The present invention relates to a single-use bioprocessing or bioreactor bag (e.g., for growing cell media), and to multilayer films for producing such bags.
Metal and glass reactor systems are well known for conducting various types of reactions in the bio-pharmaceutical industry, including for example, synthesis, cell growth and other bio-reactions. However, such systems are best suited for large scale production, as opposed to producing small quantities or batches. For the latter, a single-use plastic bag is better suited in terms of set-up time, maintenance, cost and adaptability (to product changes).
Metal or glass reactor systems do have certain advantages, a major one being that they are inert. In contrast, a plastic container for growing cell media may leech components (of the bag) into the media during reaction, storage or transport. Such leeched components may contaminate the media or adversely influence the reaction rate. For example, it would be desirable to avoid the use of certain heat stabilizers that are commonly used in the polymer industry, such as the plastics heat stabilizer tris(2,4-di-tert-butylphenyl)phosphite and its breakdown product bis(2,4-di-tert-butylphenyl)phosphate, which has been found to have a strong negative effect on cell growth rate.
The ideal bag must satisfy a number of requirements relating to strength, flexibility, ease of manufacture (including both multilayer film production and sealing the film to form a bag), gas and moisture barrier properties, resistance to sterilization (without degradation of properties), optical properties and appearance. Avoiding use of a heat stabilizer such as that noted above may have a deleterious effect on the film and/or bag mechanical/barrier/optical properties and thus while solving the leeching problem, creates other performance and/or manufacturing problems.
It would be desirable to provide a single-use plastic film bag that can satisfy the above noted requirements and that avoids the use of phosphite heat stabilizers.
The present invention is directed to a single-use plastic bioprocessing bag (e.g., for growing cell media and other bioreactions), and to a multilayer film useful in producing such bags. The multilayer film and bag avoid the problems of leeching undesirable components into the cell media, while promoting high cell growth rates and providing a range of desirable bag properties that facilitate both use and manufacture of the bag.
In one embodiment, a single-use bioprocessing bag for growing cell media is formed from a multilayer film including inner (adjacent the cell media) and outer (adjacent the surrounding environment) exterior layers of a low density polyethylene polymer, and intermediate layers of: a) an ethylene alpha-olefin copolymer (such as ethylene based octene-1 elastomer for flexibility and structural support), b) an intermediate gas barrier layer (such as ethylene vinyl alcohol copolymer), and c) tie layers between the various layers (such as a tie layer of an ethylene alpha-olefin copolymer and polyolefin copolymer grafted with maleic anhydride).
Prior multilayer films for storage bags have used ethylene alpha-olefin copolymers as the exterior layers. However, they have a problem with processability and handling due to the tacky nature of the material. In addition, they have required the use of heat stabilizers which often have other deleterious effects, such as leeching and/or a reduction of cell growth rate.
The present invention solves these problems by separating out a polyolefin layer having a certain density range, from an ethylene-alpha olefin intermediate layer having a higher density range (than the polyethylene). This avoids problems with poor handling, leeching and reduced cell growth of the prior art film bags, while providing a favorable combination of bag properties including strength, flexibility, barrier, optical/transparency and appearance.
In one embodiment, a multilayer bioreactor bag (20) made from a multilayer film (10) comprising:
inner and outer exterior surface layers (11, 16) on opposing faces of the multilayer film (10) consisting essentially of a low density polyethylene having a density in a range of 0.91 to 0.94 g/cc to provide a non-tacky exterior surface layers;
interior layers disposed between the exterior surface layers comprising a gas barrier layer (14) and a structural layer (12) comprising an ethylene alpha-olefin elastomer having a density in a range of 0.87-0.91 to provide a flexible support to the multilayer film.
In one embodiment, the multilayer film further comprises one or more tie layers (13, 15) to bond the interior layers to one or more of the ethylene alpha-olefin elastomer structural layer (12) and surface layers (11, 16).
In one embodiment, the one or more tie layers (13, 15) comprise a mixture of an ethylene alpha-olefin elastomer and a polyolefin copolymer grafted with maleic anhydride.
In one embodiment, the multilayer film comprises six layers (Layers 1-6) in serial order as listed below:
Layer 1: the inner exterior surface layer (11);
Layer 2: a first ethylene alpha-olefin elastomer structural layer (12);
Layer 3: a first tie layer (13);
Layer 4: the gas barrier layer (14);
Layer 5: a second tie layer (15); and
Layer 6: the outer exterior surface layer (16).
In one embodiment, the thickness ranges of the six layers are:
Layer 1 is in a thickness range of 10-100 microns;
Layer 2 is in a thickness range of 100-250 microns;
Layer 3 is in a thickness range of 5-50 microns;
Layer 4 is in a thickness range of 5-50 microns;
Layer 5 is in a thickness range of 5-50 microns; and
Layer 6 is in a thickness range of 10-100 microns.
In one embodiment, the density ranges of the six layers are:
Layer 1 is in a density range of 0.91-0.94 g/cc;
Layer 2 is in a density range of 0.87-0.91 g/cc;
Layer 3 is in a density range of 0.87-0.91 g/cc;
Layer 4 is in a density range of 1.10-1.25 g/cc;
Layer 5 is in a density range of 0.87-0.91 g/cc; and
Layer 6 is in a density range of 0.91-0.94 g/cc.
In one embodiment, the gas barrier layer (14) is EVOH.
In one embodiment, a multilayer film (10) comprising:
inner and outer exterior surface layers (11, 16) on opposing faces of the multilayer film (10) consisting essentially of a low density polyethylene having a density in a range of 0.91 to 0.94 g/cc to provide a non-tacky exterior surface layers;
interior layers disposed between the exterior surface layers comprising a gas barrier layer (14) and a structural layer (12) comprising an ethylene alpha-olefin elastomer having a density in a range of 0.87-0.91 to provide a flexible support to the multilayer film; and
one or more tie layers (13, 15) to bond the interior layers to one or more of the ethylene alpha-olefin elastomer structural layer (12) and surface layers (11, 16).
In one embodiment, the one or more tie layers (13, 15) comprise a mixture of an ethylene alpha-olefin elastomer and a polyolefin copolymer grafted with maleic anhydride.
In one embodiment, the multilayer film comprises six layers (Layers 1-6) in serial order as listed below:
Layer 1: the inner exterior surface layer (11);
Layer 2: a first ethylene alpha-olefin elastomer structural layer (12);
Layer 3: a first tie layer (13);
Layer 4: the gas barrier layer (14);
Layer 5: a second tie layer (15); and
Layer 6: the outer exterior surface layer (16).
In one embodiment, the thickness ranges of the six layers are:
Layer 1 is in a thickness range of 10-100 microns;
Layer 2 is in a thickness range of 100-250 microns;
Layer 3 is in a thickness range of 5-50 microns;
Layer 4 is in a thickness range of 5-50 microns;
Layer 5 is in a thickness range of 5-50 microns; and
Layer 6 is in a thickness range of 10-100 microns.
In one embodiment, the density ranges of the six layers are:
Layer 1 is in a density range of 0.91-0.94 g/cc;
Layer 2 is in a density range of 0.87-0.91 g/cc;
Layer 3 is in a density range of 0.87-0.91 g/cc;
Layer 4 is in a density range of 1.10-1.25 g/cc;
Layer 5 is in a density range of 0.87-0.91 g/cc; and
Layer 6 is in a density range of 0.91-0.94 g/cc.
In one embodiment, the gas barrier layer (14) is EVOH.
In one embodiment, the interior layers comprise one or more of anhydride-modified polyethylene, ethylene/unsaturated acid copolymer, ethylene/unsaturated ester copolymer, anhydride-modified polyolefin, polyurethane, and mixtures thereof.
In one embodiment, an inflatable bag (20) having an enclosed central chamber (21) for holding a cell or bioreactor liquid media, the inflatable bag (20) comprising a top sheet (22) of multilayer polymer material and a bottom sheet (24) of multilayer polymer material, wherein the multilayer polymer material comprises the multilayer film (10).
In one embodiment, the top sheet (22) and the bottom sheet (24) are heat sealed along perimeter edges to form the central chamber (21).
In one embodiment, a handle opening (25) is provided in a top perimeter edge of the bag (20); and port openings for receiving tubes (27) are provided in a bottom perimeter edge of the bag (20).
In one embodiment, the interior layers comprise one or more of anhydride-modified polyethylene, ethylene/unsaturated acid copolymer, ethylene/unsaturated ester copolymer, anhydride-modified polyolefin, polyurethane, and mixtures thereof.
In one embodiment, a single use bioprocessing bag for growing cell media wherein:
the ethylene alpha-olefin elastomer is ethylene based octene-1 elastomer; and
the gas barrier layer is ethylene vinyl alcohol copolymer.
In one embodiment, the ratio of layer thickness of each of the exterior surface layers (11, 16) to layer thickness of structural layer (12) is between 1:2.5 and 1:10.
These and other advantages of the present invention are disclosed in the following detailed description and drawings.
The resins of the respective layers in the multilayered film, bioreactor bag and method of producing the multilayered film and bag according to various embodiments of the present invention are described herein.
Low Density Polyethylene
The low density polyethylene LDPE used herein for the innermost and outermost exterior layers ((11) and (16) respectively of multilayer film (10) forming bag (20, 6) in
One example of a suitable LDPE polymer is Sabic PCG02, a low density polyethylene (0.921 g/cc according to ASTM D1505) available from Sabic Innovative Plastics BV of the Netherlands (www.sabic.com), produced in a high pressure tubular reactor, that is free of bis-(2, 4-di-tert-butylphenol)pentaerythritol diphosphate. It complies with the monographs of the European Pharmacopoeia and the United States Pharmacopoeia. The resin has a typical melt flow rate of 1.9 dg/min. according to ISO 1133 (at 190 degrees C. and 2.16 kg). Optical properties include a typical gloss (45 degrees) of 53%, ASTM D 2457, and typical haze of 10%, ASTM D 1003. As a film the LDPE has a typical value of impact strength of 20 kJ/m, ASTM D 4272, and tear strength of 25 kN/m in the transverse direction and 70 kN/m in the machine direction, ISO 6383-2.
Ethylene Alpha-Olefin Copolymer Elastomer
The ethylene alpha-olefin copolymer elastomer includes, for example, ethylene monomer copolymerized with an alpha-olefin having 3 to 12 carbon atoms, such as propylene, 1-butene, 1-pentene, 1-hexene, 4-methyl-1-pentene, 1-heptene, 1-octene, 1-nonene, 1-decene, 1-undecene, 1-dodecene or the like, in which the molecules of the copolymers comprise polymer chains with relatively few side chain branches arising from the alpha-olefin which was reacted with ethylene.
It is preferred that the ethylene alpha-olefin copolymer elastomer has a density in a range of 0.87 to 0.91 g/cm3. The melt flow rate MFR is preferably in a range of 1 to 2 g/10 minutes (190° C.) per ISO 1133 and the melting point is preferably from 115 to 125° C.
A suitable copolymer elastomer is ethylene based octene-1 elastomer, such as Bormed PL8830-PH available from Borealis AG Vienna Austria, www.borealisgroup.com. PL8830-PH is produced in a solution polymerization process using a metallocene catalyst, and contains a low amount of processing stabilizers, and a very low level of antioxidant. The resin has a typical density of 0.883 g/cc, per ISO 1183-1 Method A, and a typical melt flow index of 1.1 g/10 minutes (190° C./2, 16 kg) per ISO 1133.
Polyolefin Copolymer Grafted with Maleic Anhydride
The polyolefin copolymer grafted with maleic anhydride is provided in the tie layers (13, 15), providing excellent adhesion to the adjacent layers (ethylene alpha-olefin copolymer and/or LDPE). One example of a suitable resin is Bynel 46E1052 available from Dow Chemical, Midland Mich.
Polyethylene Co-Vinyl Alcohol (EVOH)
The polyethylene co-vinyl alcohol (EVOH) copolymer referred to herein for barrier layer (14) can be obtained from any commercial source. For example, an extrusion grade EVOH is available under the name EVAL™ from Kuraray Co. Ltd. of Japan. The ethylene vinyl alcohol copolymer employed herein can have a vinyl alcohol content ranging from about 40 to about 85 mole percent (mol %), and preferable, from about 50 to about 75 mol %.
The EVOH layer provides both a gas barrier and moisture barrier properties to the multilayer film. Other barrier materials can be used depending on the desired application, such as polyamide, polyester and polyvinyl dichloride. Preferably the oxygen barrier polymer has an oxygen permeability of less than 500 cc 02/meter-squared*day*atmosphere (tested at 1 mil thickness and at 25 degrees C. per ASTM D3985, and more preferably less than 100.
As an illustrative example, a multilayer film (10) depicted in
In between the exterior inner Layer 1 (11) and the exterior outer Layer 6 (16), are four intermediate Layers 2-5 (12, 13, 14, 15 respectively).
In another embodiment, the EVOH Layer 3 can be disposed closer to the exterior inner Layer 1 (closer to the interior of the bag).
Various methods can be used to produce the multi-layered film of the present invention, for example, a water-cooling or air-cooling coextrusion inflation method, a coextrusion T-die method, a dry lamination method and an extrusion lamination method. In view of desired performance characteristics, particularly transparency, economy and sanitation, a water-cooling coextrusion inflation method and a coextrusion T-die method are preferably used.
The method is carried out at the temperature at which the resins of the respective layers become or are molten. When the temperature is raised too high, heat deterioration may occur in all or a portion of the resin, and deterioration in performance may result. Accordingly, the temperature for production of the multilayered film is usually set within a range from 150 to The total thickness of the multilayer film (10) of the present invention is generally in a range from 250 to 400 μm, and preferably from 300 to 400 μm, but can be varied appropriately depending on the desired use.
Young's Modulus is a mechanical property of the material that represents the tensile stiffness of a solid material (e.g., film). It is measured as a proportionality function of the tensile stress/tensile strain (FL)/(A*change in L), where the force F is the applied force, L is the initial length, A is the square area, and the resulting Young's Modulus is in Pascals (Pa). The higher the modulus, the more stress is needed to create the same amount of strain; an idealized rigid body would have an infinite Young's modulus, while a very soft material such as a fluid, could deform without force and have a zero Young's modulus. See JIS-K-7105 and JIS-K-7136.
Tensile strength and tensile elongation express the maximum force the film material can withstand when it is pulled before breaking; the ultimate tensile strength is the highest point on the stress-strain curve and the tensile elongation is the amount it stretches. They can be measured (according to ASTM-D-882) using a tensile testing machine and the values provided in units of MPas (mega Pascals).
Haze is an index related to transparency of the film and represents the amount of haziness (cloudiness); it is obtained from the ratio of diffuse transmitted light to the total light transmitted; it is effected by the amount of surface roughness.
Heat Resistance (effect of gamma sterilization): The films were gamma sterilized at a dose of 50 kGy, before being assembled into a bag. The properties were measured and compared to those prior to gamma sterilization.
Puncture Resistance was measured with the load cell equipment shown in
Flexibility: GelboFlex was conducted according to conditions C, D, E as described by ASTM F392, and no pinholes were detected.
The heat sealing properties and testing protocol are shown in
The multilayer films can be used to manufacture single-use system SUS articles. Examples of preferred articles are films and/or bags, especially for bioprocessing applications and/or pharmaceutical applications. The films are particularly well suited to make disposable, sterile bioreactor bags. Such bags may be used for storage and/or for executing cell cultures and (bio)chemical reactions. The bioreactor bags can be made in a variety of sizes to suit different process steps and scale-up stages. Bag volumes may range from about 0.1 L to about 5.0 L for laboratory settings and up to about 10,000 L for pilot, pre-production, and production scales.
The bioreactor bag consists of the multilayer film components listed above and preferably no phosphite antioxidant compound/component or degradation product is present.
In certain embodiments, the bioreactor bag may be an inflatable bag (20) having an enclosed central chamber (21) for holding a cell media CM as shown in
Additionally, the bioreactor bag may include additional layers, such as structural and tie layers that contribute to the overall structural integrity of the bag, improve adherence among the film layers, and prevent delamination. Useful materials for additional structural layers include anhydride-modified polyethylene, ethylene/unsaturated acid copolymer, ethylene/unsaturated ester copolymer, anhydride-modified polyolefin, polyurethane, and mixtures thereof. Preferably, the structural layer includes anhydride-modified polyethylene. One example of a commercially available anhydride-modified polyethylene is Bynel™ 4157 from the E.I. du Pont de Nemours and Company of Wilmington, Del. (DuPont).
These and other embodiments of the invention will be apparent to the skilled person and the invention is not limited to the foregoing examples.
Number | Date | Country | |
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63238675 | Aug 2021 | US |