WO2022136459A1 - Chromatographic material and method of producing same - Google Patents
Chromatographic material and method of producing same Download PDFInfo
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- WO2022136459A1 WO2022136459A1 PCT/EP2021/087131 EP2021087131W WO2022136459A1 WO 2022136459 A1 WO2022136459 A1 WO 2022136459A1 EP 2021087131 W EP2021087131 W EP 2021087131W WO 2022136459 A1 WO2022136459 A1 WO 2022136459A1
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- B01J20/00—Solid sorbent compositions or filter aid compositions; Sorbents for chromatography; Processes for preparing, regenerating or reactivating thereof
- B01J20/22—Solid sorbent compositions or filter aid compositions; Sorbents for chromatography; Processes for preparing, regenerating or reactivating thereof comprising organic material
- B01J20/24—Naturally occurring macromolecular compounds, e.g. humic acids or their derivatives
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- B01J20/28002—Solid sorbent compositions or filter aid compositions; Sorbents for chromatography; Processes for preparing, regenerating or reactivating thereof characterised by their form or physical properties characterised by their physical properties
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- B01J20/28014—Solid sorbent compositions or filter aid compositions; Sorbents for chromatography; Processes for preparing, regenerating or reactivating thereof characterised by their form or physical properties characterised by their form
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- B01J20/28054—Solid sorbent compositions or filter aid compositions; Sorbents for chromatography; Processes for preparing, regenerating or reactivating thereof characterised by their form or physical properties characterised by their surface properties or porosity
- B01J20/28078—Pore diameter
- B01J20/28085—Pore diameter being more than 50 nm, i.e. macropores
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- B01J20/281—Sorbents specially adapted for preparative, analytical or investigative chromatography
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- B01J20/30—Processes for preparing, regenerating, or reactivating
- B01J20/305—Addition of material, later completely removed, e.g. as result of heat treatment, leaching or washing, e.g. for forming pores
- B01J20/3064—Addition of pore forming agents, e.g. pore inducing or porogenic agents
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- B01J20/00—Solid sorbent compositions or filter aid compositions; Sorbents for chromatography; Processes for preparing, regenerating or reactivating thereof
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- B01J20/32—Impregnating or coating ; Solid sorbent compositions obtained from processes involving impregnating or coating
- B01J20/3202—Impregnating or coating ; Solid sorbent compositions obtained from processes involving impregnating or coating characterised by the carrier, support or substrate used for impregnation or coating
- B01J20/3206—Organic carriers, supports or substrates
- B01J20/3208—Polymeric carriers, supports or substrates
- B01J20/3212—Polymeric carriers, supports or substrates consisting of a polymer obtained by reactions otherwise than involving only carbon to carbon unsaturated bonds
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- B01J20/30—Processes for preparing, regenerating, or reactivating
- B01J20/32—Impregnating or coating ; Solid sorbent compositions obtained from processes involving impregnating or coating
- B01J20/3214—Impregnating or coating ; Solid sorbent compositions obtained from processes involving impregnating or coating characterised by the method for obtaining this coating or impregnating
- B01J20/3217—Resulting in a chemical bond between the coating or impregnating layer and the carrier, support or substrate, e.g. a covalent bond
- B01J20/3219—Resulting in a chemical bond between the coating or impregnating layer and the carrier, support or substrate, e.g. a covalent bond involving a particular spacer or linking group, e.g. for attaching an active group
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- B01J20/00—Solid sorbent compositions or filter aid compositions; Sorbents for chromatography; Processes for preparing, regenerating or reactivating thereof
- B01J20/30—Processes for preparing, regenerating, or reactivating
- B01J20/32—Impregnating or coating ; Solid sorbent compositions obtained from processes involving impregnating or coating
- B01J20/3231—Impregnating or coating ; Solid sorbent compositions obtained from processes involving impregnating or coating characterised by the coating or impregnating layer
- B01J20/3242—Layers with a functional group, e.g. an affinity material, a ligand, a reactant or a complexing group
- B01J20/3268—Macromolecular compounds
- B01J20/3272—Polymers obtained by reactions otherwise than involving only carbon to carbon unsaturated bonds
- B01J20/3274—Proteins, nucleic acids, polysaccharides, antibodies or antigens
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08J—WORKING-UP; GENERAL PROCESSES OF COMPOUNDING; AFTER-TREATMENT NOT COVERED BY SUBCLASSES C08B, C08C, C08F, C08G or C08H
- C08J5/00—Manufacture of articles or shaped materials containing macromolecular substances
- C08J5/04—Reinforcing macromolecular compounds with loose or coherent fibrous material
- C08J5/046—Reinforcing macromolecular compounds with loose or coherent fibrous material with synthetic macromolecular fibrous material
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- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D15/00—Separating processes involving the treatment of liquids with solid sorbents; Apparatus therefor
- B01D15/08—Selective adsorption, e.g. chromatography
- B01D15/26—Selective adsorption, e.g. chromatography characterised by the separation mechanism
- B01D15/38—Selective adsorption, e.g. chromatography characterised by the separation mechanism involving specific interaction not covered by one or more of groups B01D15/265 and B01D15/30 - B01D15/36, e.g. affinity, ligand exchange or chiral chromatography
- B01D15/3804—Affinity chromatography
- B01D15/3809—Affinity chromatography of the antigen-antibody type, e.g. protein A, G or L chromatography
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- B01D69/00—Semi-permeable membranes for separation processes or apparatus characterised by their form, structure or properties; Manufacturing processes specially adapted therefor
- B01D69/08—Hollow fibre membranes
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08J—WORKING-UP; GENERAL PROCESSES OF COMPOUNDING; AFTER-TREATMENT NOT COVERED BY SUBCLASSES C08B, C08C, C08F, C08G or C08H
- C08J2305/00—Characterised by the use of polysaccharides or of their derivatives not provided for in groups C08J2301/00 or C08J2303/00
- C08J2305/12—Agar-agar; Derivatives thereof
Definitions
- the present invention relates to a chromatographic material comprising a polymer network material-based self-supporting bi-continuous separation matrix for adsorptive material separation in liquid media, and a method of producing the chromatographic material comprising a polymer network material-based self-supporting bi-continuous separation matrix.
- Chromatography is a general separation technique that uses the distribution of the molecules of interest between a stationary phase and a mobile phase for molecular separation.
- the stationary phase refers to a porous media and imbibed immobile solvent. Columns with associated end caps, fittings and tubing are the most common configuration, with the media packed into the tube or column.
- the mobile phase is pumped through the column.
- the sample is introduced at one end of the column, and the various components (target substances and contaminants) interact with the stationary phase and are adsorbed to or in the media or traverse the column at different velocities.
- the separated components are collected or detected at the other end of the column.
- Adsorbed components may be released in a separate step by pumping an eluant solvent through the column.
- Chromatographic methods include, among other methods, gel chromatography, ion exchange chromatography, hydrophobic interaction chromatography, reverse phase chromatography, affinity chromatography, immunoadsorption chromatography, lectin affinity chromatography, ion affinity chromatography and other such well-known chromatographic methods.
- Polysaccharide gels are known to play an important rote for the manufacture of materials for separation of mixtures of biomolecules. Among the characteristics making these gels especially interesting can be mentioned their inertness in contact with proteins and other biomolecules and their porous structure. A further important property is their resistance against alkaline conditions, which is of great importance in large scale separation processes requiring frequent regeneration/sterilization of the gel. Polysaccharide gels are used for various types of chromatography. One such example is gel filtration, whereby the sample constituents are size fractionated. This is an application where the inertness is of crucial importance, since any interaction between the gel material as such and the sample molecules makes the separation less effective and might even completely destroy the result.
- ion exchange chromatography Another example of a commercially important chromatographic technique is ion exchange chromatography.
- ion exchange chromatography Several materials for ion exchange chromatography are derived from dextran, agarose or cellulose.
- the choice of polysaccharide gels as the carrier matrix is based on their inertness and a well-established derivatization chemistry for the introduction of ion exchange groups.
- affinity chromatography is another example. Again, polysaccharide gels are preferred in many applications due to the number of convenient techniques available for introducing the affinity ligands and due to the minimum of unspecific binding of biomolecules.
- Polysaccharide gels may be produced in various shapes, for instance more or less regular beads like spheres, but also in the shape of membranes, etc., and can be used as a base matrix for the manufacture of chromatographic media, and as a carrier matrix in general for various biomolecules like cells, enzymes, antibodies etc.
- Polysaccharide gels typically have small diameter diffusion pores in a molecular dimension of about 10 to 500 nm, which may only be reached by components (target substances and/or contaminants) in the mobile phase via diffusion.
- a convective phase surrounds the polysaccharide gel, forming an interface between the convective phase and the diffusive gel phase.
- Polysaccharide gels are most widely used in the shape of particles of approximately 50 to 100 ⁇ m in diameter. These particles are packed into a chromatographic column where the interstitial phase between the particles forms the convective phase that allows to rapidly transport molecules through the column and to the surface of the beads, i.e. to the surface of the polysaccharide gel.
- the convective phase can also be formed by large diameter convective pores (also called “flow through pores” or “macropores") which may provide flow passages or channels, through the gel.
- the solidified polysaccharide gel forms so-called “bridges” around the large diameter convective pores.
- the small diameter diffusion pores are within said bridges formed by the solidified polysaccharide.
- Figure 1 shows a comparison of the convective and diffusional flow paths in polysaccharide particles and polysaccharide membranes.
- the correlation between large diameter convective pores and bridges is accessible through geometrical considerations.
- the bigger the large diameter convective pores become with a constant pore volume fraction (convective porosity) the bigger the bridges have to become because the bridges just represent the space between the large diameter convective pores. If there are less large diameter convective pores (bigger pores with constant volume fraction also means less pores) the space between them has to grow.
- US 5,723,601 A describes a porous polysaccharide material having two types of pores, i.e. small diameter diffusion pores and large diameter convective pores.
- porous polysaccharide materials are produced in which the convective pores have a minimum diameter of 10 ⁇ m.
- US 5,723,601 A also mentions convective pore diameters as small as 0.5 ⁇ m, it is not possible from a technical point of view to produce porous polysaccharide materials having large diameter convective pores with a diameter of less than 10 ⁇ m by the methods taught by US 5,723,601 A, since US 5,723,601 A does not describe suitable combinations of the polysaccharide concentration, the surfactant (type and concentration) and the organic solvent to produce porous polysaccharide materials having such small convective pores. In particular, US 5,723,601 A teaches that smaller convective pores can be obtained in case of using a smaller surfactant concentration at a higher stirrer speed.
- the minimum convective pore diameter that can be obtained for convective pores which are interconnected is about 6.5 ⁇ m.
- the obtained pore structure is not an interconnected pore structure, but a closed-cell foam structure, which will be demonstrated hereinafter.
- Foams consist of partially more or less connected globular structures as convective phase (macropores) between the diffusive phase, i.e. the macropores are not interconnected.
- US 7,479,233 B2 describes a porous coated medium for adsorption or chromatography based separations comprising a base substrate, the base substrate being a porous non-woven fabric, self-supporting structure, and one or more porous coatings being formed of a polysaccharide on at least a portion of all surfaces of the substrate.
- the inert substrate is first coated with a polysaccharide layer, and then the coated substrate is subjected to a gelling agent such that the polysaccharide forms a porous hydrogel coating. Due to this specific production method (coating and afterwards gelling), the inert substrate constitutes the structure of the porous hydrogel coating, i.e.
- the pore structure of the hydrogel coating follows the pore structure of the inert substrate. Since the presence of a large amount of inert substrate is needed as a support for the porous coating (which acts as the chromatography medium for binding target compounds and/or contaminants), the possible amount of porous binding phase is massively restricted, and the possible binding capacity of the adsorption medium is negatively affected.
- US 8,298,657 B2 describes a functional, porous, interpenetrating polymer network (IPN) including a first polymer network in the form of a porogenic support fabric composed of linear polymers in the form of a pre-formed network comprising nonwoven fibers, and a second polymer network synthesized, gelated, and/or cross-linked in the presence of the first polymer network.
- IPN interpenetrating polymer network
- a portion of the fibers of the first polymer network are removed to form pores that are substantially cylindrical in shape since the removed fibers have a minimum length of about 1.0 millimeter.
- the mandatory presence of fleece fibers also limits the maximum possible amount of binding polymer and has a negative effect on the binding capacity.
- the use of non-woven fibers to dissolve them as a process for forming cylindrical pores causes a significantly higher tortuosity which, as a person skilled in the art knows, results in tower permeability at comparable pore size diameters.
- US 2011/0120947 A1 describes a crosslinked cellulose hydrate membrane used for chromatography processes, the crosslinked cellulose hydrate membrane having a porous double structure consisting of "micropores" and "ultrapores".
- the membrane of US 2011/0120947 A1 mandatorily consists of cellulose acetate which, in the manufacturing process, leads through swelling and saponification of this material to a material that has convective and diffusive components.
- these materials consisting of regenerated cellulose are not self-gelling materials or phases that are constituted by self-gelling materials, and the diffusive pores that are present in such materials are very small and difficult to control.
- US 7,316,919 B2 describes a composite material of a porous support and a non-self supporting crosslinked gel derived from a radical polymerization reaction that contains "macropores" between 10 and 3000 nm and is located inside the pores of the support structure.
- these materials are limited in their maximum gel porosity and convective porosity.
- the porosity and pore size distribution in the composite material is hard to control both due to the nature of synthetic polymer gels.
- the presence of a support material significantly reduces the number of binding polymers, thereby massively impairing both permeability and possible binding capacity of such composite materials.
- the technical problem underlying the present invention is to provide a chromatographic material with which chromatographic processes can be carried out more quickly and more efficiently, as well as to provide a method of producing said chromatographic material.
- the solution to the above technical problem is achieved by providing the embodiments characterized in the claims.
- a chromatographic material comprising a polymer network material-based self-supporting bi-continuous separation matrix comprising a first continuous phase and a second continuous phase, the chromatographic material optionally comprising a third inert phase, wherein the first continuous phase is a portion of the matrix which is formed by a self-gelled polysaccharide and wherein the second continuous phase is a portion of the matrix which defines non-cylindrical large diameter continuously connected convective pores in-between the first continuous phase, wherein the large diameter continuously connected convective pores have a median pore diameter of from 0.1 ⁇ m to 6.0 ⁇ m, and wherein the third inert phase does not constitute the structure of the second continuous phase.
- the chromatographic material of the present invention comprises a separation matrix which is a self-supporting separation matrix.
- self-supporting separation matrix means that the separation matrix, due to its continuous connected gel structure, is inherently dimensionally stable, and can be generated and handled without the need of an inert substrate as a supporting substrate. This does not exclude the possibility to introduce a third inert phase as a reinforcing substrate if needed for further enhanced mechanical strength or elevated ease of handling or integration into a chromatographic device.
- the self-supporting matrix of the chromatographic material of the present invention has a bi-continuous structure.
- the expressions "bi-continuous” or “bicontinuous” mean that the separation matrix has a structure which comprises two voluminous (mostly) continuous phases that penetrate each other and are each (mostly) continuous (interconnected) in themselves.
- at least 90%, preferably at least 95%, and more preferably at least 98% of the volume elements within a (mostly) continuous phase can be reached from any point within this voluminous phase without leaving this phase.
- every volume element within a continuous phase can be reached from any point within this voluminous phase without leaving this phase.
- the first continuous phase of the separation matrix of the chromatographic material of the present invention is a portion of the matrix which is formed by a self-gelled polysaccharide, i.e. the first continuous phase comprises at least 90% of a self-gelled polysaccharide, preferably at least 95%, more preferably at least 98%, and more preferably at least 99%.
- the first continuous phase comprises 100% of a self-gelled polysaccharide, i.e. the first continuous phase consists of a self-gelled polysaccharide.
- the first continuous phase typically has small diameter diffusion pores in a molecular dimension of about 10 to 500 nm.
- the first phase is (mostly) continuously connected, i.e.
- At least 90%, preferably at least 95%, and more preferably at least 98% of the volume elements within the first phase can be reached from any point within the first phase without leaving the first phase.
- every volume element within the first phase can be reached from any point within the first phase without leaving the first phase.
- gelling is the process in which a polymer solution, particularly a polysaccharide solution, solidifies and therefore forms a polymer gel in which a solvent (such as e.g. water or glycerin) is filling the porous space inside the polymer gel.
- a solvent such as e.g. water or glycerin
- the solvent may improve the (storage) stability of the gel.
- no external or additional polymer or monomer or cross linker has to be involved to form the physical or covalent bonds that are leading to the polymer/polysaccharide gel formation.
- the self-gelled polysaccharide (having small diameter diffusion pores) is porous, i.e. the polysaccharide has at least 20% porosity.
- the pores within the self-gelled polysaccharide are small diameter diffusion pores typical to polysaccharide gels.
- the self-gelling/self- gelled polysaccharide is one or more selected from the group consisting of agarose, agar, agaropectin, kappa-carrageenan, iota-carrageenan, lambda-carrageenan, gellan gum, amylose, curdlan, alginate and rhamsan gum.
- These self-gelling/self-gelled polysaccharides advantageously allow to form a separation matrix having small pores and large pores, i.e. a structure having small diameter diffusion pores and large diameter convective pores (double porous structure), by using a single emulsion during preparation.
- said hydrophilic polysaccharides exhibit low non-specific binding.
- the self-gelling/self-gelled porous polysaccharide is agarose.
- the second continuous phase of the separation matrix of the chromatographic material of the present invention is a portion of the matrix which defines non-cylindrical large diameter continuously connected convective pores in-between the first continuous phase.
- the non-cylindrical large diameter convective pores are (mostly) continuously connected (interconnected), i.e. at least 90%, preferably at least 95%, and more preferably at least 98% of the pores of the non-cylindrical large diameter convective pores can be reached from any point of another pore of the non-cylindrical large diameter convective pores by moving only through non-cylindrical large diameter convective pores.
- any pore of the non-cylindrical large diameter convective pores can be reached from any point of another pore of the non-cylindrical large diameter convective pores by moving only through non-cylindrical large diameter convective pores.
- the non-cylindrical large diameter convective pores are in-between the first continuous phase (the self-gelled polysaccharide), i.e. the self-gelled polysaccharide forms porous gel bridges around the non-cylindrical large diameter convective pores.
- Said large diameter convective pores are non-cylindrical, i.e. said pores are substantially spherical wherein parts of the substantially spherical pores typically overlap in order to form a continuous convective pore structure.
- the non-cylindrical large diameter continuously connected convective pores have a median pore diameter of from 0.1 ⁇ m to 6.0 ⁇ m.
- a median pore diameter of from 0.1 ⁇ m to 6.0 ⁇ m.
- the median pore diameter may e.g. be determined as the median value of all pore data from the method in the scientific publication of Ley et.
- the median pore diameter is from 0.5 ⁇ m to 5.0 ⁇ m, most preferred from 1.0 ⁇ m to 3.0 ⁇ m. Since the non-cylindrical continuously connected large diameter convective pores have a median pore diameter within the above range, the diffusive path length is also small (cf. Figure 4) and the small diameter diffusive pores within the porous bridges are accessible within very short diffusion times, advantageously allowing to operate chromatographic processes very quickly and efficiently.
- the separation matrix of the chromatographic material of the present invention is a self-supporting inherently stable separation matrix
- the chromatographic material of the present invention may also optionally comprise a third inert phase as a reinforcing material to even more strengthen the chromatographic material against external stresses such as pressure or damaging radiation.
- a third inert phase is present as a reinforcing material, the third inert phase does not constitute the structure of the second continuous phase of the separation matrix.
- the third inert phase is randomly distributed in the polymer network material-based self- supporting bi-continuous separation matrix independently from the structure of the second continuous phase, and the pore structure of the second continuous phase does not follow the structure of the inert phase like in the chromatographic materials described in US 7,479,233 B2.
- the third inert phase as an additional reinforcing material for the separation matrix in the chromatographic material of the present invention may facilitate production and use of the chromatography material due to increasing the stability of the separation matrix.
- the third inert phase acting as a reinforcing material is not particularly limited and may e.g. be fleece materials or nonwovens (drylaid, wetlaid, spunlaid, meltblown), wovens, fabrics, mesh fabrics, open cell foams, reticulated foams or other permeable porous materials.
- Commercially available reinforcing materials are e.g. nonwoven Novatexx 2465 from Freudenberg; nonwoven Reemay 2016 from Berry, and mesh fabric Sefar 07-200/35.
- the chromatographic material additionally comprising a third inert phase has a ratio of the volume of the third inert phase to the total volume of the chromatographic material including the third inert phase of from 0.03 to 0.60, more preferred of from 0.05 to 0.40, most preferred of from 0.08 to 0.25.
- the "volume of the third inert phase" (V) is the volume that is taken by the third inert phase.
- the "total volume of the chromatographic material including the third inert phase” is the total volume of the physical dimensions of the chromatographic material including the third inert phase volume and the volume of the two continuous phases. Said total volume can be determined by measuring the outer dimensions like diameter and thickness of the chromatographic material, depending on its macroscopic appearance. If the aforementioned volume ratio is below the above range, the stability enhancing effect of the third inert phase acting as reinforcing material may be diminished. If the aforementioned volume ratio is above the aforementioned range, the binding capacity and the permeability of the chromatographic material will be diminished.
- the third inert phase acting as a reinforcing material preferably has one or more of the following properties:
- base stability i.e. the reinforcing material resists 0.1 N NaOH for at least 5 h, more preferably for at least 24 h, without significant degradation or toss of functionality;
- the reinforcing material resists at least 10 kGy, more preferably 25 kGy, most preferably 50 kGy, without significant degradation or loss of functionality;
- a tensile strength > 5.2 MPa, preferred > 6,8 MPa
- Tests are performed using a 2.5 kN testing machine (ZWICK & ROLL). The temperature during measurements is 20 °C/room temperature.
- Tensile specimen are 150 mm tong, 20 mm wide. Each specimen is placed centrally in the testing machine’s specimen mounts. Pulling speed for all measurements is 50 mm/min. The value tensile strength is defined as the highest tensile strength at sample break (Rm).);
- the processability (rinsing, impregnation, drying of roll material) in the x/y direction of the separation matrix can be advantageously increased since the force absorption without significant length change (elongation) in the pull direction for possible production/mpdification processes (weaving processes) can be increased when compared to an embodiment without reinforcing material.
- the choice of material of the reinforcing material e.g. a thermoplastic resin
- the manufacturability of an integrated chromatography device can be improved by an additional reinforcing material.
- the median bridge diameter of the first continuous phase is from 0.4 to 4 times larger than the median pore diameter of the non-cylindrical large diameter continuously connected convective pores.
- the median bridge diameter is defined as the median value of all pore data from the method in scientific publication Ley et. al, Journal of Membrane Science, Volume 564, 2018, Pages 543-551 , when the phases for the binary structure where inverted (1 goes 0 and vice versa) (cf. Pages 546-548 thereof).
- the median bridge diameter of the first continuous phase is from 1 to 3 times larger than the median pore diameter of the non-cylindrical large diameter continuously connected convective pores, more preferably from 1 to 2 times larger. A ratio outside of the above range may negatively affect the surface accessibility, and thus also the binding or process time.
- the convective porosity £ is from 0.05 to 0.7, more preferred from 0.05 to 0.5, and most preferred from 0.1 to 0.4.
- the convective porosity E can be determined by inverse size exclusion chromatography as known by a person skilled in the art and shown exemplary in a modified form in Guan, Hong & Guiochon, Georges (1996) "Study of physico-chemical properties of some packing materials" (Journal of Chromatography A - J CHROMATOGR A. 731. 27-40.
- the total volume of the first and second continuous phase refers to the sum of the volume of the first phase and the volume of the second phase, without taking an optional inert third phase (and its volume) in the chromatographic material of the present invention into account. If the convective porosity is smaller than the above-defined range, the permeability of the chromatographic material may decrease due to the presence of a larger amount of polysaccharide material in the chromatographic material. If the convective porosity is larger than the above-defined range, the binding capacity of the chromatographic material may decrease due to the presence of a smaller amount of polysaccharide material in the chromatographic material.
- the chromatographic material of the present invention has a permeability of at least 0.31 X(EX100) mD (milliDarcy), more preferred at least 1 .52X(EX100) mD and most preferred at least 3.1 x(exi00) mD, wherein E is the convective porosity as defined above. Accordingly, when the convective porosity E is 0.33 (i.e. a convective porosity of 33%), the chromatographic material of the present invention preferably has a permeability of at least 10.2 mD, more preferably at least 50.2 mD, and most preferably at least 102 mD.
- the permeability strongly depends on the convective porosity E. This is accessible through geometrical considerations. At constant median pore diameter and a higher convective porosity, a higher number of pores has to be present and therefore a higher volume flow at constant pressure. For smaller convective porosities vice versa.
- the permeability may e.g. be determined as described in scientific publication Ley et. al, Journal of Membrane Science, Volume 564, 2018, Pages 543-551 (page 547: description; page 545: measurement). The higher the permeability is, the smaller the required process pressure in chromatographic processes using the chromatographic material is. This advantageously allows greater column lengths and greater bed heights in chromatographic processes and therefore tower axial dispersion.
- the coefficient of variance of the median pore diameter of the non-cylindrical large diameter continuously connected convective pores is at most 0.8, more preferred at most 0.7.
- the coefficient of variance of the median pore diameter is the standard deviation of the median pore diameter divided by the mean value of the median pore diameter.
- the "standard deviation" of the median pore diameter may be determined by using the Microsoft Excel function "STABW.N" which calculates the standard deviation based on a population specified as arguments (logical values and text are ignored).
- the standard deviation is a measure of the dispersion of values with respect to their mean (the mean).
- the performance of the chromatographic material in a chromatographic process may decrease, i.e. earlier breakthrough curves, broader elution peaks and smaller chromatographic resolution may occur.
- the coefficient of variance of the median bridge diameter of the first continuous phase is at most 0.7, more preferred at most 0.6.
- the coefficient of variance of the median bridge diameter is the standard deviation of the median bridge diameter divided by the mean value of the median bridge diameter.
- the standard deviation of the median bridge diameter is determined analogously to the method described above for the standard deviation of the median pore diameter. If the coefficient of variance of the median bridge diameter of the first continuous phase is higher than the above maximum, it may occur that the binding sites of the separation matrix cannot be fully utilized, leading to earlier breakthrough and broader elution peaks in chromatographic processes.
- the separation matrix of the chromatographic material of the present invention has a specific interface between the first and the second continuous phases of at least 0.04 m 2 /mL (wherein the volume mL refers to the separation matrix volume without the optional third inert phase/reinforcing material), more preferred more than 0.1 m 2 /mL and most preferred more than 0.2 m 2 /mL.
- the specific interface between the first and the second continuous phases can be determined by the following equation if the tortuosity is 2.5.
- tortuosity is different from this exemplary but typical tortuosity than the permeability changes by a factor that the then observed tortuosity differs from 2.5 to higher permeabilities (for tower tortuosities) or lower permeabilities (for higher tortuosities) like it is known to a person skilled in the art and given in the following equation (cf. also the scientific publication Berg et. al, Transport in Porous Media, 2014, Page 10, https://arxiv.org/pdf/1505.02424.pdf).
- the interface for the transition into the small diameter diffusion pores may be too small such that less components (target substances and/or contaminants) may diffuse into the first continuous phase. Accordingly, the mass transport and thus the binding capacity may be limited while the diffusion time remains the same, leading to either smaller binding capacity or longer process times.
- the shape of the chromatographic material, independent of the presence of the optional third inert phase, is not particularly limited. Accordingly, the chromatographic material may be e.g. in the shape of a flat sheet (membrane) or hollowfibre membrane, monolith or particles.
- a further aspect of the present invention relates to a method of producing the chromatographic material of the present invention.
- Each of the embodiments described above also applies for the chromatographic material produced by the method of the present invention.
- a method of producing the chromatographic material comprising a polymer network material-based self-supporting bi-continuous separation matrix of the present invention, wherein the first continuous phase is formed by a selfgelled polysaccharide, the method comprising the steps of:
- a solution (A) comprising a selfgelling polysaccharide and a first solvent is prepared.
- the first solvent is not particularly limited and every solvent in which the self-gelling polysaccharide is soluble (at room temperature or at elevated temperature) can be used.
- the first solvent may also be a mixture of two or more of such solvents.
- the first solvent is water.
- Solution (A) may be prepared by stirring and heating the self-gelling polysaccharide and the first solvent (to e.g.
- the concentration of the self-gelling polysaccharide is not particularly limited. According to a preferred embodiment, the concentration of the polysaccharide in solution (A) is from 0.5 to 8 wt%, preferably from 1 to 6 wt%, and most preferably from 2.5 to 5 wt%. If the concentration is below the above range, the gelling ability of the self-gelling polysaccharide may not be sufficient, which may lead to deterioration of the stability of the polysaccharide gel. If the concentration is above the aforementioned range, unwanted size exclusion of a target component to be bound in a chromatography process and/or exceedingly low diffusive mass transfer into the gel may occur.
- a solution (B) comprising at least one surfactant and a second solvent which is an immiscible solvent to solution (A) is prepared.
- immiscible means that the solubility of a solvent in another solvent is less than 100 g/L at 70 °C, preferably less than 50 g/L at 70 °C, and most preferably less than 10 g/L at 70 °C.
- the second solvent may be a single solvent or a mixture of two or more solvents. At least one solvent of the second solvent is an immiscible solvent to solution (A).
- the second solvent is one or more selected from C4-12 alcohols (e.g. 1 -hexanol, 2-heptanol, 1 -octanol, 1- nonanol, 1 -decanol, 1 -dodecanol), C4-12 isoalcohols, alkanes (e.g.
- octane and decane silicone oils having a viscosity of from 4 to 200 cP, and natural oils having a viscosity of from 4 to 200 cP, or mixtures thereof.
- Silicone oils may e.g. be polydimethylsiloxanes (e.g. Silicone oil 20 cP from Wacker).
- Natural oils may e.g. be olive oil, sunflower oil or rapeseed oil.
- Particularly preferred embodiments of the second solvent are octane, decane, 1 -octanol, 1 -decanol and 1 -dodecanol.
- the most preferred second solvent is decanol, particularly 1 -decanol.
- Solution (B) may be e.g.
- the at least one surfactant has an HLB value of from 8 to 16, preferably of from 10 to 14, and most preferably of from 11 to 13.
- the HLB (hydrophilic-lipophilic balance) of a surfactant is a measure of the degree to which it is hydrophilic or lipophilic, determined by calculating values for the different regions of the molecule, as described by Griffin ("Classification of Surface-Active Agents by 'HLB'", Journal of the Society of Cosmetic Chemists, 1949, 1 (5): 311-26); and "Calculation of HLB Values of Non-lonic Surfactants", Journal of the Society of Cosmetic Chemists, 1954, 5 (4): 249-56) and Davies ("A quantitative kinetic theory of emulsion type, I.
- HLB values of mixtures are determined by the mass fraction like e.g. in the following formula for a mixture of 2 surfactants where m is the mass of the surfactant used and HLB is the tabulated or calculated HLB value for the specific surfactant.
- the HLB value is an independent parameter with respect to the volume of the polysaccharide phase (first continuous phase) and the polysaccharide concentration. If the volume ratio of the two continuous phases (first continuous phase and second continuous phase) is used to control the pore size, it also changes the convective porosity and consequently also the permeability. If the polysaccharide concentration is used to control the pore size of the second continuous phase (pore phase), the first continuous phase (polysaccharide phase / diffusive phase) is also changed.
- the convective pores become larger and, at the same time, the diffusive pores become smaller which may lead to exclusion of larger molecules and reduced diffusive mass transport.
- the convective pores become smaller and the diffusive pores become larger, which improves mass transport but also reduces the surface area for possible binding of target components to the separation matrix in a chromatography process.
- the HLB-value of the at least one surfactant is preferably within the above HLB-value range, and the at least one surfactant is further capable of generating a bi-continuous structure.
- the use of at least one surfactant preferably yields an interfacial tension between both liquid phases in an emulsion of at most 1 mN/m, and is preferably non-ionic. Surface tensions between two phases were measured with a goniometer OCA 15Pro and the pendant drop method.
- phase A exemplary water, but all other solutions and mixtures are possible
- phase B exemplary any organic solvent that is immiscible with water, but all other solutions and mixture of liquids are possible.
- a droplet of phase A was dispensed in phase B, either by volume, e.g. 10 pL, or continuously with a dispense rate of e.g. 1 pL/s, and recorded with a camera placed 90° to the needle. From the curvature of the droplets and the diameter of the needle, surface tensions between phases A and B were calculated with the software SCA 22 ⁇ — surface/interfacial tension from Dataphysics Instruments (cf. F. K. Hansen, G. Rodsrud, Surface Tension by Pendant Drop, Journal of Colloid and Interface Science, Vol. 141 , No. 1 , 1991 ).
- Preferred surfactants are polysorbates and/or C2-150 fatty acid esters of sorbitol, such as e.g. commercially available Tween 20/60/80 (Tween 20: polyoxyethylene sorbitan mono-laurate; Tween 80: polyoxyethylene sorbitan mono-oleate) or Span 20/60/80/85.
- Tween 20 polyoxyethylene sorbitan mono-laurate
- Tween 80 polyoxyethylene sorbitan mono-oleate
- Span 20/60/80/85 e.g. commercially available Tween 20/60/80
- one single surfactant or a combination of two or more surfactants may be used.
- two different surfactants are used in combination.
- a minimum surfactant concentration has to be used depending on the used organic solvent and on the polysaccharide concentration.
- the preferred amount of surfactant is calculated by the formula given below and describes only the percentage of surfactant that is at least present in solution (B), and the preferred amount is at least 2.5 vol% for 1 -dodecanol, at least 4.5 vol% for 1 -decanol, at least 7.5 vol% for 1 -nonanol, at least 7.5 vol% for 1 -octanol, at least 15 vol% for 1 -hexanol, at least 7.5 vol% for 2-heptanol, at least 2 vol% for cyclohexane, at least 3 vol% for octane, at least 2.5 vol% for decane, and at least 7 vol% for silicone oil (PDMS).
- This surfactant concentration is hereby calculated in dependence on the total amount of organic phase used by be following equation. The higher the total amount of organic phase the higher the
- the above surfactant concentrations are particularly preferably used in case the concentration of the polysaccharide in solution (A) is from 2.5 to 5 wt%.
- step (c) of the method of the present invention solution (A) and solution (B) are combined to produce a combined solution (C).
- Step (c) may be carried out at room temperature or at elevated temperature, such as e.g. 30 °C or more, 35 °C or more, 40 °C or more, or 50 °C or more.
- the volume ratio of the second solvent in the combined solution (C) in step (c) is from 10 to 70 vol% since in this range a suitable emulsion can be generated in step (d) of the present invention.
- step (d) of the method of the present invention the combined solution (C) is emulsified at a condition to allow the self-gelling polysaccharide to remain in solution in the first solvent as solution (A) to obtain an emulsion which is in form of a solution (B)-in-solution (A)-emulsion.
- step (d) is carried out by exposing the combined solution (C) to a shear force by (vigorously) stirring, dispersing or homogenising, e.g.
- Turrax Specification T25 digital ULTRA-TURRAX®, Model T25D, Firms IKA (at 10.000 to 20.000 rpm) or EUROSTAR 40 digital from IKA with a dispersing disk of type R1303 Dissolver Stirrer (at 1.000 rpm to 2.000 rpm). Vigorously stirring, dispersing or homogenising advantageously enables to generate non-cylindrical large diameter continuously connected convective pores having a median pore diameter of from 0.1 ⁇ m to 6 ⁇ m.
- step (e) of the method of the present invention solution (A) containing the self-gelling polysaccharide is allowed to solidify by gelation at a certain condition to form the chromatographic material which comprises the separation matrix comprising the selfgelled polysaccharide as the first continuous phase. Allowing the self-gelling polysaccharide to solidify by gelation at a certain condition, is e.g. realized by cooling the solution (B)-in-solution (A)-emulsion to a temperature below the gelling temperature of the polysaccharide, e.g. cooling to at most 45 °C, at most 40 °C, at most 35 °C, at most 30 °C or at most 25°C.
- step (e) is performed by pouring the emulsion on a casting form and cooling the emulsion below the gelling point.
- a "casting form" is any surface onto which the emulsion can be given/poured to solidify, and preferably this surface is a metal surface that can be cooled down quickly, and most preferably this surface is heatable and coolable in a range of from 0 °C to 100 °C.
- the cooling rate is not particularly limited, and usually a cooling rate of from 0.01 °C/sec to 50 °C/sec is used. According to a preferred embodiment of the present invention, the cooling rate is from 0.2 °C/sec to 30 °C/sec, particularly preferred from 1 °C/sec to 20 °C/sec.
- the third inert phase is preferably present in step (e) of the method of the present invention to introduce the third inert phase (randomly) into the separation matrix. That is, it is preferred that the solution (B)-in-solution (A)- emulsion of step (d) is poured onto a reinforcing material (third inert phase) in step (e) and the solution (A) is allowed to solidify by gelation in the presence of the third inert phase.
- the self-gelling polysaccharide is agarose
- the method comprises the steps of:
- solution (e) containing the self-gelling agarose to solidify by gelation at a temperature below the gelation temperature of the used agarose (e.g. below 35°C) to form the chromatographic material which comprises the separation matrix comprising the self-gelled agarose as the first continuous phase.
- the separation matrix may optionally be modified by introducing functional groups and/or ligands such as e.g. anionic ligands, cationic ligands, hydrophobic ligands, mixed mode ligands (for example two or more functionalities like e.g. cationic and hydrophobic), affinity ligands, etc.
- functional groups and/or ligands such as e.g. anionic ligands, cationic ligands, hydrophobic ligands, mixed mode ligands (for example two or more functionalities like e.g. cationic and hydrophobic), affinity ligands, etc.
- a chromatographic material comprising a polymer network material-based self- supporting bi-continuous separation matrix having both diffusion pores and convective pores, the convective pores having a very small size when compared to separation matrices known in the prior art.
- the diffusive path length is also rather small and the diffusive pores within the porous bridges of the separation matrix are accessible within very short diffusion times.
- the chromatographic material of the present invention shows, compared to purely convective matrices, a high permeability due to its specific structure, thus leading to a smaller process pressure when using the chromatographic material in chromatographic processes. This advantageously allows longer column lengths in chromatographic processes und lower axial dispersion.
- the chromatographic material of the present invention advantageously shows a lower fouling propensity when compared to state-of-the-art materials.
- the chromatographic material of the present invention advantageously allows to operate chromatographic processes very quickly and efficiently by excellent accessibility of the binding sites, late breakthrough curves and narrow elution peaks, and thus the separation matrix of the present invention is particularly suited for diffusion limited processes that need high binding capacities, as e.g. observed in bind and elute applications of large proteins, virus particles and the like.
- Figure 1 shows a comparison of the convective and diffusional flow paths in polysaccharide particles and polysaccharide membranes.
- Figure 5 shows a device for determining DBC 10%.
- FIG. 9 shows DBC 10% in dependence of the residence time (Example 8).
- Figure IQ shows a comparison of DBC 10% of the inventive chromatographic material and state-of-the-art materials as a function of the residence time (Example 8). shows the trans-device pressure during cycling with different cleaning strategies (load: mAb in clarified cell culture at an mAb concentration of 2.8 mg/mL) (Example 9). shows overlayed chromatograms of a single bind & elute cycle for three different chromatography modules (Example 10). Figure 13 shows an overlay of 200 cycles with mAb A, UV signal at 280 nm (Example 8).
- Figure 14 shows an overlay of 200 cycles with mAb B, UV signal at 280 nm (Example 11).
- Figure 15 shows an overlay of 200 cycles with mAb C, UV signal at 280 nm (Example 11).
- Figure 16 shows an overlay of 200 cycles with mAb A, delta pressure [MPa] (Example
- Figure 17 shows an overlay of 200 cycles with mAb B, delta pressure [MPa] (Example 11).
- Figure 18 shows an overlay of 200 cycles with mAb C, delta pressure [MPa] (Example 11).
- Figure 19 shows the yield vs. cycle number for mAbs A, B and C (Example 11 ).
- Figure 20 shows the HCP removal vs. cycle number for mAbs A, B and C (Example 11). shows the DNA removal vs. cycle number for mAbs A, B and C (Example 11).
- Figure 22 shows the ProA ligand teaching vs. cycle number for mAbs A, B and C (Example 11). shows the elution peak width vs. cycle number for mAbs A, B and C
- FIG. 24 shows the pool concentration vs. cycle number for mAbs A, B and C (Example 11 ).
- Figure 25 shows the aggregate concentration vs. cycle number for mAbs A, B and C (Example 11 ).
- Figure 26 shows the breakthrough behavior of an inventive 3-layer and 12-layer chromatographic device (Example 12).
- Figure 27 shows the elution peak shape of an inventive 3-layer and 12-layer chromatographic device (Example 12).
- Figure 28 shows DBG 10% results as a function of the residence time for CIEX materials (Example 13).
- Figure 29 shows DBC 10% results as a function of the residence time for MM materials (Example 13).
- a self-gelling polysaccharide solution (e.g. 3% agarose in water) was prepared and stored at elevated temperature (e.g. 95 °C) until dissolved completely.
- Decanol e.g. 27.39 g
- Tween80 e.g. 2.48 g
- Span80 e.g. 0.98 g
- the above self-gelling polysaccharide solution e.g. agarose solution in an amount of 63.72 g
- the emulsion was rigorously stirred with an Ultraturrax (preferably) at 20.000 rpm and 70-75 °C for 10 min.
- the emulsion was rigorously stirred with an EUROSTAR 40 digital from IKA with a dispersing disk of type R1303 Dissolver Stirrer (preferably at 2.000 rpm).
- the temperature was observed during the emulsion process and the water tub cooled or warmed if needed to keep the emulsion temperature constant.
- the casting platform was prepared.
- optional a sheet of fleece (third inert phase) acting as a reinforcing material was taped at both ends of the casting platform which was tempered at 40 °C by a stream of warm water from below.
- the same process also works without third inert phase (reinforcing material / fleece).
- the emulsion was poured onto the one end of the casting platform (in presence of fleece on the top of the fleece) and was spread with a scraper to obtain a layer of emulsion with a width of e.g. 300 ⁇ m.
- the casting platform was immediately cooled down to 15 °C using cold tap water from below. By this, gelation of the agarose was induced. After waiting for 1 to 2 minutes, the emulsion became a firm film (optional atached to the fleece).
- the membrane with or without reinforcing material / fleece was removed carefully from the casting platform and placed into a tub with running water to wash out the organic phase.
- Ligand immobilization for an affinity ligand was carried out in a two-step process.
- the activation is carried out with a bisoxirane molecule in case the matrix has functional groups that reacts with oxirane so that at least one oxirane group of the bisoxirane reacts with the matrix.
- the so created unreacted oxiranes on the matrix surface are then available for further surface chemistry.
- the second step is carried out by adding the ligand to the activated matrix which has at least one reactive side with respect to the oxirane.
- Example 1 Preparation and characterization of chromatographic materials according to the present invention and of the prior art
- chromatographic material Sample Nos. 1 to 33 were prepared under the conditions indicated in Table 1.
- the affinity ligand was introduced by dissolving the used protein A Ligand in 1 M KPI buffer with 10 mg/mL in concentration at pH 7. After preparing this coupling solution the separation matrix was inserted in this coupling solution at room temperature for at least 16h. After this, the separation matrix was washed with 0.1 M 1xPBS buffer at pH 7 and stored in this until usage.
- Protein A Material BCA assay, Literature: C. M. Stoscheck: Quantitation of protein. In: Methods in enzymology. Band 182, 1990, S. 50-68, PMID 2314256 IEX Material: Titration with e.g. NaOH or HCI as known to persons skilled in the art.
- the SBC value is measured by a 12h incubation of the target molecule in binding buffer conditions and an elution step after washing in elution condition buffer for the target molecule for at least 1 h.
- the concentration in the elution buffer is measured by UV-Vis at 280 nm within a calibration curve measured prior to the SBC measurement.
- DBC 10% (Dynamic binding capacity at 10% breakthrough): The DBC 10% is measured with an Akta Avant150 chromatography System from GE-Healthcare®. At first the described material is placed into an in-house measurement device (LP15, Figure 5) and connected to the Akta Avant150 via luer-lock. Then at least 20 separation-matrix volumes (MV) of binding buffer were purged through the separation matrix. Then binding buffer with solved target protein (1 mg/mL) is purged through the separation matrix until 10% of the concentration of the initial target protein solution is reached (0,1 mg/mL). This until then purged volume in mL is due to the concentration of 1 mg/mL equivalent with the mass in mg and gives the DBC 10% by dividing by the separation matrix volume to derive the DBC 10% in mg/mL.
- MV separation-matrix volumes
- DBC 100% (Dynamic binding capacity at 100% breakthrough): The DBC 100% is measured with an Akta Avant150 chromatography System from GE-Healthcare®. At first the described material is placed into an in-house measurement device (LP15, Figure 5) and connected to the Akta Avant150 via luer-lock. Then at least 20 separation-matrix volumes (MV) of binding buffer were purged through the separation matrix. Then binding buffer with solved target protein (1 mg/mL) is purged through the separation matrix until 100% of the concentration of the initial target protein solution is reached (1 mg/mL). The area under the so derived breakthrough curve can then be integrated and the DBC 100% can then be determined by the measured area, the needed volume to reach 100% of the initial concentration and the separation matrix volume in mg/mL.
- MV separation-matrix volumes
- Sample Nos. 1 to 15 are chromatographic materials prepared in accordance with the reaction conditions (process parameters) described in US 5,723,601 A.
- Sample Nos. 1 to 10 are bi-continuous separation matrices, but the non-cylindrical large diameter continuously connected convective pores of each of the separation matrices have a median pore diameter of more than 6 ⁇ m.
- less surfactant at constant polysaccharide concentration leads to smaller pore diameters of the convective pores.
- Sample Nos. 11 to 15 in which the concentration of the surfactant falls under a certain threshold, a foam structure is obtained instead of a bi-continuous structure.
- the foams consist of partially more or less connected globular structures as convective phase (macropores) between the diffusive phase, i.e. the macropores are not interconnected.
- the inherently resulting poorer connectivity results in structures with a very low permeability at comparable pore size (i.e. the median diameter of the convective pores), since there is no through flow via these pores.
- Figure 2 shows the relationship between the permeability and the median diameter of the convective pores for bi-continuous and foam structures.
- foam structures can only be traversed in a very inhomogeneous and inadequate manner, which results in disadvantages in the homogeneous distribution of fluid in the chromatographic medium and, in addition to the tower permeability, disadvantages in the dynamic binding due to inhomogeneous flow and thus inhomogeneous binding site accessibility.
- Figure 3 shows the relationship of the median pore diameter and the used surfactant concentration in the preparation of chromatographic materials in accordance with the reaction conditions (process parameters) described in US 5,723,601 A.
- Sample Nos. 16 to 27 are chromatographic materials according to the present invention, comprising bi-continuous separation matrices with non-cylindrical large diameter continuously connected convective pores having a median pore diameter of from 0.1 ⁇ m to 6 ⁇ m.
- the separation matrices show an excellent permeability, particularly when compared to the foams of Sample Nos. 11 to 15 which have similar median pore diameters of the convective pores.
- the chromatographic material of the present invention has excellent accessibility of the binding sites and dynamic binding capacity at 10% breakthrough.
- Sample Nos. 28 to 33 are chromatographic materials prepared as Comparative Examples, in which the same solvent as in (inventive) Sample Nos. 16 to 20 and 27 was used, but the concentration of surfactant used in the preparation has been lowered below a certain threshold such that foam structures are formed.
- Sample Nos. 28 to 33 have convective pores having a median pore diameter similar to Sample Nos. 16 to 27, but the convective pores of foam structure Sample Nos. 28 to 33 are not continuously connected (interconnected) like the convective pores of Sample Nos. 16 to 27. Accordingly, when comparing the foam structures of Sample Nos. 28 to 33 with the bi-continuous structures of Sample Nos. 16 to 27, the foam structures show a reduced permeability at comparable convective pore diameters. Moreover, the foam structures of Samples Nos. 30 to 33 show an inferior dynamic binding capacity at 10% breakthrough when compared with the bi-continuous structures of Sample Nos. 18 to 27.
- Example 2 Relationship between the mean bridge diameter and the mean pore diameter of the large diameter convective pores
- Separation matrices comprising a self-gelled porous polysaccharide as the first continuous phase were prepared and analyzed with respect to their mean bridge diameter and mean pore diameter of the large diameter convective pores.
- the results are depicted in Figure 4, which clearly shows the proportionality of the mean bridge diameter and the mean pore diameter of the large diameter convective pores.
- the bigger the large diameter convective pores become with a constant pore volume fraction (convective porosity) the bigger the bridges become because the bridges just represent the space between the large diameter convective pores.
- LP15 flat sheet materials inside a device like shown in Figure 5
- Example 4 Relationship between DBC 10% of separation matrices and their coefficient of variance of the median bridge diameter of the first continuous phase
- ligand affinity protein A
- buffer phosphate-buffered saline (PBS) pH 7.3
- mAb monoclonal antibody
- the separation matrices in this Example are designed to have the maximum possible static binding capacity accessible via ligand immobilization.
- Inventive chromatographic membranes (Sample Nos. 34 and 35) comprising a selfgelled porous agarose as the first continuous phase were prepared according to the above-described general preparation example under the following conditions indicated in Table 3.
- a self-gelling agarose solution was prepared and stored at elevated temperature (e.g. 95 °C) until dissolved completely.
- 1 -Decanol, Tween80 and Span80 are mixed and stirred at elevated temperature (e.g. 80 °C) to form an organic phase.
- the above self-gelling agarose solution was poured into a vessel tempered at elevated temperature (e.g. 80 °C) and the organic phase was added slowly while stirring.
- the emulsion was rigorously dispersed with a Disperser YSTRAL Inline Z66 (C) at e.g. 5000 rpm.
- the third inert phase e.g.
- fleece acting as a reinforcing material was atached to casting platform which was kept a temperature below the gelling temperature (e.g. 30 °C).
- the emulsion was cast as a thin film onto the casting platform, soaking the fleece. Due to the temperature of the casting platform being below the gelling temperature of the agarose, the agarose began immediately to form the gelled inventive chromatographic membrane.
- the inventive chromatographic membrane with reinforcing material was removed from the casting platform, winded on a roll and rinsed with isopropanol and finally with water.
- Example 7 Impact of the compression of the third inert phase (reinforcing material) on the permeability of the inventive chromatographic membrane under typical operating pressures
- Different flat sheet reinforcing materials were used as third inert phase for the preparation of inventive chromatographic membranes according to Example 6, Sample Nos. 34 and 35.
- the used reinforcing materials were fleece materials A, B and C with different compressibility measured by compression as calculated by the above-mentioned equation. For a compression measurement, the thickness is measured before and after the compression by a weight of 1 kg that is placed on top of the push rod while monitoring the sample’s thickness after 20 sec.
- the permeability x of the resulting inventive chromatographic membrane was determined as described in scientific publication Ley et. al, Journal of Membrane Science, Volume 564, 2018, Pages 543-551 (page 547: description; page 545: measurement).
- the permeability at 100 mbar trans membrane pressure (TMP) of a single layer inventive chromatographic membrane was compared to the permeability of a stack of 3 layers of inventive chromatographic membrane at a TMP of 100 mbar.
- TMP trans membrane pressure
- v is the flow rate of water passing through the membrane single layer or stack the viscosity of water (in mPa-s) and Ax the single layer or stack thickness (in ⁇ m).
- the compression of the third inert phase has a strong effect on the permeability of the inventive chromatographic membrane under typical operating TMPs.
- Example 8 Performance characteristics of the inventive chromatographic membrane functionalized with affinity Protein A ligand.
- the generated inventive chromatographic membrane Sample A exhibits the following material and performance characteristics: thickness of 280 ⁇ m, permeability of 66 mD, ligand density 19.8 g/L.
- Inventive chromatographic membrane Sample A was cut into circular coupons and assembled as a 4-layer circular membrane stack in a reusable filtration device with a polypropylene filter housing (filter table and filter cover) with luer lock connectors and mechanically supported by a stainless steel holder which forms a mechanically stable chromatographic unit out of the filter cover, membrane stack and the filter table.
- the frontal area of the membrane stack was 5 cm 2 and the thickness 1.12 mm, which resulted in a total membrane volume (MV) of 0.56 mL.
- the dynamic binding capacity of the inventive chromatographic membrane device for a purified monoclonal antibody at different residence times was determined using an Akta Avant 150 chromatography system (Cytiva, 28976337). Equilibration and wash buffers used in the performance characterization were made from phosphate buffered saline (0.1 M pH 7.4, conductivity 16 mS/cm); As an elution buffer, acetic acid at 0.1 M concentration at pH 2.9 was used. The monoclonal antibody (MW ⁇ 140 kDa) was generated by CHO cell fermentation.
- Clarification of the fermentation broth was done by depth filtration (Sartoclear DL20 0.8 m 2 29XDL20-FCC; Sartoclear DL90 0.8 m 2 29XDL90-FCC) and sterile filtration through a 0.2 ⁇ m sterile filter capsule (Sartopore 2 XLG 30“ 5447307G3 — SS).
- the antibody was purified by using a Protein A MabSelectSuRe column (MabSelectSuRe GE 17-5438; XK 50/20 GE).
- the load solution used for the performance characterization of the membrane was made from equilibration buffer containing 1 mg/mL of the purified antibody.
- the flow rates for the dynamic binding capacity determination were 1 , 3, 5 and 10 MV/min, which corresponds to residence times of 0.1 , 0.2, 0.3 and 1 min.
- the concentration of the antibody in the flow-through fraction was determined by an inline UV detector at 280 nm with a known extinction coefficient of the antibody of 1 .42.
- Fibro HiTrap PrismA (Cytiva 17549856 lot 17103843) was used as a benchmark chromatographic material representing a state-of-the-art purely convective protein A affinity chromatography material, exhibiting no diffusive phase.
- the material is made from cellulose nano fibers, where the ligand is immobilized onto the surface of the fibers and therefor directly accessible by the convective flow through the fibrous material eliminating any relevant diffusional transport limitations.
- a 1 mL MabSelectSure column (Cytiva, 11003493) was used as an additional benchmark material representing a state-of-the-art protein A affinity resin material.
- the resin is made from crosslinked agarose and has an average bead size of 85 ⁇ m (GE Instructions 71-5020-91 AC), representing the diffusive phase.
- the two state-of-the-art protein A affinity materials and the inventive protein A chromatographic material were characterized with regard to their chromatographic performance. Data were determined as described before. Equilibration and wash buffers used in the performance characterization were made from phosphate buffered saline (0.1 M pH 7.4, conductivity 16 mS/cm). As an elution buffer, acetic acid at 0.1 M concentration at pH 2.9 was used. The monoclonal antibody (mAb) (MW 140 kDa) was generated by CHO cell fermentation.
- mAb monoclonal antibody
- Clarification of the fermentation broth was achieved by depth filtration (Sartoclear DL20 0.8 m 2 29XDL20-FCC; Sartoclear DL90 0.8 m 2 29XDL90-FCC) and followed by sterile filtration through a 0.2 ⁇ m sterile filter capsule (Sartopore 2 XLG 30“ 5447307G3 — ⁇ SS).
- the antibody was purified by using a ProA MabSelectSuRe column (MabSelectSuRe GE 17-5438; XK 50/20 GE).
- the load solution used for the performance characterization of the inventive chromatographic membrane was made from equilibration buffer containing 1 mg/mL of the purified mAb.
- the concentration of the mAb in the flow-through fraction was determined by an in-line UV detector at 280 nm with a known extinction coefficient of the antibody of 1.42.
- the inventive chromatographic membrane shows a markedly higher DBC 10% vs. residence time performance than a state-of-the-art agarose resin material, enabling highly productive and fast processes for antibody capture.
- the dynamic binding performance is very similar to the state-of-the-art convective membrane material. For very short residence times ( ⁇ 0.2 min), the convective material shows slightly higher DBC 10% values.
- Example 9 Low fouling propensity of the inventive chromatographic membrane compared to purely convective material of similar binding capacity
- a reinforced inventive chromatographic membrane was generated according to Example 6, Sample No. 34, having a third inert phase C according to Example 7, being modified according to Example 1 .
- the antibody concentration in the feed stream was 2.8 mg/mL.
- the dynamic binding capacity of the used devices was determined with purified mAb as generated in Example 8. It is important to note that both materials have a similar binding capacity of around 40 mg/mL at a residence time of 0.2 min (cf. Figure 10).
- the toad of the cycling study was then set to 80% of the determined DBC 10% value.
- the different phases in the bind & elute cycle are the following: 1 ) equilibration with 8 MV equilibration buffer at 10 MV/min; 2) loading to 80% of DBC 10% with clarified feed stream at 5 MV/min (i.e.
- step 1 7.5 mL load for Cytiva HiTrap 0.4mL, and 6 mL load for the inventive chromatographic membrane); 3) washing with 8 MV wash buffer at 10 MV/min; 4) elution with 10 MV at 5 MV/min; and 5) washing with 5 MV wash buffer at 10 MV/min.
- step 1 the next cycle was started by equilibration (step 1), or a Cleaning-ln-Place (CIP) step was performed before restarting, using 10 MV of 0.1 M sodium hydroxide at 3 MV/min, which results in a 3 min duration of one CIP step, followed by an additional wash step with equilibration buffer until pH 7.4 is reached using a flow rate of 10 MV/min.
- CIP Cleaning-ln-Place
- the frequency of CIP steps was diminished as the cycling experiment was progressing in order to reduce the cleaning intensity of the CIP step.
- a CIP step was performed after each cycle.
- a CIP step was performed only after every 5 th cycle.
- cycle number 41-70 a CIP step was performed only after every 10 th cycle.
- no CIP step was performed anymore.
- Figure 11 shows the trans-device (delta) pressure as observed at each cycle during the equilibration phase at a flow rate of 10 MV/min for both devices.
- the convective Fibro material from Cytiva shows stable trans-device pressure during the first 20 cycles, were a CIP step followed after each bind & elute cycle. However, as the CIP frequency was reduced after cycle 21 st to a CIP step only after every 5 th cycle, the Fibro material starts to exhibit rapidly increasing trans-device pressures. At the 31 st cycle, the trans-device pressure reaches 0.76 MPa, which well exceeds typical processing pressures of up to 0.4 MPa in related industrial applications of such materials.
- the inventive chromatographic membrane Sample A shows a different behavior regarding the trans-device pressure development over the consecutive cycles:
- the trans-device pressure remains at the low level of 0.01 MPa for almost 79 cycles, despite the fact that the CIP frequency was continuously reduced during the 79 cycles until no CIP step was performed anymore after the 70 th cycle.
- Stow increase in trans-device pressure is observed starting after the 79 th cycle, reaching approx. 0.47 MPa at cycle 150. This behavior is markedly different for those two materials despite the fact that the binding capacity is on the same level.
- Example 10 Integration into a scalable device family
- Inventive chromatographic membrane Sample A (cf. Example 8) was manufactured in roll format using a continuous coating process where the emulsion is coated onto the third inert phase. The emulsion is cooled down below the gelling point in order to form a continuous roll of membrane.
- the inventive chromatographic membrane roll material containing surfactants and solvent is extracted by a continuous extraction and washing process using alcohol and water. Subsequently the roll material is crosslinked and simultaneously activated by impregnation with a bisoxirane solution containing sodium hydroxide. After washing in a continuous washing process, coupling of Protein A is performed in a jigger by winding the activated membrane roll between two winding rolls, thereby passing the reaction solution containing Protein A (10 mg/mL) dissolved in phosphate buffer (1 M, pH8.5). Subsequently, the Protein A membrane is dried from a humectant in a continuous rinsing/drying process to yield a Protein A membrane in roll format.
- Membrane layers were connected in a fluid-tight fashion to the housing by a melt process. Edges of the membrane bed were seated in a previous step before integration into the respective housings. An impinging flow channel is given upstream from the membrane bed to the inlet and an outflow channel is given downstream from the outlet.
- Table 5 shows the characteristics of the three modules differing in bed volume from 1.2 to 70 mL, which corresponds to a scaling factor of 58.3.
- the bed height is kept constant at 4 mm, ensuring almost identical permeability for all three modules of 7.6 - 8.3 MV/min*bar despite the different bed volumes.
- Example 9 Using state-of-the-art chromatographic systems, a single chromatographic bind & elute cycle of a clarified mAb feed stream was run as described in Example 9 with each of the three modules in order to evaluate the level of similarity of the chromatographic performance.
- an Akta 150 Avant system was used as described in Example 8.
- a multi-use Membrane Chromatography system (Sartorius, MCSCEB46NAK) was employed.
- the system is a liquid chromatography system intended for production and process development consisting of a configuration for the implementation of membrane chromatography based on Rapid Cycling Chromatography (RCC).
- inventive chromatographic membrane In order to demonstrate the versatility and broad applicability of the inventive chromatographic membrane, three different clarified mAb fermentation broths that contained three different mAbs were purified in a rapid cycling process with a reinforced inventive chromatographic membrane, generated according to Example 6, Sample No. 34, having a third inert phase A according to Example 7, being modified according to Example 1 .
- the inventive chromatographic membrane was integrated into a downscale device with 1 .2 mL bed volume as described in Example 10. For each cycling study with 200 cycles a fresh device was used.
- Table 6 gives an overview of the performed cycling study for the three different monoclonal antibodies.
- the device was loaded with feed to 80% of the earlier determined DBC 10% value, followed by a wash, the elution of the mAb, a CIP cycle and the re-equilibration.
- the applied volumes for the different steps are indicated.
- the volume was variable, as the device was flushed with 0.2 M NaOH until the pH of the effluent of the device reached pH 12.5 and flushing another 3.3 MV after reaching this pH value.
- the applied PBS buffer volume was variable, as the device was flushed until the effluent reached a pH of 7.5.
- an inline pre filtration of the feed was performed by using a Sartopore2 XLG 0.8 / 0.2 ⁇ m (5441307G4 --SS, 210 cm 2 ), connected between sample pump and injection valve.
- Figures 13, 14, and 15 show the overlayed UV chromatograms of the respective 200 cycles for each antibody as a function of permeated volume. All three chromatograms show very similar and consistent behavior over all 200 cycles, indicating that the inventive chromatographic membrane did not change its characteristics or performance over the course of the cycling study. This can also be seen from Figures 16, 17, and 18 showing the overlayed trans-device pressures of the respective 200 cycles for each antibody / cycling study respectively. All three pressure traces show very similar and consistent behavior over all 200 cycles, again, indicating that the inventive chromatographic membrane did not change its characteristics or performance over the course of the cycling study. A slight decrease in pressure can be observed over the course of the 200 cycles.
- trans-device pressure can be attributed to a stow heat-up of the feed solution from 4 °C in the beginning of the scaling study to room temperature during the study decreasing the viscosity of the feed solution and therefore generating a reduced trans-device pressure.
- yield, elution volume, elution concentration, contaminant removal (HCP, DNA, aggregates) as well as levels of leached ProA ligand were determined.
- the methods for detection of yield, elution concentration and aggregates are size exclusion chromatography with a Yarra SEC 3000 column from Phenomenex, using a HPLC system of Thermo fisher scientific. HCP analyses were carried out with HCP ELISA Cygnus technologies F#550 3 rd generation. DNA was analysed by using PICOGREEN assay P11496. ProA ligand concentration in the eluate fraction was detected with an ELISA of Repligen 9000/1 , however, only for mAb A eluate fractions.
- Figures 19 to 25 show the data sets for mAb A, mAb B and mAb C. It becomes apparent that all relevant process characteristics (yield, HCP removal, DNA removal, ProA ligand leaching, elution peak width, pool concentration, aggregate concentration) stayed at a constant level over the course of the 200 cycles for all three mAbs. This confirms the stable performance behavior of all three devices for different mAbs and respective feedstreams, despite the fact that only one generic cycling recipe was utilized. These results show the very robust and feed stream independent behavior of the inventive chromatographic membrane.
- Example 12 High chromatographic performance due to high bed heights
- a reinforced inventive chromatographic membrane was generated according to Example 6, Sample No. 34, having a third inert phase B according to Example 7, being modified according to Example 1.
- the generated inventive chromatographic membrane was built into a chromatographic device with two different bed heights by stacking different number of membrane layers into the device, namely 3 and 12 layers.
- the flow distribution in front of the chromatographic bed as well as after the chromatographic bed was identical for both devices, independent of the bed height.
- the two chromatographic devices only differentiated by the number of integrated inventive chromatographic membrane layers, had the following characteristics:
- the chromatograms in Figures 26 and 27 show the different chromatographic behavior of the device differing only in bed height. Both the breakthrough curve and the elution peak show marked differences. For the tow bed height device with only 3 layers of inventive chromatographic membrane, early breakthrough, a slow increase of the breakthrough curve and a wide elution peak can be seen, whereas for the high bed height device with 12 layers of inventive chromatographic membrane, late breakthrough with a relatively sharp increase of the breakthrough and a narrow elution peak are observed. These effects lead to higher binding capacity and faster elution, resulting in higher productivity, lower buffer consumption, and higher elution pool concentration. These effects can be attributed to the improved chromatographic behavior of the device with the higher bed height, due to tower axial dispersion.
- Example 13 Materials and performance characteristics for inventive chromatographic membranes functionalized with cation-exchange or mixed mode ligands.
- CIEX ligand functionalization was carried out in a two-step process.
- a first step the activation of the inventive chromatographic membrane according to Example 6, Sample No. 35 is carried out with a bisoxirane molecule so that at least one oxirane group of the bisoxirane reacts with the membrane to enhance the mechanical stability of the matrix material.
- the second step is carried out by adding the ligand to the activated inventive chromatographic membrane at a basic pH.
- Table 8 lists the properties of the generated cation ion exchange membrane.
- the membrane was assembled as a 4-layer membrane stack in a reusable filtration device with PP filter housing (filter table and filter cover) and stainless-steel holder as described in Example 8.
- DBG 10% values of the inventive chromatographic membrane were determined at various flow rates to obtain different residence times (RT) of the target protein y-globulin (Sigma-Aldrich, G5009) according to the method described in Example 1.
- Sartobind S (Sartorius catalog, 96IEXS42EUC11 — A) was examined under the same conditions, representing a state-of-the-art membrane material.
- a 1 mL HiTrap Capto S® column (Cytiva catalog, 29400458) was purchased from Cytiva®.
- the resins have an average bead size of 90 ⁇ m, representing the diffusive phase.
- the column filled with Capto S® resins was characterized with regard to the chromatographic performance, by determining the DBC 10% value for y-globulin (4.74 g/mL) in the same binding buffer conditions at flow rates of 5, 1 , 0.5 and 0.2 MV/min which is equivalent to residence times of 0.2, 1 , 2 and 5 min as described above for the membrane material.
- Figure 28 shows the DBC 10% results as a function of the residence time for the Cl EX materials.
- results show an increase in DBC 10% of 47 % for the inventive chromatographic CIEX membrane in comparison to the respective state-of-the-art resin, and of 62 % compared to the state-of-the-art membrane white having applied a 90 % shorter or the same residence time of the target molecule in the chromatographic material, respectively.
- Ligand immobilization for a mixed mode ligand with a permanent positive charge was conducted on an inventive chromatographic membrane generated according to Example 6, Sample No. 34.
- Activation using a bisoxirane molecule according to the above-described general preparation example was followed by allylation with allylic bromide (20 wt%, 2 mol/L NaOH, 24h).
- Bromination and the final coupling of the ligand were conducted according to US 8,895,710 B2.
- the inventive chromatographic MM membrane was characterized with respect to ligand density, SBC and DBC 10% according to Example 1.
- Ligand density for the inventive chromatographic MM membrane was determined according to CIEX material titration with HCI as known to persons skilled in the art.
- Example 13 the inventive chromatographic membrane according to Example 13, Sample No. 37, were assembled as a membrane stack in a reusable filtration device with PP filter housing (filter table and filter cover) and stainless steel holder and characterized with respect to the methods described in Example 1 .
- DBG 10% Determination of DBG 10% was conducted with y-globulin as target (1 mg/mL) and with conditions used for SBC determination. DBC 10% values were determined at various flow rates to obtain different residence times (RT) of the target molecule in the chromatographic material. The flow rates have been adjusted to 1 , 5, 10 and 20 MV/min, which corresponds to residence times of 1 .0, 0.2, 0.1 and 0.05 min.
- a 1 mL HiTrap Capto Adhere column was purchased from Cytiva (Cytiva catalog, 28405844) and used as a benchmark material representing state of the art mixedmode resin material.
- the resin has an average bead size of 75 ⁇ m, representing the diffusive phase.
- This state-of-the-art mixed-mode resin material was characterized with regard to the chromatographic performance, by determining the 10% DBC value for a y-globulin (Sigma-Aldrich, catalog G5009) at residence times of 2 and 4 min which is equivalent to a flow rate of 2 and 4 MV/min as described above for the CIEX-membrane.
- the results of DBC 10% as function of residence time are depicted in Figure 29.
- the results show an increase in DBC 10% of 280% for the inventive chromatographic MM membrane in comparison to the respective state-of-the-art MM resin white having applied a 95% shorter residence time of the target molecule in the inventive chromatographic MM membrane.
- the performance data with the different ligands shows the versatility of the inventive chromatographic membrane, and its applicability for different chromatographic tasks. Due to the ease of functionalization of polysaccharids, a broad variety of functional ligands can be immobilized to the inventive chromatographic membrane, generating respective chromatographic materials.
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| CN202180086239.3A CN116600889A (en) | 2020-12-22 | 2021-12-21 | Chromatographic material and method for producing same |
| JP2023537646A JP2023554130A (en) | 2020-12-22 | 2021-12-21 | Chromatography materials and methods of manufacturing them |
| CA3202667A CA3202667A1 (en) | 2020-12-22 | 2021-12-21 | Chromatographic material and method of producing same |
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- 2021-12-21 WO PCT/EP2021/087131 patent/WO2022136459A1/en not_active Ceased
- 2021-12-21 KR KR1020237021227A patent/KR20230124925A/en active Pending
- 2021-12-21 CA CA3202667A patent/CA3202667A1/en active Pending
- 2021-12-21 US US18/258,672 patent/US20240033711A1/en active Pending
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| JP2023554130A (en) | 2023-12-26 |
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