described hereinafter with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION
[0051] The bioreactor 1 shown in
[0052] The interface plate 3 is attached to a top of the cell culture container 2, for example, acting as a lid or closure. The interface plate 3 comprises at least one connector interface 5 for connecting to an external component, for example, a consumable for delivering a fluid to, or extracting a fluid from, the cell culture container 2. Accordingly, the interface plate 3 provides for adding media and other fluids to the cell culture container 2 during cell processing, and/or for removing fluid from the cell culture container 2 during processing, for example, to remove a sample or waste fluid.
[0053] The cell culture container 2 may be extendible and/or compressible. In particular, the cell culture container 2 has a compressible wall element 6, for example, a bellows wall. The cell culture container 2 has a base section 7 disposed opposite to the interface plate 3, and a compressible wall element 6 defining a sidewall of the cell culture container 2. A top part of the compressible wall element 6 is attached to the interface plate 3. The top part of the compressible wall element 6 may include a rigid ring 8 or similar for attaching to the interface plate 3. The compressible wall element 6 is compressible and/or extendible such that the base section 7 can move toward and away from the interface plate 3, changing the internal volume of the cell culture container 2. The base section 7 may be moved relative to the interface plate 3 in order to agitate or mix the fluid 4 in the cell culture container 2.
[0054] The compressible wall element 6 may be a bellows wall, having a concertina arrangement that allows the compressible wall element 6 to fold onto itself in order to compress. In particular, as illustrated the compressible wall element 6 may comprise a series of alternately arranged deformable portions 9a, 9b, specifically inwardly deformable portions 9a and outwardly deformable portions 9b. Leaf segments 10 extend between the deformable portions 9a, 9b. The leaf segments 10 are more rigid than the deformable portions 9a, 9b. The deformable portions 9a, 9b act as hinges that allow the compressible wall element 6 to collapse like a bellows or concertina, with the leaf segments 10 remaining substantially non-deformed.
[0055] The compressible wall element 6 may comprise at least one inwardly deformable portion 9a and at least one outwardly deformable portion 9b, for example, at least two inwardly deformable portions 9a and at least two outwardly deformable portions 9b. The compressible wall element 6 may comprise three, four, or more inwardly deformable portions 9a and three, four or more outwardly deformable portions 9b.
[0056] The inwardly deformable portion(s) 9a and outwardly deformable portion(s) 9b may be formed by thinned sections in the compressible wall element 6. The inwardly deformable portion(s) 9a may comprise a thinned section arranged on the outer surface of the compressible wall element 6 such that it is deformable in an inward direction. The outwardly deformable portion(s) 9b may comprise a thinned section arranged on the inner surface of the compressible wall element 6 such that it is deformable in an outwards direction.
[0057] In some examples, the compressible wall element 6 comprises a silicone, in particular, a liquid silicone rubber. In other examples, the compressible wall element 6 comprises a low density polyethylene (LDPE). In other examples, the compressible wall element 6 comprises a thermoplastic elastomer (TPE). In some examples, as described further hereinafter, the compressible wall element 6 may be coated, laminated, or otherwise treated to reduce the gas permeability of the compressible wall element 6 or to render the compressible wall element 6 impermeable to gases, particularly oxygen. In some examples, the compressible wall element 6 comprises a layer and an outer sheath, jacket, or coating. For example, the compressible wall element 6 may comprise an inner portion and a jacket over-molded onto the LDPE inner portion. The inner portion may comprise LDPE and the jacket may comprise a TPE. In another example, the compressible wall element 6 may comprise an elastomer outer, for example, a TPE outer, and a liner. For example, an LDPE liner may be blow-mounted onto the internal surface of the elastomer outer to form the liner. In another example, the liner may be an insert, for example, an LDPE insert, received within the elastomer outer but not co-molded with the elastomer outer. In such an example, it may be preferable that the liner comprises a base sheet and defines a sealed container (except for the top) to hold the cell culture.
[0058] The cell culture container 2 can, therefore, expand and contract, or be expanded and contracted, according to the material held in the cell culture container 2. In particular, the cell culture container 2 may expand as the volume of fluid 4 within the cell culture container 2 grows, and/or as additional materials are added.
[0059] As illustrated, the interface plate 3 also includes an expansion container 11, otherwise called a breathing container. The expansion container 11 allows for the cell culture container 2 to expand and contract without greatly changing the pressure in the cell culture container 2. Alternatively or additionally, the expansion container 11 may be operable, for example, by being mechanically or manually compressed or expanded, to expand or retract the compressible wall element 6 of the cell culture container 2 and thereby change a volume of the cell culture container 2. Alternatively or additionally, the expansion container 11 may be operable, for example, by being mechanically or manually compressed or expanded, to alter the pressure within the cell culture container 2.
[0060] In various examples described hereinafter, the base section 7 comprises a rigid base plate 12. The rigid base plate 12 is generally planar, i.e., flat. The rigid base plate 12 is attached to, or molded with, the compressible wall element 6, as described further hereinafter.
[0061] The rigid base plate 12 is substantially planar and thereby defines a rigid, substantially flat bottom of the cell culture container 2. A flat bottom of the cell culture container 2 may provide for improved cell culturing, in particular, mixing and control over cell culturing. The flat bottom of the cell culture container 2 helps to ensure that cells are substantially evenly spread over the cross-section of the cell culture container 2 as the cells will sink to the bottom of the cell culture container and if the base section 7 were not flat the cells would, therefore, be concentrated in a smaller volume, which may be detrimental to cell culturing. The flat bottom of the cell culture container 2 also helps to prevent fluid 4 being trapped in the cell culture container 2 when the cells are harvested or extracted at the end of the cell culturing process.
[0062] In various examples, the rigid base plate 12 comprises a thermoplastic, for example, a high density polyethylene (HDPE), or a polycarbonate (PC), or another rigid polymer. As described further hereinafter, the rigid base plate 12 may be opaque, transparent, or translucent.
[0063] In various examples as described hereinafter, the base section 7, in particular, the rigid base plate 12, has a sensor window. The sensor window is transparent or translucent and provides an optical path into the cell culture container. Accordingly, an optical sensor can transmit light into, and receive light from, a cell culture within the cell culture container.
[0064] In the various examples, the sensor window may be centrally located in the rigid base plate 12. The central position of the sensor window may ensure that the fluid 4 overlies the sensor window during mixing and agitation, so that the sensors operating through the sensor window can function.
[0065] In the illustrated examples, the cell culture container 2 is generally cylindrical, with a generally circular base section 7 and a generally cylindrical compressible wall element 6. Accordingly, an axial direction is defined between the base section 7 and the end of the compressible wall element 6 where the interface plate 3 is mounted. However, it will be appreciated that the cell culture container 2 may take an alternative form, such as having a generally triangular or square cross-sectional form.
[0066] As shown in the examples of
[0067] The compressible wall element 6, in particular, the skirt 16 or bottom leaf segment 10a, may be adhered or welded to the rigid base plate 12, in particular, the lip 14 and/or circumferential section 15. In some examples, the compressible wall element 6, in particular, the skirt 16 or bottom leaf segment 10a, is ultrasonically welded to the rigid base plate 12, in particular, the lip 14 and/or circumferential section 15. In other examples, the compressible wall element 6, in particular, the skirt 16 or bottom leaf segment 10a, is heat welded, for example, hot plate welded, to the rigid base plate 12, in particular, the lip 14 and/or circumferential section 15. The compressible wall element 6 is sealed to the rigid base plate 12.
[0068] As illustrated, the compressible wall element 6 is attached, e.g., adhered or welded, to the rigid base plate 12 such that a deformable portion 9c is positioned at or proximal to a tip 18 of the lip 14. In this illustrated example, the deformable portion 9c positioned at the tip 18 of the lip 14 is an inwardly deformable portion.
[0069] In this example, the base section 7, in particular, the rigid base plate 12, comprises an opaque HDPE material. The rigid base plate 12 may be molded, for example, injection molded.
[0070] As shown in
[0071] One or more sensor elements 20 may be attached to, or molded into, the sensor window 19. The sensor element 20 may be an optical dot for use with an optical sensor, for example, to detect a dissolved oxygen content of the fluid in the cell culture container 2 during use.
[0072] In other examples, the rigid base plate 12 may comprise a transparent or translucent material, for example, polycarbonate (PC), and the sensor window 19 may be defined as a part of the planar central section 13.
[0073] As schematically illustrated, the rigid base plate 12 may additionally comprise a valve 24 for extraction of fluid from the cell culture container 2, for example, for harvesting cells from the cell culture container 2 at the end of a cell culturing process.
[0074] In the examples shown in
[0075] In the examples of
[0076] In the example of
[0077] In the example of
[0078] In the examples of
[0079] In this example, the base section 7, in particular, the rigid base plate 12, comprises an opaque HDPE material.
[0080] As shown in
[0081] One or more sensor elements 20 may be attached to, or molded into, the sensor window. The sensor element 20 may be an optical dot for use with an optical sensor, for example, to detect a dissolved oxygen content of the fluid in the cell culture container 2 during use.
[0082] In other examples, the rigid base plate 12 may comprise a transparent or translucent material, for example, a polycarbonate, and the sensor window 19 may be defined as a part of the planar central section 13.
[0083] Similarly to the examples of
[0084] In the example of
[0085] As illustrated, the bottom leaf segment 10a is attached to the circumferential section 25 such that an inwardly deformable portion 9a of the compressible wall element 6 is arranged at, or immediately adjacent to, the rigid base plate 12.
[0086] In this example, the base section 7, in particular, the rigid base plate 12, comprises a transparent polycarbonate (PC) material. The rigid base plate 12 comprises a plurality of strengthening ribs 26 molded into a surface of the rigid base plate 12 opposite to the compressible wall element 6 to improve the strength and rigidity of the rigid base plate 12 and reduce the risk of shattering.
[0087] As shown in
[0088] One or more sensor elements 20 may be attached to, or molded into, the rigid base plate 12 at the sensor window 19. The sensor element 20 may be an optical dot for use with an optical sensor, for example, to detect a dissolved oxygen content of the fluid in the cell culture container 2 during use.
[0089] Alternatively, similar to the examples of
[0090] Similarly to the examples of
[0091] In the example of
[0092] As illustrated in
[0093] In this example, the base section 7, in particular, the rigid base plate 12, comprises a transparent polycarbonate (PC) material.
[0094] As shown in
[0095] Alternatively, similar to the examples of
[0096] Similarly to the examples of
[0097] In the example of
[0098] In some examples, the base sheet 27 is attached, in particular, sealingly attached, to the compressible wall element 6. The internal volume of the cell culture container 2 is thereby sealed between the compressible wall element 6 and the base sheet 27, and the fluid does not contact the rigid base plate 12. In this example, the base sheet 27 is sealingly attached to the compressible wall element 6, for example, by welding such as hot plate welding or ultrasonic welding.
[0099] Additionally or alternatively, the base sheet 27 is attached, in particular, sealingly attached, to the rigid base plate 12. The base sheet 27 can be attached to the rigid base plate 12 around a circumference of the base sheet 27, at or adjacent to the joint between the compressible wall element 6 and the rigid base plate 12. The internal volume of the cell culture container 2 is thereby sealed between the compressible wall element 6 and the base sheet 27. In this example, the base sheet 27 is sealingly attached to the rigid base plate 12, for example, by welding such as hot plate welding or ultrasonic welding.
[0100] In some examples, the base sheet 27 may gas permeable. In particular, the base sheet 27 may be oxygen permeable. The base sheet 27 may comprise silicone, in particular, liquid silicone rubber.
[0101] The rigid base plate 12 comprises one or more openings, in particular, holes 28. Accordingly, the base sheet 27 is exposed to atmosphere through the holes 28 and gas, for example, oxygen, can permeate through the base sheet 27.
[0102] In this example, the compressible wall element 6 may be gas permeable, in particular, oxygen permeable, or may gas impermeable, in particular, oxygen impermeable. In some examples, the compressible wall element 6 may be coated or laminated to render the compressible wall element 6 gas impermeable, in particular, oxygen impermeable. In some examples, the compressible wall element 6 comprises an inner silicone layer and an outer LDPE sheath or coating. The inner silicone layer may be an internal liner of the outer LDPE sheath.
[0103] As with previous examples, the rigid base plate 12 may also include a sensor window. The base sheet 27 may be transparent or translucent. The sensor window may comprise a transparent or translucent window attached to, or molded into, an opening in the rigid base plate 12. The sensor window may be an insert in the opening in the rigid base plate 12. The rigid base plate 12 may be transparent and the sensor window may be a portion of the rigid base plate 12.
[0104] One or more sensor elements may be attached to, or molded into, the rigid base plate 12 at the sensor window. The sensor element may be an optical dot for use with an optical sensor, for example, to detect a dissolved oxygen content of the fluid in the cell culture container 2 during use.
[0105] Similarly to the examples of
[0106] In the examples of
[0107] In this example, the base sheet 27 is a part of the compressible wall element 6. In particular, the base sheet 27 is formed as part of the same molding as the compressible wall element 6, for example, by blow molding. As shown in
[0108] In the example of
[0109] In some examples, a portion of the base sheet 27 is attached to the rigid base plate 12, for example, by adhesive or welding, in particular, spot welding. The base sheet 27 can be attached to the rigid base plate 12 around a circumference of the base sheet 27.
[0110] In some examples, the base sheet 27 may gas permeable. In particular, the base sheet 27 may be oxygen permeable. The base sheet 27 may comprise silicone, such as liquid silicone rubber. The base sheet 27 is made from the same material as the compressible wall element 6. All or a part of the compressible wall element 6 may be coated or laminated to render it gas impermeable, in particular, oxygen impermeable. In some examples, the compressible wall element 6 comprises an inner silicone layer and an outer LDPE sheath or coating. The inner silicone layer may be a liner of the LDPE sheath.
[0111] In this example, as shown in
[0112] As with previous examples, the rigid base plate 12 may also include a sensor window 19, as shown in
[0113] One or more sensor elements 20 may be attached to, or molded into, the rigid base plate 12 at the sensor window 19. The sensor element 20 may be an optical dot for use with an optical sensor, for example, to detect a dissolved oxygen content of the fluid in the cell culture container 2 during use.
[0114] Similarly to the examples of
[0115] In the example of
[0116] In the example of
[0117] The compressible wall element 6 comprises a flange 31 extending generally radially. The flange 31 may be flexible or deformable, and/or may comprise an increased thickness so as to have a greater stiffness. The flange 31 is received in a groove 33 formed in a circumferential portion 32 of the rigid base plate 12. The groove 33 is shaped to receive the flange 31 of the compressible wall element 6 such that the flange 31 is retained in the groove 33. The groove 33 may include one or more scalloped sections 34 to ease insertion of the flange 31 into the groove 33. Accordingly, the compressible wall element 6 can be clipped onto the rigid base plate 12 by clipping the flange 31 into the groove 33.
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[0119] In this example, the base sheet 27 is gas permeable, in particular, oxygen permeable. The rigid base plate 12 comprises one or more openings 29 and one or more spacing ribs 35 extending from the rigid base plate 12 toward the internal volume of the cell culture container 2, in particular, toward the base sheet 27. In this example, the spacing ribs 35 are arranged to space the base sheet 27 from the rigid base plate 12 to create fluid channels 36, 37 for gas circulation, in particular, air circulation. Accordingly, air can reach the underside of the base sheet 27 and permeate into the cell culture container 2 during use.
[0120]
[0121] In the example of
[0122] In the example of
[0123] In the example of
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[0126] In the example of
[0127] In the example of
[0128] Throughout the description and claims of this specification, the words “comprise” and “contain” and variations of them mean “including but not limited to,” and they are not intended to (and do not) exclude other components, integers or steps. Throughout the description and claims of this specification, the singular encompasses the plural unless the context otherwise requires. In particular, where the indefinite article is used, the specification is to be understood as contemplating plurality as well as singularity, unless the context requires otherwise.
[0129] Features, integers, characteristics or groups described in conjunction with a particular aspect, embodiment or example of the disclosure are to be understood to be applicable to any other aspect, embodiment or example described herein unless incompatible therewith. All of the features disclosed in this specification (including any accompanying claims, abstract and drawings), and/or all of the steps of any method or process so disclosed, may be combined in any combination, except combinations where at least some of such features and/or steps are mutually exclusive. The disclosure is not restricted to the details of any foregoing embodiments. The disclosure extends to any novel one, or any novel combination, of the features disclosed in this specification (including any accompanying claims, abstract and drawings), or to any novel one, or any novel combination, of the steps of any method or process so disclosed.