BIOREACTOR AND BIOREACTOR SYSTEM FOR CELL AND TISSUE GROWTH
20220243162 · 2022-08-04
Inventors
Cpc classification
C12M29/04
CHEMISTRY; METALLURGY
International classification
C12M1/12
CHEMISTRY; METALLURGY
Abstract
The invention relates to a bioreactor (10, 10′, 100) adapted for rotation, the bioreactor comprising: a vessel (12) comprising: a first end (24) and a second end (26) which define a central axis (28) of the vessel (12) extending along a first direction, e.g. a length direction, of the vessel (12) from said first (24) to said second end (26), at least one wall (18, 18′, 20) running along the first direction of the vessel (12), at least one media conduit (22, 22′) defining a volume for receiving fresh or spent media; an inner chamber defined by at least a part of a space confined within said at least one wall (18, 18′, 20) and comprising a fresh media chamber (14) and a spent media chamber (16); a cell culture chamber (30) in fluid communication with said at least one media conduit (22, 22′) and said fresh (14) and/or spent media chamber (16); and a movable wall (38) configured, within said inner chamber, to separate said fresh media chamber (14) from said spent media chamber (16) within said inner chamber.
Claims
1. A bioreactor (10, 10′, 100) adapted for rotation, the bioreactor comprising: a vessel (12) comprising: a first end (24) and a second end (26) which define a central axis (28) of the vessel (12) extending along a first direction, e.g. a length direction, of the vessel (12) from said first (24) to said second end (26), at least one wall (18, 18′, 20) running along the first direction of the vessel (12), at least one media conduit (22, 22′) defining a volume for receiving fresh or spent media; an inner chamber defined by at least a part of a space confined within said at least one wall (18, 18′, 20) and comprising a fresh media chamber (14) and a spent media chamber (16); a cell culture chamber (30) in fluid communication with said at least one media conduit (22, 22′) and said fresh (14) and/or spent media chamber (16); and a movable wall (38) configured, within said inner chamber, to separate said fresh media chamber (14) from said spent media chamber (16) within said inner chamber.
2. The bioreactor (10, 10′, 100) according to claim 1, wherein the at least one wall (18, 18′, 20) comprises an inner wall (18) and an outer wall (20), the inner (18) and outer wall (20) defining an annular compartment (22) in between said walls (18, 20), the at least one media conduit (22, 22′) is the annular compartment (22), and the inner chamber is defined by at least a part of, e.g. all of, the space confined within said inner wall (18).
3. The bioreactor (10, 10′, 100) according to claim 1, wherein the at least one wall (18, 18′, 20) is a single wall (18′), and the at least one media conduit (22, 22′) is at least one conduit (22′) arranged inside or outside the single wall (18′).
4. The bioreactor (10, 10′, 100) according to claim any one of claims 1-3, wherein said cell culture chamber (30) is arranged separately at said first end (24) of the vessel (12) and is provided with an inlet orifice (32) for allowing media from said at least one media conduit (22, 22′), e.g. said annular compartment (22) or said at least one conduit (22′), to enter into the cell culture chamber (30), and an outlet orifice or valve (34) for allowing media from said culture chamber (30) to enter into said spent media chamber (16).
5. The bioreactor (10, 10′, 100) according to any one of claims 1-4, wherein said at least one media conduit (22, 22′), e.g. said annular compartment (22) or said at least one conduit (22′), is provided with an inlet orifice (36, 36′) for allowing media from said fresh media chamber (14) to enter into the at least one media conduit (22, 22′), and an outlet orifice (32) for allowing media from the at least one media conduit (22, 22′) to enter into the cell culture chamber (30), and wherein said outlet orifice of the annular compartment corresponds to said inlet orifice of the cell culture chamber.
6. The bioreactor (10, 10′, 100) according to any one of claims 1-5, wherein at least part of said at least one wall (18, 18′, 20) is detachable, preferably as a removable end (46) of the at least one wall (18, 18′, 20) located at said first end (24) of the vessel (12), for providing access to the cell culture chamber (30).
7. The bioreactor (10, 10′, 100) according to any one of claims 1-6, wherein at least part of said at least one wall (18, 18′, 20) is transparent glass or plastic configured to permit observation of the media, cells and spheroids contained therein.
8. The bioreactor (10, 10′, 100) according to any of claims 2 and 3-7 as dependent on claim 2, wherein said inner wall (18) has a plurality of raised ridges (48) extending along the first direction of the vessel (12), and extending vertically outwards until contacting said outer wall (20), and wherein a space between said raised ridges (48) define one or more sub-compartments within said annular compartment (22).
9. The bioreactor (10, 10′, 100) according to any of claims 1-8, wherein the vessel (12) has a cylindrical or generally cylindrical shape and is adapted for rotation around a rotational, e.g. horizontal, axis (28) by one or more associated rotation elements, e.g. a drive unit, said rotational axis (28) being said central axis (28) running along the first direction of the vessel (12).
10. The bioreactor (10, 10′, 100) according to any of claims 1-9, wherein said movable wall (38) is connected to a displacement element (40) for displacing the movable wall (38) axially along the first direction of the vessel (12).
11. The bioreactor (10, 10′, 100) according to claim 10, wherein said displacement element (40) is a piston (40), said movable wall (38) being connected to said piston (40) through a piston shaft (42) which is coincident with said central axis (28) running along the first direction of the vessel (12).
12. The bioreactor (10, 10′, 100) according to claim 11, wherein a conduit (502) is provided which runs from the cell culture chamber (30) through a centre of said piston shaft (42) to at least the outside (504) of the vessel (12).
13. The bioreactor (10, 100) according to any of claims 1-12, wherein the vessel (12) or part of the vessel is constructed of a gas permeable plastic, or the vessel (12) includes a gas permeable membrane (72, 72′) for the exchange of gasses, such as oxygen and carbon dioxide, said gas permeable membrane (72′) being arranged along the circumferential part of the cell culture chamber (30).
14. The bioreactor (10, 10′, 100) according to claim 13, wherein a humidification system (62, 62′, 66, 66′, 68, 68′, 72, 72′) is provided between the culture chamber (30) and the external atmosphere, said humidification system comprising a liquid reservoir (62, 62′), preferably containing sterile water, an evaporation chamber (68, 68′), such as an evaporation labyrinth (68, 68′), and a filter (66, 66′, 72, 72′).
15. The bioreactor (10, 10′, 100) according to claim 14, wherein said filter (72, 72′) is said gas permeable membrane (72′) being arranged along the circumferential part of the cell culture chamber (30).
16. The bioreactor (10, 10′, 100) according to claim 14 or 15, wherein said humidification system further comprises an additional filter (66′) arranged in fluid communication with said liquid reservoir (62, 62′) and said evaporation chamber (68, 68′).
17. The bioreactor (10, 10′, 100) according to claim 16, wherein said additional filter (66′) is arranged along the circumferential part of the vessel (12) and in between said liquid reservoir (62, 62′) and said evaporation chamber (68, 68′).
18. The bioreactor (10, 10′, 100) according to any of claims 1-17, wherein the cell culture chamber (30) includes at least one access port (74, 76) and optionally a sensor, said sensor preferably being removably mounted in said access port.
19. The bioreactor (10, 10′, 100) according to any of claims 1-18, wherein said at least one wall (18, 18′, 20) includes an access port (54) to said fresh media chamber.
20. The bioreactor (10, 10′, 100) according to any of claims 1-19, wherein an additional cell culture chamber (80) is adapted in series connection with said cell culture chamber (30), said additional cell culture chamber (80) having a conduit (84) to transfer said fresh media and having an orifice (82) for allowing the media to flow from the cell culture chamber (30) to said additional cell culture chamber (80).
21. The bioreactor (10, 10′, 100) according to any one of claims 1-20, wherein the bioreactor (10, 10′, 100) includes at least one membrane for preventing at least part of the cell culture in the cell culture chamber (30) from exiting said cell culture chamber (30).
22. The bioreactor (10, 10′, 100) according to claim 21, wherein the at least one membrane is arranged over one or more of the inlet and/or outlet orifices (32, 34, 74) of the cell culture chamber (30).
23. The bioreactor (10, 10′, 100) according to any one of claims 1-22, wherein one or more additional cell culture chambers (80) are assembled on or in the vessel (12) by inserting extra additional cell culture chambers (80), preferably essentially petri-dish shaped cell culture chambers (30, 100).
24. The bioreactor (10, 10′, 100) according to claim 23, wherein at least one sensor is mounted on or in the one or more additional cell culture chambers (80) in such a way that the contents of each chamber (30) can be monitored independently.
25. A bioreactor (10, 10′, 10″, 100) adapted for rotation, the bioreactor (10, 100) comprising: a vessel (12) including: a first end (24) and a second end (26) which define a central axis (28) of the vessel (12) extending along a first direction, e.g. a length direction, of the vessel (12) from said first (24) to said second end (26), at least one wall (18, 18′, 20) running along the first direction of the vessel (12); at least one media conduit (22, 22′) defining a volume for receiving fresh media; an inner chamber defined by at least a part of a space confined within said at least one wall (18, 18′, 20) and comprising a fresh media chamber (14) and a spent media chamber (16); said at least one media conduit (22, 22′) being or comprising a cell culture chamber (30) in fluid communication with said spent media chamber (16) and said fresh media chamber (14); a movable wall (38) configured, within said inner chamber, to separate said fresh media chamber (14) from said spent media chamber (16), within said inner chamber.
26. The bioreactor (10, 10′, 10″, 100) according to claim 25, wherein the at least one wall (18, 18′, 20) comprises an inner wall (18) and an outer wall (20), the inner (18) and outer wall (20) defining an annular compartment (22) in between said walls (18, 20), the at least one media conduit (22, 22′) is the annular compartment (22), and the inner chamber is defined by at least a part of, e.g. all of, the space confined within said inner wall (18).
27. The bioreactor (10, 10′, 10″, 100) according to claim 25, wherein the at least one wall (18, 18′, 20) is a single wall (18′), and the at least one media conduit (22, 22′) is at least one conduit (22′) arranged inside or outside the single wall (18′).
28. A bioreactor system (88) for growing a cell culture or tissue, the system (88) comprising: a bioreactor (10, 100) adapted for rotation, said bioreactor (10, 100) comprising a vessel (12) comprising: a first end (24) and a second end (26) which define a central axis (28) of the vessel (12) extending along a first direction, e.g. a length direction, of the vessel (12) from said first (24) to said second end (26), at least one wall (18, 18′, 20) running along the first direction of the vessel (12), at least one media conduit (22, 22′) defining a volume for receiving fresh or spent media, preferably fresh media; an inner chamber defined by at least a part of a space confined within said at least one wall (18, 18′, 20) and comprising a fresh media chamber (14) and a spent media chamber (16); a cell culture chamber (30) in fluid communication with said at least one media conduit (22, 22′) and said fresh (14) or spent media chamber (16), preferably said spent media chamber (16); and a movable wall (38), configured, within said inner chamber, to separate said fresh media chamber (14) from said spent media chamber (16) within said inner chamber; wherein said movable wall (38) is connected to a displacement element (40) in the form of a piston (40), for displacing the movable wall (38) axially along the first direction of the vessel (12); the bioreactor system (88) further comprising: retaining rollers (92, 94) configured to support and/or enable rotation of the bioreactor (10, 100); a drive element (96) such as drive wheel (96) for rotating the bioreactor (10, 100); a retaining block (98) for supporting the piston (40), said piston (40) being connected to said movable wall (38) via a piston shaft (42); a drive unit (500) for moving said retaining block (98) and thereby displacing the piston (40).
29. A bioreactor (10′) adapted for rotation, the bioreactor (10′) comprising: a vessel (12) including: a first end (24) and a second end (26) which define a central axis (28) of the vessel (12) extending along a first direction, e.g. a length direction, of the vessel (12) from said first (24) to said second end (26), at least one wall (18, 18′, 20) running along the first direction of the vessel (12), at least one media conduit (22, 22′) defining a volume for receiving fresh or spent media; an inner chamber defined by at least a part of a space confined within said at least one wall (18, 18′, 20) and comprising a fresh media chamber (14) and a spent media chamber (16); a cell culture chamber (30) in fluid communication with said at least one media conduit (22, 22′) and said fresh (14) and/or spent media chamber (16); and a movable wall (38) configured, within said inner chamber, to separate said fresh media chamber (14) from said spent media chamber (16) within said inner chamber, wherein the bioreactor (10′) further comprises a humidification system (62, 62′, 66, 68, 72) comprising one or more liquid or moisturising reservoirs or elements (62, 62′), an evaporation chamber (68, 72), e.g. an evaporation labyrinth (68) and a filter (72), the filter (72) forming one of the walls of the cell culture chamber (30), and and a liquid or moisturizing transport element (66), e.g. a wick (66), configured to transport liquid or moisture from the one or more liquid or moisturising reservoirs or elements (62, 62′) to the evaporation chamber (68, 72).
30. The bioreactor (10, 10′, 10″, 100) according to claim 29, wherein the at least one wall (18, 18′, 20) comprises an inner wall (18) and an outer wall (20), the inner (18) and outer wall (20) defining an annular compartment (22) in between said walls (18, 20), the at least one media conduit (22, 22′) is the annular compartment (22), and the inner chamber is defined by at least a part of, e.g. all of, the space confined within said inner wall (18).
31. The bioreactor (10, 10′, 10″, 100) according to claim 29, wherein the at least one wall (18, 18′, 20) is a single wall (18′), and the at least one media conduit (22, 22′) is at least one conduit (22′) arranged inside or outside the single wall (18′).
32. A bioreactor (10, 10″, 100) for the growing of cell cultures and tissues, the bioreactor (10, 10″, 100) comprising a cell culture chamber (30) configured to contain a cell culture media, a circumferential gas exchanger (130, 140, 151, 310) arranged circumferentially about or along at least a part of the cell culture chamber (30) or about a central or lengthwise axis (28) of the bioreactor (10, 10″, 100), e.g. or preferably about a predetermined rotational axis (28) of the bioreactor (10, 10″, 100), wherein the circumferential gas exchanger (130, 140, 151, 310) comprises a cavity (310) comprising a volume connecting a gas exchange interface (72′) of the cell culture chamber (30) with ambient air or gas of the bioreactor (10, 10″, 100).
33. The bioreactor (10, 10″, 100) according to claim 32, wherein the gas exchange interface (72′) is a circumferential gas permeable membrane (72′), e.g. a semipermeable membrane, configured to exchange gases, such as oxygen and carbon dioxide, with content of the cell culture chamber (30) where the circumferential gas permeable membrane (72′) is arranged circumferentially along a circumferential part of the cell culture chamber (30).
34. The bioreactor (10, 10″, 100) according to claim 33, wherein the circumferential gas permeable membrane (72′) is a connecting wall (18′) connecting a first end (111) and a second end (112) wherein the first end (111), the second end (112), and the connecting wall (18′) at least in part defines the cell culture chamber (30).
35. The bioreactor (10, 10″, 100) according to any one of claims 32-34, wherein the gas exchange interface (72′) or the circumferential gas permeable membrane (72′) is supported by at least one support structure (130), e.g. a grid like support structure (130), comprising a number of openings configured to connect the gas exchange interface (72′) or the circumferential gas permeable membrane (72′) with air or gas of the cavity (310) of the circumferential gas exchanger (130, 140, 151, 310).
36. The bioreactor (10, 10″, 100) according to any one of claims 32-35, wherein the circumferential gas exchanger (130, 140, 151, 310) is connected with the ambient air or gas of the bioreactor (10, 10″, 100) via at least one gas or air inlet and/or outlet (140).
37. The bioreactor (10, 10″, 100) according to claim 36, wherein the bioreactor (10, 100) is configured for rotation about a predetermined rotational axis (28) and wherein at least one of the at least one gas or air inlet and/or outlet (140) is a double vent or port (140) configured to, e.g. or preferably simultaneously, draw in ambient air or gas into the cavity (310) of the circumferential gas exchanger (130, 140, 151, 310) and expel air or gas out of the cavity (310) of the circumferential gas exchanger (130, 140, 151, 310) in response to the bioreactor (10, 10″, 100) being rotated about the predetermined rotational axis (28) thereby creating an air flow (310).
38. The bioreactor (10, 10′, 10″, 100) according to any one of claims 13 and 32-37, wherein the bioreactor (10, 10′, 10″, 100) further comprises a circumferential humidifier (62′), wherein the circumferential humidifier (62′) is arranged circumferentially about at least a part of the cell culture chamber (30) or about a central or lengthwise axis of the bioreactor (10, 10′, 10″, 100), e.g. or preferably about a predetermined rotational axis of the bioreactor (10, 10′, 10″, 100), and comprises or is connected to one or more liquid or moisturising reservoirs or elements (62′) configured to humidify or moisturise air or gas in at least a part of a cavity (310) of the gas exchanger (130, 140, 151, 310).
39. The bioreactor (10, 10″, 100) according to claim 38, wherein the one or more liquid or moisturising reservoirs or elements (62′) is/are configured to humidify or moisturise air or gas in vicinity of or being adjacent to at least a part of a gas exchange interface (120) or a gas permeable membrane (120).
Description
[0152] Aspects of the invention is illustrated by the accompanying drawings, where:
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[0164] With reference to
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[0171]
[0172] The embodiment of the bioreactor shown in
[0173] Accordingly, a circumferential gas exchanger and a circumferential humidification system is readily provided. It is noted, that a circumferential gas exchanger (and a circumferential humidification system) may be provided independent of other features of the first aspect. Please also refer to
[0174] The embodiment of the bioreactor shown in
[0175]
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[0177]
[0178]
[0179]
[0180] Like in
[0181] The vessel in
[0182] As illustrated in
[0183] Each of the at least one media conduit 22′ is in fluid connection with the fresh media chamber 14 via a respective orifice or valve 36′ through the (single) wall 18′ allowing (liquid) media to flow from the fresh media chamber 14 to the respective media conduit 22′ upon proper movement of the movable wall 38. Each media conduit 22′ further comprises (typically arranged at an opposite or other end than the orifice 36′) an additional orifice or valve 32 aligning, corresponding, or being coincident with an inlet orifice or valve (see e.g. 32 in
[0184] In some embodiments and as shown in particular in
[0185] The vessel 12 of
[0186]
[0187]
[0188] Illustrated (see both views) is a cell culture chamber device 100 as disclosed herein. The cell culture chamber device 100 comprises an enclosure 30 (also in the following and herein referred to as a cell culture chamber; see e.g. 30 also in other Figs.) as disclosed herein defined by a first end 111, a second end 112, and at least one connecting wall 18′ connecting the ends 111, 112. The enclosure 30 is e.g. comprised by a housing/a main housing 105 where the housing/main housing 105 is cylindrical (as an example) and centrally (as an example) comprises the enclosure 30. In the shown and corresponding embodiments, the at least one connecting wall 18′ is constituted by a (e.g. supported) circumferential gas permeable membrane 72′ arranged along or as a circumferential part, i.e. the perimeter or part thereof, of the enclosure 30 and being configured for exchange of gases, e.g. oxygen and carbon dioxide. The circumferential gas permeable membrane 72′ may e.g. correspond to the membrane (72′) shown and explained in connection with
[0189] Humidification of the atmosphere close to or in the vicinity of the circumferential gas permeable membrane 72′ will typically reduce or avoid cell culture media evaporation and may for certain cell culture media furthermore greatly facilitate the exchange of gases through the circumferential gas permeable membrane 72′. Cells produce CO.sub.2 which in solution combines with water to form bicarbonate (which is acidic). Humidification of the atmosphere results in the outer surface of the circumferential gas permeable membrane 72′ becoming humid and this facilitates the escape of CO.sub.2 from the culture media and in doing so slow the acidification process. This process occurs in types of cell culture that do not rely on CO.sub.2 to buffer the media (e.g. those that contain HEPES, a zwitterionic sulfonic acid buffering agent). The most widely used types of growth media rely on bicarbonate in the media and CO.sub.2 in the atmosphere to buffer the pH of the media. Here also humidification of the outer surface of the circumferential gas permeable membrane facilitates the ‘capture’ or ‘release’ of CO.sub.2 improving stabilisation of the pH of the medium. Humidification can be provided by the cell culture chamber device 100 being located in a humidified incubator or by a humidifier as described in the following.
[0190] The cell culture chamber device 100 comprises, as shown by the front view (to the right in the Figure), a gas exchange intake and outlet for a gas exchanger of the cell culture chamber device 100 that may be any suitable intake, conduit, etc. Preferably, and as shown, the gas exchange intake and outlet is in the form of a double vent or similar 140 connecting the circumferential gas exchanger with outside or ambient air or gas of the cell culture chamber device 100. Alternatively, the gas exchange intake and outlet is like 70′ in
[0191] The gas exchange intake and outlet/the double vent 140 is in fluid connection with the membrane 72′ thereby connecting the membrane 72′ with outside or ambient air or gas of the cell culture chamber device 100. In at least some embodiments, the double vent 140 is configured to operate according to the Coand{hacek over (a)} effect or principle. In such embodiments, a wall or other suitable barrier 151 (indicated in the Figure by a straight dashed line) is located in-between the two respective vents of the double vent 140 separating and sealing them from each other at this location, i.e. in this particular example separating and sealing them in the shortest direction between them. However, the two vents of the double vent 140 are in fluid connection with each other via another path inside the housing 105 of the cell culture chamber device 100 and are also in fluid connection with at least parts of the gas exchange membrane 72′ e.g. via one or more conduits, open spaces, cavities, etc. When the cell culture chamber device 100 is rotated anticlockwise, ambient air or gas is sucked into and out of the cell culture chamber device 100 via the double vent 140 as indicated by the arrows of the front view and cross-sectional side view of
[0192] In this way, an effective air flow 310 is readily provided being in contact with the membrane 72′ and the ambient gas or air of the cell culture chamber device 100 thereby e.g. expediently adding oxygen and removing carbon dioxide to/from the membrane 72′ and thereby to/from the content of the enclosure 30.
[0193] In some further embodiments, the degree of air movement or flow 310 can be regulated by regulating the respective sizes of openings of the vents of the double vent 140 for example with a slider or small or differently sized plugs or in another suitable manner.
[0194] In some further embodiments (and as shown), the cell culture chamber device 100 optionally further comprises a circumferential humidifier or humidification or moisturising element or system (herein equally referred to as humidifier) 62′ configured to humidify or moisturise air or gas at least in the vicinity of the membrane 72′ (at least parts thereof). A humidifier will greatly enhance a gas exchange between the content of the enclosure 30 and the ambient air or gas and will furthermore reduce or eliminate water or liquid loss from the enclosure 30 when containing a liquid or aqueous solution. The effect is so significant that the cell culture chamber device 100 will normally be able to be used in an incubator without additional humidification. This is advantageous since it typically will reduce a risk of infection in the incubator and also enables simplification of the incubator.
[0195] In some such embodiments, the circumferential humidifier 62′ comprises (or is connected to) one or more liquid or moisturising reservoirs or elements. It is advantageous if the weight distribution of the circumferential humidifier 62′ is at least somewhat uniformly distributed, at least to some extent, about a central axis or a rotational axis of the cell culture chamber device 100. It is also an advantage if such one or more liquid or moisturising reservoirs or elements has, or provides, a relatively large surface area for evaporation.
[0196] There are several expedient possibilities for humidifying or moisturising air or gas at least in the vicinity of the membrane 72′ (at least parts thereof).
[0197] In some embodiments, the circumferential humidifier 62′ comprises an element or reservoir (see e.g. 62, 62′ in
[0198] In alternative embodiments, the circumferential humidifier 62′ comprises one or more of a water or solute-containing material such as a gel, sponge, a particulate material (e.g. water-beads, aqua-beads, slush powder, or water gel powder, etc.) that readily provides evaporation of water or liquid and efficiently influences the air flow 310. Such solid humidifying or moisturising elements may be supported or secured in the housing 105 e.g. by or to an (open) enclosure, a wall or other support structure (e.g. 145 in the following Figures).
[0199] In case of water-beads or a gel, these may be secured, adhered, pasted, etc. to an inner wall (as mentioned e.g. or preferably uniformly about the central and/or rotational axis) of the main housing/housing 105, whereby support structures are not necessary.
[0200] For embodiments not comprising a water or liquid reservoir (e.g. water-beads, gel, etc. as mentioned above), it is possible to locate such directly in a conduit, cavity, open space, etc., comprising the air flow 310, thereby greatly increasing the humidifying or moisturising effect of the air flow 310 and enabling reduction of overall space/foot-print of the cell culture chamber device 100. This avoids the need for a separate reservoir such as 62′ in
[0201] It is noted, that for embodiments without a humidifier (e.g. for use in a humidified incubator or other), the shown cell culture chamber device 100 will not comprise the illustrated circumferential humidifier 62′ and may have a reduced size as a result.
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[0203] Illustrated in
[0204] The cell culture chamber device 100 of
[0205] In this particular (and corresponding embodiments), the central housing 101 additionally comprises a gas exchange circuit, element, or system in the form of a circumferential gas exchange system comprising a circumferential gas permeable membrane (not shown; see e.g. 72′ in
[0206] In this particular (and corresponding embodiments), the central housing 101 furthermore comprises a circumferential humidifier (not shown) as disclosed herein and e.g. as explained in connection with
[0207] The central housing 101 optionally comprises a gas exchange intake and outlet for a gas exchanger as disclosed herein (see e.g. 130, 140, 151, 310, etc. in
[0208] Further indicated are three cross-sections designated AA (shown in
[0209] In some embodiments (and as shown), the cell culture chamber device 100 further comprises a closable and/or sealable (first) port 76 providing access for a user to the inside of the enclosure e.g. for taking out a sample from the enclosure (e.g. removing spheroids), emptying or filling the enclosure, etc. In the shown embodiment, the closable and/or sealable port 76 comprises a conduit (from the inside of the enclosure to outside the cell culture chamber device 100) and e.g. a simple plug or similar 160. The port may (alternatively or in addition) advantageously be located on the top of the cell culture chamber device 100 as this may avoid or reduce bubble formation, e.g. by allowing for overflow. Such a ‘top-side’ port is e.g. shown as 74 in
[0210] In some embodiments (and as shown), the cell culture chamber device 100 further comprises one or more fiducial and/or identification markers, here an identification code 155 and a fiducial marker 180. The identification code 155 is preferably unique to the particular cell culture chamber device 100. The fiducial marker 180 enables determination of the orientation of the cell culture chamber device 100. The fiducial and/or identification markers 155, 180 is/are preferably machine readable, e.g. by a suitable imaging or vision unit or system. In some embodiments, the cell culture chamber device further comprises one or more aligning elements (e.g. location bar and slit or slot, etc.) for aligning different parts (ensuring or facilitating that a part may only be received with a proper orientation by another part) of the cell culture chamber (e.g. appropriately aligning the cover 102 with the first or central housing 101). The fiducial marker 180 may e.g. be such an aligning element.
[0211] Accordingly, a very compact (lengthwise) cell culture chamber device 100 is provided, in particular because of the circumferential gas exchange system and (if present) the circumferential humidifier.
[0212] Optionally, the cover 102 comprises a number of level or fill-rate indicators 190 readily indicating an actual volume of cell culture media contained in the enclosure.
[0213] In some embodiments and as shown, the cell culture chamber device 100 further comprises one or more (here two) feet, standing elements or the like 501 enabling the cell culture chamber device 100 to stand and from rolling. This may make use of ports, inlets, etc. easier or more reliable (see e.g. port 74 herein).
[0214] Illustrated in
[0215] The ratio between a first extent/length (in the left right direction of
[0216] Illustrated in
[0217] As mentioned, the second port 74 provides access (in addition to the first port 76) to the enclosure 30. As explained in connection with e.g.
[0218] As can be seen, the closable and/or sealable first port 76 and its conduit connects the inside of the enclosure 30 to outside the cell culture chamber device 100. The port walls are a part of the cover 102, allowing for easy access to the content of the enclosure 30. In a similar manner, access to the inside of the enclosure 30 is afforded via the second port 74 (with plug 170). The plug walls of 74/170 are a part of the central housing 101. It is noted, that the first port 76 and the second part 74 are arranged at different sides of the cell culture chamber device 100 enabling easy access to the enclosure from several different sides of the cell culture chamber device 100.
[0219] Further illustrated is the gas exchange intake and outlet in the form of a double vent 140 as previously explained.
[0220] The view of
[0221] Illustrated in
[0222] Again, the enclosure 30, the first transparent end 111, the transparent or translucent second 112, the central housing 101, the cover 102, the closable and/or sealable ports 76 and 74, and the main housing 105 are illustrated.
[0223] Further shown, is the gas permeable membrane 72′ of the circumferential gas exchange system and a (part of a) grid like structure 130 of the circumferential humidifier.
[0224] Also illustrated is a wall structure element or similar 145 for holding and/or supporting a water, liquid, or moisturizing element (explained further in connection with
[0225] In some embodiments, the cell culture chamber device 100 optionally further comprises one or more markings 115—herein as an example in the form of a number of concentric circles 115 that may give a user some fixed marks against which to see the gentle movement of the contained spheroids. The markings 115 are (as an example) arranged on the ‘outside’ of the second end 112.
[0226] The view of
[0227] Illustrated in
[0228] Illustrated is the enclosure 30, the first end 111, the second 112, the cover 102, the closable and/or sealable port 76, and two wall structure elements or similar 145 for holding and/or supporting a water, liquid, or moisturizing element according to some embodiments.
[0229] The view of
[0230]
[0231] Illustrated are the elements of
[0232]
[0233] In at least some embodiments, the material of the main housing 105, the central housing 101 (and thereby the second end 112), the cover 102 (and thereby the first end 111) may e.g. be the same material e.g. as disclosed herein elsewhere.
[0234] The embodiments of a cell culture chamber device 100 as illustrated in