Bioreactor with addition tube
11549091 ยท 2023-01-10
Assignee
Inventors
Cpc classification
C12M29/00
CHEMISTRY; METALLURGY
C12M21/08
CHEMISTRY; METALLURGY
C12N5/0601
CHEMISTRY; METALLURGY
International classification
C12M3/00
CHEMISTRY; METALLURGY
Abstract
The invention discloses a bioreactor with a vessel defining an inner volume, agitation means and at least one addition tube, wherein a delivery orifice in the addition tube is located within the inner volume and a check valve is arranged in proximity of the delivery orifice for allowing flow of a fluid in the direction from the addition tube into the inner volume of the vessel and blocking flow in the reverse direction.
Claims
1. A bioreactor comprising: a vessel defining an inner volume configured to contain liquid contents; an agitation means; at least one addition tube configured to introduce reagents from outside the bioreactor, the at least one addition tube having a first end protruding into the inner volume of the vessel to be in direct contact with the liquid contents of the vessel wherein cultivation takes place and a second end residing outside of the bioreactor, the second end being opposite to the first end and higher than the first end relative to a direction of gravity; and a check valve having a delivery orifice adjacent the first end of the at least one addition tube, with the delivery orifice configured to be in direct contact with the liquid contents of the vessel wherein cultivation takes place, the check valve comprising an elastomeric closing member covering the delivery orifice, having an opening pressure below or equal to 10 kPa for allowing flow of a fluid in a downward direction along gravity from the second end, through the addition tube and through the delivery orifice into the inner volume of the vessel and blocking flow in the reverse direction, wherein there is no or minimal stagnant zones outside the check valve, wherein the check valve and the delivery orifice are arranged to be immersed in the liquid contents wherein cultivation takes place to fill the bioreactor, and wherein the addition tube is telescopic such that the position of the delivery orifice in the vessel is adjustable.
2. The bioreactor of claim 1, wherein the opening pressure of said check valve is between 10 Pa and 10 kPa.
3. The bioreactor of claim 1, wherein the elastomeric closing member is selected from the group consisting of tubes, lips, flaps and split disks.
4. The bioreactor of claim 1, wherein the vessel comprises a flexible plastic bag.
5. The bioreactor of claim 4, wherein the flexible plastic bag is arranged to be supported by a rigid support structure during use.
6. The bioreactor of claim 1, wherein the agitation means comprises an impeller.
7. The bioreactor of claim 4, wherein the flexible plastic bag is inflatable and the agitation means comprises a movable support platform for the flexible plastic bag.
8. The bioreactor of claim 1, wherein the addition tube is fluidically connected to a supply vessel containing a liquid solution comprising a pH regulator, a nutrient and/or a growth factor.
9. The bioreactor of claim 1, wherein the opening pressure of said check valve is between 100 Pa and 10 kPa.
10. A bioreactor comprising, a vessel defining an inner volume configured to contain liquid contents; an agitation means; at least one addition tube configured to introduce reagents from outside the bioreactor, the at least one addition tube having a first end protruding into the inner volume of the vessel to be in direct contact with the liquid contents of the vessel wherein cultivation takes place; and a check valve having a delivery orifice adjacent the first end of the at least one addition tube, with the delivery orifice configured to be in direct contact with the liquid contents of the vessel wherein cultivation takes place, for allowing flow of a fluid in a downward direction along gravity from the addition tube into the inner volume through the delivery orifice and blocking flow in the reverse direction, such that there is no or minimal stagnant zones outside the check valve, wherein the addition tube is telescopic such that the position of the delivery orifice in the vessel is adjustable, and wherein the check valve and the delivery orifice are arranged to be immersed in the liquid contents wherein cultivation takes place to fill the bioreactor.
11. The bioreactor of claim 1, wherein the at least one addition tube is further configured such that the first end protruding into the inner volume of the vessel is located near a bottom of the vessel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF EMBODIMENTS
(8) In one aspect the present invention discloses a bioreactor 1;11;21 comprising a vessel 2;22 which defines an inner volume 3;23. The bioreactor further comprises agitation means 4;24 and at least one addition tube 5;25, where a delivery orifice 6;26 in the addition tube is located within the inner volume of the vessel and a check valve 7;27 is arranged in proximity of, or adjacent, the delivery orifice such that it allows flow of a fluid in the direction from the addition tube into the inner volume 3;23 and blocking flow in the reverse direction. When check valve 7;27 is arranged in proximity of delivery orifice 6;26, the distance between the check valve and the orifice may be e.g. up to 20 times the diameter of tube 5;25, such as up to 10 times, up to 5 times or up to 2 times the diameter of tube 5;25 (or the average diameter if the diameter varies along the length of tube 5;25). Short distances are advantageous due to the smaller dead volumes, but it can be easier to accommodate the check valve in the tube if some distance is allowed, When a fluid, such as a pH regulating solution, a nutrient solution, a growth factor solution or a gas is supplied to the inner volume via the addition tube and the delivery orifice, the check valve opens and when no fluid is supplied the valve is closed, blocking any convective or diffusive permeation of fluid from the inner volume into the addition tube. The vessel can typically have a volume from 0.1 litres up to several thousand litres and the diameter of the addition tube can correspondingly be from about 1 mm up to several cm. The addition tube can be connected with a port in a wall of the vessel and this port can during use of the bioreactor be connected, e.g. with tubing, to a fluid supply vessel and to a pressure-generating delivery means. The delivery means can e.g. be a pump, a pressurized fluid supply vessel or a fluid supply vessel placed above the bioreactor to generate a hydrostatic pressure. The delivery of fluid can be controlled e.g by switching or regulating a pump or by opening/closing a regulator valve in the tubing.
(9) In some embodiments, the delivery orifice 6;26 of the addition tube is arranged to be immersed in liquid during use of the bioreactor. This has the advantage that the fluid is added directly into the cell culture liquid and there is no risk of fluid being trapped in the foam layer formed on top of the liquid during cultivation. The addition tube can e.g. be connected with a port in a top wall of the vessel and the addition tube can have a length sufficient to reach down at least halfway to a bottom wall of the vessel, such as at least 80% or at least 90% of the distance from the top wall to the bottom wall, with the delivery orifice located at or in proximity of a bottom end of the addition tube. The bioreactor should in these cases be supplied with an instruction to fill the vessel with sufficient liquid for immersion of the delivery orifice during use. The addition tube can alternatively also be connected with a port in a side wall or a bottom wall of the vessel and even in these cases the vessel should be filled with sufficient liquid for immersion of the delivery orifice during use.
(10) In certain embodiments, the position of the delivery orifice in the vessel is adjustable. This can be achieved e.g. with a telescopic addition tube, bellows in a vessel wall port to which the addition tube is connected, etc. and has the advantage that the delivery orifice can be immersed and positioned at a point of high turbulence regardless of the degree of filling of the vessel.
(11) In some embodiments, the delivery orifice 6;26 of the addition tube is covered by the check valve 7;27. An advantage of this is that the cell culture liquid is in direct contact with the check valve and no stagnant zones are formed outside the check valve. The check valve itself can suitably be constructed such that no stagnant zones are formed on its outside. Examples of such check valves are illustrated in
(12) In some embodiments, the check valve is inserted in the addition tube, e.g. at a position in proximity of the delivery orifice.
(13) In certain embodiments, the opening pressure of said check valve is below or equal to 10 kPa, such as between 10 Pa and 10 kPa, between 100 Pa and 10 kPa or between 1 kPa and 10 kPa. A too high opening pressure can give rise to pressure build-up and uncontrolled burst of fluid, while a too low opening pressure may cause the valve to open e.g. from pressure fluctuations induced by the agitation. The opening pressure is the minimum pressure difference between the two sides (inlet side and outlet side) of the check valve, which will cause the check valve to open. It can easily be determined with standard method, e.g. by gradually increasing the pressure on the inlet side and noting at which pressure the valve opens.
(14) In some embodiments, the check valve comprises an elastomeric closing member 38;48;58;68. Elastomeric closing members facilitate the construction of check valves without stagnant zones and are well compatible with single use bioreactor vessels. It is also possible to have an addition tube with an integrally formed elastomeric check valve closing member, such that no separate assembly of valve parts is needed.
(15) In certain embodiments, the elastomeric closing member is selected from the group consisting of tubes, lips, flaps and split disks. An example of a tubular closing member 58 is shown in
(16) In some embodiments, the vessel comprises a flexible plastic bag 2;22. This allows for single use bioreactors. The flexible plastic bag 2 can e.g. be supported by a rigid support structure 18 during use. The rigid support structure can be made from e.g. stainless steel.
(17) In certain embodiments the agitation means comprises an impeller 4. The impeller is suitably located in the inner volume of the vessel and can be arranged to rotate or oscillate, e.g. by the action of an external magnetic drive.
(18) In some embodiments the flexible plastic bag 22 is inflatable and the agitation means comprises a movable support platform 24 for the flexible plastic bag. As illustrated in
(19) In certain embodiments the bioreactor or the vessel, including the addition tube and optionally the agitation means, is radiation sterilized. This is convenient for single-use bioreactors and can be achieved when all the components are made from radiation stable materials. Suitable materials for the vessel and the addition tube can be e.g. polyethylene and ethylene copolymers, while suitable elastomers for the closing member of the check valve can be e.g. radiation stable silicones.
(20) In some embodiments the addition tube is fluidically connected to a supply vessel containing a liquid solution comprising a pH regulator, a nutrient and/or a growth factor. The liquid solution can be e.g. aqueous ammonia for pH control, but it can also be more complex media component solutions.
(21) In one aspect the present invention discloses a method of cell cultivation, which comprises the steps of: a) providing a bioreactor as described above; b) adding cell cultivation medium and cells to the inner volume of the vessel; c) providing agitation by the agitation means, and d) adding a liquid solution and/or a gas to the inner volume via the addition tube.
(22) The cells can be e.g. i) animal cells, such as mammalian or insect cells, ii) microorganisms such as bacteria or yeast cells or iii) plant cells.
(23) In certain embodiments the amount of cell cultivation medium in step b) is sufficient to immerse the delivery orifice of the addition tube.
(24) In some embodiments the liquid solution comprises a pH regulator, a nutrient and/or a growth factor.
(25) 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. Features from different embodiments may be combined to form new embodiments.