ASEPTIC CONNECTOR
20170281921 · 2017-10-05
Assignee
Inventors
Cpc classification
F16L2201/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M39/105
HUMAN NECESSITIES
A61M39/16
HUMAN NECESSITIES
F16L39/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L39/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M39/16
HUMAN NECESSITIES
Abstract
The invention relates to a An aseptic connector comprising a first connection unit (102; 202; 302; 402; 502) provided with a first terminal end surface (104; 204; 304; 404; 504) and a second connection unit (106; 206; 306; 406; 506) provided with a second terminal end surface (108; 208; 308; 408; 508); said first and second terminal end surfaces are each provided with at least one first and second opening (110, 112; 210, 212; 310, 312; 410, 412; 510, 512), which openings are orientated to substantially coincide when said first and second connection units are connected to each other; said first and second openings are sealed by at least one film (114; 214; 314; 414; 514) arranged on said first and second connection units, so that the contact between the film and each connection unit is aseptic; said at least one film is adapted to be mated with a corresponding film on the other connection unit when said first and second connection units are connected to each other; and said mated films are adapted to be pulled out together two and two after mating such that corresponding first and second openings in said first and second terminal end surfaces are mated aseptically. At least two first ports (116; 216; 316; 416; 516) are arranged on the first connection unit, which first ports have fluid connection with the at least one first opening (110; 210; 310; 410; 510) in the first terminal end surface; and in that at least one second port (118; 218; 318; 418; 518) is arranged on the second connection unit, which the at least one second port has a fluid connection with the at least one second opening (112; 212; 312; 412; 512) in the second terminal end surface.
Claims
1. An aseptic manifold comprising, a first connection unit having a first side and a second side that is opposite to the first side, wherein the first side of the first connection unit comprises at least two first ports and the second side of the first connection unit comprises a first terminal end surface, wherein the first terminal end surface is provided with at least two first openings sealed by a first film and each first opening is in fluid communication with a corresponding first port, and a second connection unit having a first side and a second side that is opposite to the first side, wherein the first side of the second connection unit comprises one second port and the second side of the second connection unit comprises a second terminal end surface, wherein the second terminal end surface is provided with at least two second openings sealed by a second film and the second openings are in fluid communication with the one second port, wherein each of the first opening is positioned to coincide with a second opening when the units are connected, and wherein the first film of the first connection unit is adapted to be mated with the second film of the second connection unit such that when the first and the second connection units are connected to each other the mated films are adapted to be pulled out together two and two to allow the first and second terminal end surfaces to mate aseptically.
2. The aseptic manifold of claim 1, wherein the aseptic manifold is a disposable unit.
3. The aseptic manifold of claim 1, wherein a gasket is arranged around each opening and a gasket around a first opening is adapted to mate with a corresponding gasket around a second opening when first and the second connection units mate with each other such that each first opening is sealingly connected with its corresponding second opening.
4. The aseptic manifold of claim 3, wherein a first foam layer is arranged around each gasket of the first terminal surface and a second foam layer is arranged around each gasket of the second terminal surface such that the first foam layer is adapted to be compressed with the second foam layer when two connection units are mated.
5. The aseptic manifold of claim 1, wherein the first film is double folded over the first openings and a single sheet of the uppermost layer of the first film is reaching outside the first terminal end surface as a first tab and the second film is double folded over the second openings and a single sheet of the uppermost layer of the second film is reaching outside the second terminal end surface as the second tab and the first tab and the second tab are adapted to be pulled together to release the films from the connection units.
6. The aseptic manifold of claim 1, wherein at least one of the first and second ports is provided with a valve, which is arranged to control fluid flow through the aseptic manifold.
7. The aseptic manifold of claim 1, further comprising measuring means that comprises a sensor with an optional RFID tag arranged at the aseptic manifold.
8. The aseptic manifold of claim 1, wherein the connection units are provided with orientation specific locking means arranged to mechanically lock the connection units to each other.
9. The aseptic manifold of claim 1, wherein the first terminal surface is provided with two first openings and the second terminal surface is provided with two second openings that coincides with the two first openings when the units are connected.
10. The aseptic manifold of claim 9, wherein the two second openings are in fluid communication with the one second port via “Y” branching inside the second connection unit.
11. The aseptic manifold of claim 1, wherein the first terminal surface is provided with three first openings and the second terminal surface is provided with three second openings that coincides with the three first openings when the units are connected.
12. The aseptic manifold of claim 1, wherein the first terminal surface is provided with four first openings and the second terminal surface is provided with four second openings that coincides with the four first openings when the units are connected.
13. A sterile circuit comprising at least two lengths of tubing each fluidically connected to one of the at least two ports of the first connection unit.
14. The sterile circuit of claim 13, further comprising a container fluidically connected to the at least two lengths of tubing.
15. An aseptic manifold comprising, a first connection unit having a first side and a second side that is opposite to the first side, wherein the first side of the first connection unit comprises at least two first ports and the second side of the first connection unit comprises a first terminal end surface, wherein the first terminal end surface is provided with one opening sealed by a first film and the first opening is in fluid communication with the at least two first ports, and a second connection unit having a first side and a second side that is opposite to the first side, wherein the first side of the second connection unit comprises one second port and the second side of the second connection unit comprises a second terminal end surface, wherein the second terminal end surface is provided with one second opening sealed by a second film and the second opening is in fluid communication with the one second port, wherein the first opening is positioned to coincide with the second opening when the two units are connected, and wherein the first film of the first connection unit is adapted to be mated with the second film of the second connection unit such that when the first and the second connection units are connected to each other the mated films are adapted to be pulled out together two and two to allow the first and second terminal end surfaces to mate aseptically.
16. The aseptic manifold of claim 15, wherein the aseptic manifold is a disposable unit.
17. The aseptic manifold of claim 15, wherein the first film is double folded over the first opening and a single sheet of the uppermost layer of the first film is reaching outside the first terminal end surface as a first tab and the second film is double folded over the second opening and a single sheet of the uppermost layer of the second film is reaching outside the second terminal end surface as the second tab and the first tab and the second tab are adapted to be pulled together to release the films from the connection units.
18. The aseptic manifold of claim 15, wherein at least one of the first and second ports is provided with a valve, which is arranged to control fluid flow through the aseptic manifold.
19. The aseptic manifold of claim 15, further comprising measuring means that comprises a sensor with an optional RFID tag arranged at the aseptic manifold.
20. The aseptic manifold of claim 15, wherein the connection units are provided with orientation specific locking means arranged to mechanically lock the connection units to each other.
21. A sterile circuit comprising at least two lengths of tubing each fluidically connected to one of the at least two ports of the first connection unit.
22. The sterile circuit of claim 21, further comprising a container fluidically connected to the at least two lengths of tubing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Further aspects, advantages and features of the invention can be derived from the following detailed description of exemplary embodiments of the invention, with reference to the drawings.
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DETAILED DESCRIPTION
[0037]
[0038] The first and second openings 110, 112 are sealed by at least one film 114 arranged on said first and second connection units 102, 106. The contact surfaces between the film 114 and each connection unit 102, 104 are aseptic. The film 114 is adapted to be mated with a corresponding film 114 on the other connection unit when said first and second connection units 102, 104 are connected to each other. Thereafter, the mated films 114 are adapted to be pulled out together two and two after mating such that corresponding first and second openings 110, 112 in said first and second terminal end surfaces 104, 108 are mated aseptically. The films 114 can e.g. be folded over and be connected to, or form, tabs protruding outside the connection units, which makes the tabs suitable for pulling.
[0039] In the first embodiment disclosed in
[0040] Pipes or tubes 120, such as flexible thermoplastic tubes are intended to be connected to the ports 116, 118 by pushing them over the projecting ports 116, 118, so that a mechanical retention of the pipes or tubes 120 is achieved in order to form a leak-tight seal. The pipes or tubes 120 may also be connected to process containers and equipment, such as plastic bags and pumps (not disclosed). The ports 116, 118 may have equal or different diameters, so that the aseptic connector 100 is applicable to a wide array of pipe and tube 120 sizes. In the embodiment disclosed the ports 116, 118 projects out of the connection units 102, 106. However, it is also possible to arrange the ports 116, 118 as apertures (not disclosed) in the connection unit 102, 106, so that the pipes or tubes 120 are pushed into and installed in the aperture.
[0041] A gasket 122 is arranged around each opening 110, 112. Said gasket 122 being adapted to mate with a corresponding gasket 122 or terminal end surface 104, 108 on the other connection unit 102, 106 which the connection unit 102, 106 possibly should be connected with when the films 114 have been released from the connection units 102, 106. The gasket 122 can possibly also be arranged around a suitable number of openings 110, 112. Also, a foam layer 124, such as a compressible foam layer, is arranged around each gasket 122, which foam layer 124 is adapted to be compressed around each gasket 122 when two connection units 102, 106 are mated. The foam layer 124 provided around the gaskets 122 leads to that the units can be pressed together to a first aseptic connection position where the protective films 114 can be removed without exposing the aseptic process side to the environment, which may be non-sterile. The purpose of the compressible foam layers 124 is to provide the required degree of volumetric variability to allow for an expansion of the two opposite foam layers 124 against each other to remain asepsis when removing the adjacent folded films 114 by pulling.
[0042] In
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[0048] In
[0049] In
[0050]
[0051] Preferably, the aseptic connector 100; 200; 300; 400; 500 according to the invention is a disposable unit, i.e. adapted to be used only once. One advantage with disposable systems is that there is no need for cleaning and bioburden control before using the systems because disposable systems are already aseptic in some degree and they should not be used again and need therefore not be cleaned between uses. Therefore the aseptic connector 100; 200; 300; 400; 500 according to this invention is particularly interesting in disposable systems.
[0052] In a further aspect of the invention, a sterile circuit is disclosed, which comprises at least one first connector unit 102; 202; 302; 402; 502 as discussed above and at least two lengths of tubing 120; 220 fluidically connected to the unit, preferably to the ports 116; 118; 216; 316; 416; 516; 518. The sterile circuit may be presterilized, e.g. by irradiation or autoclaving and it may be packaged in a sterile container, such as e.g. a sterile pouch or bag. The sterile circuit may further comprise at least one container, such as a storage bag or a bioreactor bag, which is fluidically connected to at least one of the tubing lengths 120; 220. The first connector unit of the sterile circuit may be aseptically connected to a second connector unit, which may, or may not, form a part of a second sterile circuit with at least one length of tubing fluidically connected to the second connector unit.
[0053] The provision of sterile circuits greatly facilitates the setup of complex sterile systems, such as bioreactors with multiple lines for feeding nutrients, gases etc and for removal of culture fluid and/or metabolites etc. One sterile circuit may be attached to one bioreactor via one or more lengths of tubing or it may be attached to a plurality of bioreactors. The latter is particularly suitable for screening experiments such as high throughput screening experiments where a large number of small bioreactors are used and it is of imperative need to have a compact system for supply and removal of fluids.
[0054] The word aseptic used in this description and in the claims shall have a broad definition, i.e. include any level of bioburden control. The bioburden control or asepsis can be measured as organisms/ml or CFU (colony forming units). In one embodiment of the invention the level of asepsis should be below 100 CFU/ml. The latter corresponds to bioburden control levels required for food grade products. Low levels of bioburden can be achieved by sterilisation processes. For example the aseptic connector 100; 200; 300; 400; 500 of the invention can be subjected to gamma sterilization. Other possible methods are autoclaving or bioburden control by ethylene dioxide.
[0055] In all embodiments described above parts and surfaces being in contact with a process fluid are suitably selected from materials that are in accordance with typical material requirements in (bio-)pharmaceutical manufacturing or food grade quality. For example, materials are suitably in compliance with USP Class VI and 21 CFR 177. Furthermore they are suitably of animal-free origin and compliance to EMEA/41O/01.
[0056] Features and components of the different embodiments above may be combined within the scope of the invention.