Cell culture bag with internal dialysis membrane
10760041 ยท 2020-09-01
Assignee
Inventors
Cpc classification
C12M29/04
CHEMISTRY; METALLURGY
B01D2313/208
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The invention discloses a flexible bag for cell cultivation, comprising a cultivation compartment and at least one dialysis compartment, wherein the dialysis compartment(s) is/are delimited from the cultivation compartment by one or more dialysis membranes and is/are fluidically connected to a first and a second port in the bag.
Claims
1. A flexible bag for cell cultivation, comprising: a) one or more walls; b) a cultivation compartment defined by the one or more walls; c) at least one dialysis compartment surrounded by the cultivation compartment, the at least one dialysis compartment being delimited from the cultivation compartment by at least one tubular dialysis membrane, wherein the at least one tubular dialysis membrane has a lumen, and two ends; and d) a first and second port, each port having one end extending through a wall of the flexible bag, and an opposite end fluidically connected to the ends of the at least one tubular dialysis membrane, wherein the lumen forms the at least one dialysis compartment, wherein the at least one tubular dialysis membrane does not have a housing around it and has a length longer than the straight-line distance between the first and second ports such that the tubular dialysis membrane is free to move in relation to the bag.
2. The flexible bag according to claim 1, wherein the total volume of the at least one dialysis compartment is less than 10% of the volume of the cultivation compartment.
3. The flexible bag according to claim 1, wherein the maximum thickness of the at least one dialysis compartment is less than 2 cm.
4. The flexible bag according to claim 1, further comprising a bundle of tubular dialysis membranes.
5. The flexible bag according to claim 1, wherein the at least one tubular dialysis membrane is a hollow fiber membrane.
6. The flexible bag according to claim 5, further comprising a bundle of hollow fiber membranes.
7. The flexible bag according to claim 1, wherein the at least one tubular dialysis membrane is arranged directly in the cultivation compartment.
8. The flexible bag according to claim 1, wherein the at least one tubular dialysis membrane has a length of 1.1-2 times the straight-line distance between the first and second ports.
9. The flexible bag according to claim 4, wherein the bundle of tubular dialysis membranes is reinforced with fibrous braids.
10. The flexible bag according to claim 3, wherein the maximum thickness of the at least one dialysis compartment is less than 1 cm.
11. The flexible bag according to claim 3, wherein the maximum thickness of the at least one dialysis compartment is less than 2 mm.
12. The flexible bag according to claim 8, wherein the at least one tubular dialysis membrane has a length 1.1-1.5 times the straight-line distance between the first and second ports.
13. A bioreactor comprising the flexible bag according claim 1.
14. The bioreactor according to claim 13, wherein the flexible bag is mounted on a support plate which is pivotally mounted to a base about a movable axis.
15. The bioreactor according to claim 13, further comprising cells and a cell culture medium.
16. A method of cultivating cells, comprising the steps of: a) providing the flexible bag for cell cultivation of claim 1, b) introducing cell culture media and cells in the cultivation compartment and cultivating the cells under agitation, c) flowing a dialysis liquid through the dialysis compartment(s) via the first and second ports to allow for mass transport of at least one component from the cultivation compartment via the dialysis membrane into the dialysis liquid, wherein the pressure differential between the cultivation compartment and the dialysis compartment is less than 10 kPa.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF EMBODIMENTS
(8) In one aspect, illustrated by
(9) In some embodiments, the inner volume of the dialysis compartment or, if the bag comprises several dialysis compartments, the total inner volume of these compartments, is less than 10% of the volume of the cultivation compartment. It can even be less than 5% of the cultivation compartment volume, such as 0.01-5% or 0.1-2%. With a small dialysis compartment volume, a low flow rate of dialysis fluid is sufficient to maintain a high concentration gradient of metabolites over the membrane, which has an advantageous effect on the mass transport rate. Larger compartments require a higher flow rate, necessitating the use of larger volumes of dialysis fluid, which adds cost and the need for a larger pump.
(10) In certain embodiments, the maximum thickness of the dialysis compartment or compartments is less than 2 cm, such as less than 1 cm, less than 2 mm, 0.5-10 mm or 0.5-2 mm. If the dialysis compartment is a pouch or other generally flat structure, the maximum thickness is measured as the maximum thickness of the compartment's inner volume during use conditions, If the dialysis compartment is tubular, the maximum thickness is defined as the maximum inner diameter of the tubular compartment during use conditions. A low maximum thickness provides for a high flow velocity of dialysis fluid, also at low to moderate flow rates. High flow velocities reduce the concentration polarization over the membrane and improve the mass transport rate.
(11) In some embodiments, illustrated by
(12) In certain embodiments, illustrated by
(13) In certain embodiments, illustrated by
(14) In some embodiments, the tubular dialysis membrane and/or the hollow fiber membranes are arranged such that they are free to move in relation to the bag. Movement of the membrane(s) is advantageous as it reduces clogging/fouling of the membrane outside and it generally improves the mass transport rate. The ability to move can be achieved by not having any housing around the membrane(s) and by using membrane(s) with a length longer than the straight-line distance between the first and second ports in the bag during use conditions. The membrane(s) may e.g. have a length of 1.1-2 or 1.1-1.5 times the straight-line distance between the first and second ports.
(15) In certain embodiments the tubular dialysis membrane and/or hollow fiber membranes are arranged directly in the cultivation compartment, i.e. without any constraint such as a housing or cage around the membrane(s). The absence of any housings, cage structures etc around the membrane(s) provides freedom of movement as described above and also provides unimpeded mass transport to the membrane(s).
(16) In some embodiments, illustrated by
(17) In certain embodiments, the flexible bag comprises one or more supports to prevent bulging of the dialysis compartment. Bulging is undesirable as it increases the maximum thickness of the dialysis compartment and it is advantageous to restrain the compartment with supports 39 or restrainer elements. The support(s)/restrainer element(s) 39 can comprise a coarse net or ribs which are mounted on the outside of the dialysis compartment. They can alternatively comprise internal joints between two inner walls of the dialysis compartment, typically two opposite walls. Such joints may be achieved e.g. by point-gluing or point-welding the walls directly to each other or by gluing or welding internal pillars to both walls.
(18) In a second aspect the present invention discloses a bioreactor comprising the flexible bag as described above.
(19) In some embodiments of the bioreactor 51, the flexible bag 52 is mounted on a support plate 53 which is pivotally mounted to a base 54 about a movable axis 55, as illustrated by
(20) In alternative embodiments, the bioreactor may comprise a generally cylindrical flexible bag mounted in a rigid support vessel. The bag can have a bottom wall, a top wall and a side wall (defined according to the directions during use), and may typically have an internal agitator, e.g. a magnetically driven agitator, to provide agitation during cultivation. In these embodiments, the dialysis compartment(s) can e.g. be fixed to the side wall.
(21) In certain embodiments the bag of the embodiments described above is equipped with sanitary fittings and supplied presterilized, e.g. by gamma irradiation.
(22) In certain embodiments the bioreactor further comprises cells and a cell culture medium. The cells can e.g. be mammalian cells, insect cells, bacterial cells, yeast cells etc. and they can be selected to express a product such as e.g. a protein. They can also be infected with a virus in order to produce virus particles suitable as antigens for vaccines or as gene therapy vectors.
(23) In one aspect the present invention discloses a method of cultivating cells, which comprises the steps of:
(24) a) Providing a flexible bag 1;11;21;31;41;52 comprising a cultivation compartment 2;12;22;32;42 and at least one dialysis compartment 3;13;23;33;43. The dialysis compartment(s) is/are delimited from the cultivation compartment by one or more dialysis membranes 4;14;24;34;44 and fluidically connected to a first 5;15;25;35;45 and a second 6;16;26;36;46 port in the bag.
(25) b) Introducing cell culture media and cells in the cultivation compartment and cultivating the cells under agitation.
(26) c) Flowing a dialysis liquid through the dialysis compartment(s) via the first and second ports to allow for mass transport of at least one component from the cultivation compartment via the dialysis membrane into the dialysis liquid. The pressure differential between the cultivation compartment and the dialysis compartment is less than 10 kPa and may even be less than 1 kPa or less than 0.1 kPa. The component transferred from the cultivation compartment to the dialysis compartment can e.g. be a metabolite such as lactate and/or ammonium ions. The dialysis liquid can e.g. be an aqueous buffer having a pH value and concentrations of salts and buffering components similar to the cell culture media in the cultivation compartment.
(27) In certain embodiments of the method, the flexible bag is defined as above.
(28) This written description uses examples to disclose the invention, including the best mode, and also to enable any person skilled in the art to practice the invention, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the invention is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they have structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal languages of the claims.
(29) All publications, patent publications, and patents are herein incorporated by reference to the same extent as if each individual publication or patent was specifically and individually indicated to be incorporated by reference.