Separation matrix and separation method

A separation matrix with multimodal ligands on nonwoven polymer fibers addresses the challenge of high flow rate and capacity limitations in chromatography, enabling efficient biomolecule purification by enhancing selectivity and capacity.

JP7765145B2Active Publication Date: 2025-11-06CYTIVA BIOPROCESS R&D AB
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Patent Information

Application Number
JP2022565913
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-04-28
Filing Date
2021-04-16
Publication Date
2025-11-06
Estimated Expiration
2041-04-16

AI Technical Summary

Technical Problem

Chromatography materials face challenges in achieving high binding capacity at high flow rates, which are essential for maximizing productivity in biomolecule purification processes, as traditional porous bead-based systems are limited by diffusion-dependent binding and monolith/membrane materials have inferior binding capacities.

Method used

A separation matrix with multimodal ligands covalently coupled to a support made of nonwoven polymer fibers, which interact with target biomacromolecules through multiple interaction types, enhancing selectivity and capacity.

Benefits of technology

The matrix achieves rapid biomacromolecule separations with high selectivity and capacity, enabling efficient purification of biopolymers by maintaining high flow rates and reducing mechanical instability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a separation matrix comprising a plurality of multimodal ligands covalently coupled to a support, the support being a membrane comprising non-woven polymeric fibers, the ligands being capable of interacting with target biomacromolecules, and a separation method using the separation matrix.
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Description

[Technical Field]

[0001] The present invention relates to separation matrices, and more particularly to adsorptive membrane matrices having multimodal ligands. [Background technology]

[0002] The biotechnology market is the fastest-growing segment within the global pharmaceutical market, accounting for 20% ($153 billion) of total market sales in 2012. This growth, from a 10% market share in 2002, represents a 41% growth from $153 billion to $215 billion between 2012 and 2018. With approximately 200 monoclonal antibody (mAb) products currently on the market and over 1,000 in clinical trials, the demand for technological advances in this field is clear. Over the past few decades, typical fermentation titers of biomolecules in industrial settings have grown from 0.5 g / L to approximately 3 g / L, and based on accelerated advances in molecular biology, levels up to 10 g / L are likely achievable in the near future. However, while downstream purification processes have also undergone some research and development, improvements in this field have not kept pace with those in the upstream.

[0003] The production of therapeutic proteins requires that high purity be achieved during processing so that the administered protein is substantially devoid of harmful contaminants. Currently, chromatography is the primary method used to achieve high-purity proteins on an industrial scale. Unit operations that rely heavily on chromatography are key to advances in downstream processing of biomolecules, such as mAbs, from an economic perspective. Chromatography accounts for up to 60% of biologics processing (Re-use of Protein A Resin: Fouling and Economics, BioPharm International, March 1, 2015, Vol. 28, No. 3, Anurag S. Rathore, Mili Pathak, Guijun Ma, Daniel G. Bracewell).

[0004] Such chromatographic separation involves binding of i) the target molecule and / or ii) one or more impurities to the solid phase when a liquid phase containing the target molecule and impurities contacts the solid phase. The interaction of the target molecule / impurity with the solid phase can be based on charge, hydrophobicity, affinity, or a combination thereof.

[0005] Historically, traditional packed-bed chromatography using porous beads has been an extremely powerful separation tool. The porosity of these beads provides a high surface area for binding targets or impurities. This results in high-capacity materials, meaning that smaller amounts of adsorbent material can be used. High capacity also enhances the concentration achieved during separation, since more target can be bound per unit volume of adsorbent compared to the relative concentration of the load suspension. These aspects are important for industrial-scale processes, which may require the purification of several kilograms of material per batch from liquid volumes that can reach 20,000 L. Typical binding capacities of porous beads are in the range of 35–120 mg / mL, depending on the functionality of the solid phase and the species bound.

[0006] In porous bead-based systems, the binding event between the target molecule / impurity and the solid phase depends on diffusion into the porous beads. Therefore, there is a strong correlation between the residence time and flow rate in porous bead-based systems. Therefore, the binding capacity decreases with decreasing residence time. This, in turn, is accompanied by a rapid decrease in capacity when times less than 2 minutes are used in porous bead-based systems. The high flow rates required for short residence times may also be incompatible with porous beads, especially at a manufacturing scale where many liters of bead suspension are packed into a column. Here, the mechanical instability of porous beads can lead to compression or collapse events, which in turn result in a heterogeneous column bed.

[0007] Because flow rate affects residence time, it is important to maximize the amount of target that can be bound to the solid phase per unit time. This allows a smaller adsorbent volume to be used and / or the separation to be performed in less time. This metric can be defined as grams bound per unit volume per unit time (mg / mL / min). Typical binding capacities and residence times for the porous beads described above result in an overall productivity of approximately 10-120 mg / mL / min for a single-column porous bead system.

[0008] As an alternative to porous bead-based systems, monoliths or membranes can be used. Flow through such materials is convective rather than diffusive; therefore, their binding capacities are significantly less sensitive to flow than porous bead-based systems. These materials can be run at much higher flow rates than porous bead-based materials, with typical residence times of around 0.2–0.5 minutes. However, typical binding capacities at 10% target breakthrough for monoliths (10–20 mg / mL) and membranes (7.5–29 mg / mL) under dynamic flow are lower than those for porous beads (Gottschalk, U. (2008). Biotechnol Prog., 24(3), pp. 496–503). The inferior binding capacities of monolith and membrane materials (compared to porous bead-based materials) can be partially compensated for by utilizing higher flow rates.

[0009] Typical binding capacities and residence times for the monoliths and membranes described above result in an overall productivity of about 10-145 mg / mL / min of binding events for the monolith and membrane system. [Prior art documents] [Patent documents]

[0010] [Patent Document 1] US20150299248 [Patent Document 2] WO2019173731 [Patent Document 3] US9669402 [Patent Document 4] US2015258539 [Patent Document 5] US8530698 [Patent Document 6] US20160288089 [Patent Document 7] WO2015 / 052465 [Non-patent literature]

[0011] [Non-Patent Document 1] Re-use of Protein A Resin: Fouling and Economics, March 1, 2015, BioPharm International, Volume 28, Issue 3, Anurag S. Rathor, Mili Pathak, Guijun Ma, Daniel G. Bracewell [Non-patent document 2] Gottschalk, U. (2008). Biotechnol Prog, 24(3), pp. 496-503. [Non-patent document 3] O. Hardick et al., J.Mater. Sci. 46 (2011) 3890 pages [Non-patent document 4] "Acidity and fundamentality of solids: Theory, assessment and utility," J. Fraisard and L. Petrakis (eds.), NATO ASI Series C, Vol. 444, Kluwer Academic Publishers, Dordrecht, Boston and London, 1994, especially p. 513 [Non-Patent Document 5] http: / / www.ib-ft.com / measurement_principle.html Summary of the Invention [Problem to be solved by the invention]

[0012] There is a need for chromatography materials that share the high binding capacity associated with porous bead-based materials and the higher flow rates achievable with monolith / membrane materials. Such materials offer high capacity at high flow rates to achieve maximum productivity (mg / mL / min). [Means for solving the problem]

[0013] One aspect of the present invention is to provide a separation matrix that provides rapid biomacromolecule separations with high selectivity, which is achieved by a matrix having a plurality of multimodal ligands covalently coupled to a support, the support being a membrane comprising nonwoven polymer fibers, the ligands being capable of interacting with target biomacromolecules.

[0014] A second aspect of the present invention is to provide a method for rapid flow-through separation with high selectivity, which method recovers purified biopolymers from a load solution containing one or more impurities, comprising: a) passing a load solution through a separation matrix as described above; b) recovering the purified biopolymer in the matrix effluent during the load cycle and, optionally, during any essentially isocratic washes; This is achieved by a method comprising:

[0015] A third aspect of the present invention provides a method for rapid bind-elute separation with high selectivity, which method recovers purified biopolymers from a load solution containing one or more impurities, comprising: a) passing a load solution through a separation matrix as described above; b) optionally passing a wash solution through the separation matrix; c) passing the eluent through the separation matrix; d) recovering the purified biopolymer in the eluate after passing through the separation matrix; e) passing the regenerant through the separation matrix; This is achieved by a method comprising:

[0016] Further suitable embodiments of the invention are set forth in the dependent claims. [Brief explanation of the drawings]

[0017] [Figure 1] 1 is a schematic diagram illustrating a chromatographic medium of the present invention. [Figure 2] 1 is a schematic diagram illustrating a chromatographic medium of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0018] definition The terms "antibody" and "immunoglobulin" are used interchangeably herein and are understood to also include fragments of antibodies, fusion proteins comprising antibodies or antibody fragments, and conjugates comprising antibodies or antibody fragments.

[0019] The terms "Fc-binding polypeptide" and "Fc-binding protein" refer to a polypeptide or protein, respectively, that can bind to the crystallizable portion (Fc) of an antibody, and include, for example, Protein A and Protein G, or any fragment or fusion protein thereof that maintains said binding properties.

[0020] As used herein, the term "spacer" refers to an element that connects a ligand to a support.

[0021] As used herein, the terms "comprises," "comprising," "containing," "having," and the like, can have the meaning given them in U.S. patent law, and can mean "includes," "including," and the like, and "consisting essentially of" or "consisting essentially of" similarly have the meaning given them in U.S. patent law, and the terms are open-ended, allowing for the presence of more than what is recited, but excluding prior art embodiments, so long as the basic or novel characteristics of the recited items are not altered by the presence of more than what is recited.

[0022] Detailed Description of the Embodiments In one aspect, the present invention discloses a separation matrix comprising a plurality of multimodal ligands covalently coupled to a support. The support is suitably a membrane comprising nonwoven polymeric fibers, which may be polymer nanofibers, e.g., cellulose nanofibers, and the multimodal ligands are capable of interacting with target biomacromolecules, e.g., proteins, protein conjugates, nucleic acids, virus particles, or virus-like particles. For further details regarding supports and (nano)fibers, see below. Ligands are chemical moieties that are covalently attached to the support by direct binding to the fiber surface or to a polymer grafted to the fiber surface, as described below. Ligands can also be covalently attached to the fiber surface or to the grafted polymer via a spacer. Spacers are well known in the art of separation matrices and typically can be an organic group having one or more carbon atoms, e.g., 1 to 10 carbon atoms, that connects the ligand to the fiber surface or polymer. The ligands are multimodal, meaning that they can interact with target biomacromolecules through at least two types of interactions, resulting in a higher degree of selectivity than can be achieved with a single type of interaction. Thus, the ligands can have at least two of the following different functionalities: positive charge, negative charge, hydrophobic group, aromatic group capable of π-π or cation-π interactions, hydrogen bond donor, hydrogen bond acceptor, electron donor, and electron acceptor. Preferred combinations include a positive charge + hydrophobic group, a positive charge + aromatic group, a negative charge + hydrophobic group, a negative charge + aromatic group, and a negative charge + electron donor. The amount of ligand can suitably be such that the separation matrix has a ligand density of 100-2000 μmol of ligand per g of dry separation matrix. This provides a high binding capacity for target biomolecules combined with high selectivity.

[0023] Ligand In some embodiments, the multimodal ligands include multimodal anion-exchange ligands, i.e., ligands having a positive charge and hydrophobic and / or aromatic groups, such as structures in which the tertiary amine nitrogen is coupled to the support via a nitrogen such that after coupling, the nitrogen is a quaternary ammonium group. R1-L1-N(R3)-L2-R2 (In the formula, R1 is a 5- or 6-membered substituted or unsubstituted aromatic or aliphatic ring structure, a hydroxyethyl group, or a C1-C4 alkyl group; L1 is a methylene group or a covalent bond; R2 is a 5- or 6-membered substituted or unsubstituted aromatic or aliphatic ring structure; L2 is a methylene group or a covalent bond; R3 is a methyl group) The ligand may include:

[0024] The ligands can particularly include N-benzyl-N-methylethanolamine ligands coupled to the support via nitrogen, where R is a hydroxyethyl group, L is a covalent bond, R is a methyl group, L is a methylene group, and R is an unsubstituted benzene ring. Alternatively, the ligands can be a) N,N-dimethylbenzylamine (R is a methyl group, L is a covalent bond, R is a methyl group, L is a methylene group, and R is an unsubstituted benzene ring), b) 2-(N-(cyclohexylmethyl)-N-methylamino)ethanol (R is a hydroxyethyl group, L is a covalent bond, R is a methyl group, L is a methylene group, and R is an unsubstituted cyclohexyl ring), c) 2-(N-(4-(trifluoromethyl)benzyl)-N-methylamino)ethanol (R is a hydroxyethyl group, L is a covalent bond), In some cases, the compound may comprise a methyl group, a methylene group, and a p-trifluoromethylphenyl group; d) 2-(N-(3,4,5-(trimethoxy)benzyl)-N-methylamino)ethanol (R1 hydroxyethyl group, L1 covalent bond, R3 methyl group, L2 methylene group, and R2 trimethoxyphenyl group); or e) N-benzyl-N-methyl(thiophen-2-yl)methanamine (R1 thiophene ring, L1 methylene group, R3 methyl group, L2 methylene group, and R2 unsubstituted benzene ring). See also US20150299248, which is incorporated herein by reference in its entirety.

[0025] Alternatively, the multimodal anion exchange ligand may be coupled to the support via the nitrogen N N(R6,R7)-R8-L3-Ar (In the formula, R6 and R7 are independently hydrogen, alkyl of 1 to 6 carbons, or hydroxyethyl; R8 is an alkyl or cycloalkyl of 1 to 6 carbons or ethoxy; L3 is a covalent bond, NR9, O, or S, and R9 is alkyl of 1 to 6 carbons; Ar is a substituted or unsubstituted aromatic or heteroaromatic ring. The ligand may include:

[0026] Examples of such ligands are, for example, N-phenyl-ethylenediamine, 2-phenoxyethylamine, N,N-dimethyl-2-phenoxy-ethan-1-amine, N,N-dimethyl-3-phenoxy-propan-1-amine, N,N-dimethyl-2-(2-phenoxyethoxy)ethan-1-amine, 2-(methyl(2-phenoxyethyl)amino)ethan-1-ol, 2-(3,5-dimethylphenoxy)-N,N-dimethylethan-1-amine, 2-([1,1'-biphenyl]-4-yloxy)-N,N-dimethylethan-1-amine, N,N-dimethyl-2-(p-tolyloxy)ethan-1-amine, 2-(4-ethylphenoxy)-N,N-dimethylethan-1-amine, 2-(4-isopropylphenoxy)-N,N-dimethylethan-1-amine, 2-(4-fluorophenoxy)-N,N-dimethylethan-1-amine, 2-(2,5-difluorophenoxy)-N,N-dimethylethan-1-amine, 2-(3-fluorophenoxy)-N,N-dimethylethan-1-amine, 2-(3,5-difluorophenoxy)-N,N-dimethyl Ethan-1-amine, 2-(3,5-difluorophenoxy)-N,N-dimethylpropan-1-amine, 2-(3,4-difluorophenoxy)-N,N-dimethylethan-1-amine, 2-(3,4,5-trifluorophenoxy)-N,N-dimethylethan-1-amine, 2-(4-(tert-butyl)phenoxy)-N,N-dimethylethan-1-amine, N,N-dimethyl-2-(naphthalen-1-yloxy)ethan-1-amine, N,N-dimethyl-2-(perfluorophenoxy)ethan-1-amine, N,N-di methyl-2-(pyridin-4-yloxy)ethan-1-amine, N,N-dimethyl-2-(pyridin-3-yloxy)ethan-1-amine, 2-((2,6-dimethylpyridin-4-yl)oxy)-N,N-dimethylethan-1-amine, N,N-dimethyl-3-(pyridin-4-yloxy)propan-1-amine, N,N-dimethyl-3-phenoxycyclobutan-1-amine, N,N-dimethyl-3-phenoxycyclopentan-1-amine, and N,N-dimethyl-3-phenoxycyclohexan-1-amine.See also WO2019173731 and US9669402, which are incorporated by reference in their entireties.

[0027] In certain embodiments, the multimodal ligand comprises a multimodal cation exchange ligand, i.e., a ligand having a negative charge and a hydrophobic and / or aromatic group. The multimodal cation exchange ligand can be, for example, a structure in which the ligand is coupled to the support via sulfur. S-R4(COOH)-N(H)-C(O)-R5 (In the formula, R4 is a C2-C6 alkylene group, R5 is a 5- or 6-membered substituted or unsubstituted aromatic or aliphatic ring structure. The ligand may include:

[0028] The ligands are particularly those having structures in which they are coupled to the support via sulfur.

[0029] [ka]

[0030] The ligand may include:

[0031] Alternatively, the multimodal cation exchange ligand may be a) a first monomer of the structure CH2=CH-L4-X1, where L4 is a covalent bond or an alkyl ether or hydroxyl-substituted alkyl ether chain containing 2 to 6 carbon atoms, and X1 is a sulfonate or phosphonate group; and b) a second uncharged vinylamide monomer It may comprise a copolymer chain comprising units derived from:

[0032] The copolymer chain may be, for example, a vinylsulfonate-co-N-vinylpyrrolidone copolymer chain, where L4 is a covalent bond, X1 is a sulfonate, and the vinylamide is N-vinylpyrrolidone. Alternatively, the copolymer chain may be a vinylphosphonate-co-N-vinylpyrrolidone copolymer chain (X1 is a phosphonate) or a vinylsulfonate-co-N-vinylcaprolactam chain (where the vinylamide is N-vinylcaprolactam).

[0033] Alternatively, the multimodal cation exchange ligand may be coupled to the support via the nitrogen N NH-Ph-(CH2) n -X2-(CH2) n -COO - (In the formula, Ph is a benzene ring having an NH group in the o-, m-, or p-position, n is 0, 1 or 2; m is 1, 2, 3, 4 or 5; X2 is selected from a covalent bond, S, C(O)NH, NHC(O), C(O)NHCH2C(O)NH and SO2 The ligand may include:

[0034] Examples of such ligands are, for example, p-NH-Ph-CH2C(O)NHCH2COO - , p-NH-Ph-C(O)NHCH2C(O)NHCH2COO - , o-NH-Ph-C(O)NHCH2COO - , p-NH-Ph-CH2SCH2COO - , o-NH-Ph-CH2SCH2COO - , p-NH-Ph-CH2SO2CH2COO - , p-NH-Ph-CH2COO - and p-NH-Ph-(CH2)3COO - See also US2015258539, which is incorporated herein by reference in its entirety.

[0035] Furthermore, the multimodal cation exchange ligands have a structure in which they are coupled to the support via nitrogen N. R9CH(NH2)COOH (In the formula, R9 is an aromatic group or a C5-C7 nonionic aliphatic group. The ligand may include:

[0036] Examples of such ligands are, for example, phenylalanine, tryptophan, leucine, isoleucine, and norleucine. See also US8530698, which is incorporated herein by reference in its entirety.

[0037] In some embodiments, the multimodal ligand comprises a metal chelating ligand, i.e., a ligand having at least two types of groups that form coordinate bonds with a metal ion, such as an electron donor group (e.g., a tertiary amine) and a negatively charged group (e.g., a carboxylate group). Metal chelating ligands may particularly include ligands having at least three carboxyl groups and at least one tertiary amine, e.g., at least two tertiary amines. One example of such a ligand is the structure:

[0038] [ka]

[0039] Another example is the structure

[0040] [ka]

[0041] It is a ligand of

[0042] Further examples include ligands of the structure NH2(CH2)4CH(COOH)N(CH2COOH)2 coupled to the support through a terminal nitrogen, and ligands of the structure HOOCCH2NHCH2CH2CN(CH2COOH)2 coupled to the support through a secondary amine nitrogen.

[0043] Separation matrices with metal chelating ligands can bind transition metal ions, e.g., Ni, to the ligands. 2+ Ion, Co 2+ or Cu 2+ The ions may further comprise ions, etc. that can bind to proteins, particularly proteins with polyhistidine tags, for selective separation of these proteins from complex mixtures.

[0044] polymer nanofibers The separation matrix of the present invention is formed from polymer fiber / nanofiber supports, each support being formed from one or more polymer fibers / nanofibers.

[0045] The polymer fibers / nanofibers are typically electrospun polymer nanofibers. Such electrospun polymer nanofibers are well known to those skilled in the art, and optimized conditions for their production can be found, for example, in O. Hardick et al., J. Mater. Sci. 46 (2011) 3890, incorporated herein by reference in its entirety. The process of the present invention typically includes an initial step of electrospinning a polymer to produce one or more polymer nanofibers. This may include electrospinning a polymer to produce one or more nonwoven sheets or layers, each containing one or more polymer nanofibers. Suitably, each sheet or layer (10) includes a plurality of nanofiber-to-nanofiber fusion points (20), as shown in FIG. 1. Intralayer fusion points at the junctions between individual nanofibers (30) provide mechanical stability to the sheet / layer and reduce the risk of nanofibers bleeding into liquids during use. Fusion points may be suitably achieved by controlling the temperature during the electrospinning process so that the deposited nanofibers contact each other before solidification. Electrospinning a polymer solution can be particularly advantageous, in which case the fibers that form solidify upon evaporation of the solvent, providing sufficient time for the formation of intralayer fusion points before solidification.

[0046] Polymer fibers / nanofibers for use in the present invention typically have an average diameter of 10 nm to 1000 nm. For some applications, polymer nanofibers having an average diameter of 200 nm to 800 nm are suitable. Polymer fibers / nanofibers having an average diameter of 200 nm to 400 nm may be suitable for certain applications. The length of the polymer fibers / nanofibers for use in the present invention is not particularly limited. Thus, conventional electrospinning processes can produce polymer nanofibers hundreds of meters or even kilometers long. However, typically, one or more polymer fibers / nanofibers have a length of up to 10 km, preferably 10 m to 10 km. The polymer fibers / nanofibers may suitably be monofilament nanofibers and may have, for example, a circular, elliptical, or essentially circular / elliptical cross section.

[0047] The one or more polymer fibers / nanofibers are provided in the form of one or more nonwoven sheets, each containing one or more polymer fibers / nanofibers. Thus, the support is typically formed from one or more nonwoven sheets, each containing one or more polymer fibers / nanofibers. The nonwoven sheet containing one or more polymer fibers / nanofibers is a mat of one or more polymer nanofibers, in which each nanofiber is essentially randomly oriented; i.e., the nanofibers are not configured to follow a specific pattern. The nonwoven sheet containing polymer fibers / nanofibers is typically provided by known methods, such as the method disclosed in O. Hardick et al., J. Mater. Sci. 46 (2011) 3890. In certain circumstances, the nonwoven sheet may consist of a single polymer nanofiber. Alternatively, the nonwoven sheet may contain two or more polymer nanofibers, for example, 2, 3, 4, 5, 6, 7, 8, 9, or 10 polymer nanofibers.

[0048] Nonwoven sheets typically range from 1 to 40 g / m 2 , preferably 5 to 25 g / m 2 , and in some cases 1-20 or 5-15 g / m 2 It has an areal density of

[0049] The nonwoven sheet typically has a thickness of from 5 to 120 μm, preferably from 10 to 100 μm, in some circumstances from 50 to 90 μm, and in other circumstances from 5 to 40, 10 to 30 or 15 to 25 μm.

[0050] The polymer used to produce the fibers / nanofibers used in the process of the present invention is not particularly limited, provided that the polymer is suitable for use in chromatography applications. Thus, typically, the polymer is one suitable for use as a chromatography medium, i.e., an adsorbent, in a chromatography method. Suitable polymers include polyamides such as nylon, polyacrylic acid, polymethacrylic acid, polyacrylonitrile, polystyrene, polysulfones, e.g., polyethersulfone (PES), polycaprolactone, collagen, chitosan, polyethylene oxide, agarose, agarose acetate, cellulose, cellulose acetate, and combinations thereof. Polyethersulfone (PES), cellulose, cellulose acetate, and combinations thereof are preferred. In some cases, cellulose, cellulose acetate, and combinations thereof are preferred.

[0051] In some embodiments, the substrate comprises one or more fibers / nanofibers formed from different polymers. Thus, in this embodiment, the substrate comprises one or more different polymers. Exemplary polymers are as defined above.

[0052] Typically, the present invention involves a functionalized cellulose separation matrix prepared from a support formed from one or more cellulose acetate fibers / nanofibers. Preferably, the preparation involves providing a substrate formed from one or more nonwoven sheets or layers, each containing one or more cellulose acetate nanofibers. Cellulose acetate is typically readily electrospun from a solution of cellulose acetate in one or more organic solvents and can be readily converted to cellulose after electrospinning. Thus, preferably, the support is formed from one or more nonwoven sheets / layers, each containing one or more electrospun cellulose acetate nanofibers.

[0053] Physical modification of fibers / nanofibers In certain preferred embodiments of the present invention, the preparation of the substrate optionally includes physical modification of the polymer nanofibers in the nonwoven sheet / layer prior to the grafting step. Specifically, the physical modification may include heating and / or pressing the polymer nanofiber / nonwoven sheet / layer, preferably heating and pressing the polymer nanofiber / nonwoven sheet / layer. These steps improve the structural stability of the material. The pressure and heating conditions can also be varied to alter the thickness and / or porosity of the resulting material.

[0054] The use of multiple nonwoven sheets of polymer nanofibers allows thicker materials to be prepared (once grafted and functionalized) with greater adsorption capacity. Thus, providing the support typically involves providing two or more nonwoven sheets / layers stacked one on top of the other, each containing one or more polymer nanofibers, and simultaneously applying heat and pressure to the stack of sheets / layers to fuse contact points between the nanofibers of adjacent sheets / layers, creating interlayer fusion bonds. In the case of a cellulose separation matrix, providing the support typically involves providing two or more nonwoven sheets / layers stacked or folded one on top of the other, each containing one or more cellulose acetate nanofibers, and simultaneously applying heat and pressure to the stack of sheets / layers to fuse contact points between the nanofibers of adjacent sheets. Thus, the functionalized separation matrix can be a stack of multiple nonwoven polymer nanofiber layers with multiple interlayer nanofiber-to-nanofiber fusion bonds connecting at least two of the layers to one another.

[0055] Preferred processing conditions for pressing and heating the polymer nanofiber / nonwoven sheet can be found in US20160288089 and WO2015 / 052465, which are incorporated by reference in their entireties.

[0056] Grafting of nanofiber substrates The preparation of the matrices of the present invention may include a grafting step which typically involves grafting one or more neutral polymer chains from the support provided above.

[0057] Grafting one or more neutral polymer chains from a substrate typically involves growing one or more polymer chains from one or more functional groups present on the substrate, optionally in the presence of one or more catalysts. Thus, the substrate typically contains one or more functional groups, preferably one or more functional groups from which polymer chains can grow. Growing a polymer chain from one or more functional groups means building a polymer at one or more functional groups from individual monomer building blocks. Thus, the grafting process typically involves growing a polymer chain directly from the substrate, rather than attaching a preformed polymer chain to the substrate. However, attaching a preformed polymer, such as polyglycidol, is also an alternative. Thus, as polymerization proceeds, individual monomers are added to the end of the growing polymer chain, which is distally tethered to the substrate. Alternatively, the polymer coating comprises polymer molecules covalently tethered to the substrate at a single point. The polymer molecules may be linear, branched, or even hyperbranched, where >50% of the monomer residues are branch-point or terminal monomers. Growing polymer chains directly from the substrate allows for control of the overall structure of the polymer coating, particularly using a polymerization strategy whereby all polymers grow simultaneously at a uniform rate. This allows for the formation of a dense, well-defined polymer coating layer. Thus, if the substrate is one or more layers of polymer nanofibers fused together at junctions, a well-defined, thin coating is formed that covers the core nanofiber and the fusion points between the individual nanofibers. The coating may be conformal, i.e., it may follow the contours of the nanofibers and fusion points. The thickness of the coating may be such that the coated nanofibers have an average diameter of, for example, 100 to 1000 nm, e.g., 100 to 700 nm, or 200 to 700 nm. The average diameter of the uncoated nanofibers may be, for example, 100 to 800 nm, e.g., 100 to 600 nm. The average pore size of the layer may be, for example, 200 to 800 nm, and the pore volume fraction may be, for example, 50 to 90%, e.g., 60 to 80%.The average pore size and average fiber diameter can be calculated from SEM images of the layer, and the pore volume fraction can be calculated from the total volume (thickness times cross-sectional area) of the layer or substrate and the specific gravity of the nanofibers. A typical example of the pore volume calculation for a multilayer cellulose acetate nanofiber disk is 0.354 cm for a disk diameter of 32 mm and a disk thickness of 0.44 mm. 3 The dry mass of the disk is 0.165 g, which is 1.31 g / cm 3 The specific gravity of cellulose acetate is 0.126 cm 3 The cellulose acetate volume is obtained as follows: Therefore, the pore volume fraction is (0.354 - 0.126) / 0.354 = 64%.

[0058] The pore structure of the layer is critical to performance in that a delicate balance must be met between high dynamic binding capacity (large accessible surface and short diffusion paths) and low backpressure (large pores and high pore volume fraction). Grafted nanofiber layers, due to their small fiber diameter and high pore volume fraction, are uniquely suited to meeting this balance. A particularly good combination is achieved when the layer has the following pore sizes, as obtained from capillary flow porometry using a perfluoropolyether wetting liquid: bubble point pore size—0.9–1.2 μm, e.g., 1.0–1.2 μm; minimum pore size—0.2–0.4 μm and / or mean flow pore (MFP) pore size—0.3–0.5 μm. Measurements should be performed as detailed below in the analytical methods.

[0059] For good flow characteristics, it is advantageous if the open pore structure of the support is maintained after the grafting process. Thus, the separation matrix (10) has a first side (40) and a second side (50), as shown in FIG. 2, that are fluidly connected to each other through an open, three-dimensional, interconnected pore structure (60) formed by the interstices (interstitial volume) between the grafted polymer nanofibers. This pore structure is preferably free, or substantially free, of grafted polymers or any homopolymers accidentally formed during the grafting process. This can be achieved by limiting the amount of monomer added during grafting, and the absence of any polymers that block the pore structure can be easily confirmed by measuring the flow rate and / or by observing the pore structure by electron microscopy. The grafting polymerization process offers the unique possibility of introducing functionalized polymers that increase binding capacity without blocking the pore structure.

[0060] An advantage of the grafted layers of the present invention, particularly compared to hydrogel-coated membranes, is that the backpressure is essentially independent of the buffer conductivity and pH. This is due to the absence of dramatic swelling / shrinkage phenomena and can be expressed as follows: when an aqueous buffer solution of pH 5-8 is passed through a functionalized separation matrix with a residence time of 0.4 seconds, the pressure drop across the functionalized matrix changes by less than 0.07 MPa per mm of bed height (media thickness) as the buffer conductivity changes over the interval 3-90 mS / cm (measured at 22°C). 3 mS / cm corresponds to a 20 mM acetate or Tris buffer, and 90 mS / cm corresponds to the same buffer solution supplemented with approximately 1 M NaCl.

[0061] In the present invention, grafting is carried out by the method of the formula

[0062] [ka]

[0063] and / or enantiomers or derivatives thereof.

[0064] Most preferably, grafting is carried out by providing a support having one or more functional groups onto which a polymer can grow, with the formula

[0065] [ka]

[0066] and / or its enantiomers and / or derivatives thereof of formula (I) and / or its enantiomers and / or diastereomers.

[0067] [ka]

[0068] In embodiments in which the support is formed from nanofibers formed from different polymers, each different type of polymer nanofiber may be grafted with a different polymer in the grafting step. This may result, for example, from different functional groups present on the different polymer nanofibers. Alternatively, the same polymer may be grafted to each of the different types of polymer nanofibers in the support.

[0069] Typical functional groups include hydroxyl, amino, and carboxyl groups. When the support is formed from one or more cellulose or cellulose acetate nanofibers, the functional groups are typically hydroxyl groups.

[0070] In a particularly preferred embodiment, the functional groups are hydroxyl groups. In this particularly preferred embodiment, grafting is typically carried out under conditions that additionally deprotect hydroxyl groups on the substrate in the same step.

[0071] Deprotection of the functional groups is typically performed so that the functional groups can have one or more polymer chains growing from them. For example, if the separation matrix is ​​a cellulose separation matrix, a cellulose acetate support is typically provided, and the cellulose acetate is treated to convert it to cellulose before the grafting step. This involves deprotecting the acetylated hydroxyl groups to obtain hydroxyl groups. The conversion of cellulose acetate to cellulose is typically carried out using an aqueous alkaline solution, preferably NaOH in water:ethanol, more preferably 2:1 water:ethanol, for a period of more than 12 hours, e.g., 12 to 36 hours. Depending on the conditions, the conversion (saponification) may be complete or partial, resulting in a certain content of residual acetate groups. While complete conversion is preferred, a residual acetate content of up to about 5 or 10 μmol per g of dry support may be acceptable.

[0072] Alternatively, when the chromatographic medium is a cellulose separation matrix, a cellulose acetate support is provided and reacted under conditions such that the cellulose acetate is converted to cellulose, and the cellulose is subsequently reacted with a compound of the formula

[0073] [ka]

[0074] and / or its enantiomers, and / or derivatives of formula (I) and / or its enantiomers and / or diastereomers to form grafted polymer chains. In such embodiments, grafting step (ii) is typically carried out in the presence of an aqueous alkaline solution, preferably NaOH or KOH, more preferably KOH in water, in water or water:ethanol, for a period of 4 to 6 hours.

[0075] When the separation matrix is ​​a cellulose separation matrix, the matrix typically comprises: (i) providing a substrate formed from one or more cellulose acetate nanofibers and treating the cellulose acetate to convert it to cellulose; (ii) grafting one or more neutral polymer chains from the resulting cellulosic support; and (iii) contacting the grafted product with a reagent that functionalizes the product of step (ii) as a separation matrix; It is prepared by

[0076] Alternatively, the matrix (i) providing a substrate formed from one or more cellulose acetate nanofibers; (ii) subjecting the support to conditions under which the cellulose acetate is converted to cellulose, and subsequently one or more neutral polymer chains are grafted to the resulting cellulose support; and (iii) contacting the grafted product with a reagent that functionalizes the product of step (ii) as a separation matrix; It can be prepared by

[0077] Methods for increasing the number and / or density of functional groups on a substrate will be known to those skilled in the art.

[0078] If one or more functional groups are introduced into the support, the support is treated between steps (i) and (ii) in a further step (ia) in which the functional groups present on the support are modified to introduce functional groups from which one or more polymer chains can grow, followed by step (ii) in which polymer chains are grown from the thus modified support.

[0079] In embodiments involving glycidol polymerization, the support is typically treated between steps (i) and (ii) to deprotect any functional groups on the support.

[0080] The polymer chain or chains grafted onto the support are suitably neutral.The polymer chain does not contain any group that is considered by those skilled in the art as a charged group, for example, the type of charged group described below.Typically, the polymer chain grafted onto the substrate in step (ii) does not contain any charged group as defined herein.

[0081] The neutrality of a polymer can be determined by whether the polymer contains any groups that are ionizable, i.e., that are protonated or deprotonated, at an essentially neutral pH, e.g., pH 6-8, typically pH 6.5-7.5, usually pH 6.75-7.25, or about pH 7. Typically, a neutral polymer will be substantially free of acidic or basic centers, i.e., will be substantially free of functional groups that are protonated or deprotonated at pH 6-8, typically pH 6.5-7.5, usually pH 6.75-7.25, or about pH 7. This can be determined by one of skill in the art by assays typical in the art. A typical procedure for determining acidity and basicity along with its theoretical aspects is set out in "Acidity and fundamentals of solids: Theory, assessment and utility," edited by J. Fraisard and L. Petrakis, NATO ASI Series C, Vol. 444, Kluwer Academic Publishers, Dordrecht, Boston and London, 1994, which is incorporated herein by reference in its entirety, especially page 513. As used herein, substantially means less than 1 mol%, preferably less than 0.1 mol%, even more preferably less than 0.01 mol%, or even less than 0.001 mol%.

[0082] As mentioned above, the grafting step (ii) involves the grafting of a substrate having one or more functional groups onto which a polymer can grow, to a compound of the formula

[0083] [ka]

[0084] and / or its enantiomers.

[0085] Glycidol polymerization is a technique known to those skilled in the art. Glycidol polymerization typically does not require the presence of a catalyst. However, polymerization can optionally be carried out in the presence of one or more suitable catalysts. In such embodiments, chemical or biological catalysts are typically used. Glycidol polymerization is typically carried out in an aqueous environment under weakly alkaline conditions. Typically, glycidol polymerization is carried out at room temperature for more than about 5 hours, for example, about 16 hours. After glycidol polymerization, the grafted product is typically washed in water followed by a weak acid.

[0086] Glycidol polymerization involves polymerizing glycidol and / or glycidol derivatives from one or more functional groups, as defined herein, present on a substrate. Typically, these functional groups are hydroxyl groups. Thus, step (ii) typically involves polymerization of glycidol and / or glycidol derivatives of the formula

[0087] [ka]

[0088] and its enantiomers, and / or derivatives and / or enantiomers and / or diastereomers thereof with one or more hydroxyl groups present on the nanofiber substrate.

[0089] Preferably, step (ii) is a compound of formula

[0090] [ka]

[0091] and its enantiomers with one or more hydroxyl groups present on the nanofiber substrate.

[0092] Glycidol polymerization inevitably leads to branching of the polymer chain, resulting in a "bush" structure. Thus, typically, one or more of the polymer chains will be branched, resulting in hyperbranching as described above. The different types of monomer residues in glycidol polymers are glycerol triethers (branch points), 1,2-glycerol diethers (linear), and 1- or 2-glycerol monoethers (terminal). In many cases, triether and monoether residues predominate, producing hyperbranched polymers.

[0093] In a second aspect, the present invention provides a method for recovering a purified biopolymer from a load solution containing one or more impurities, comprising: a) passing a load solution through a separation matrix as described above; b) recovering the purified biopolymer in the matrix effluent during the load cycle and, optionally, during any essentially isocratic washes; A method is disclosed that includes:

[0094] This flow-through method allows for the rapid removal of adsorbed contaminants from unbound or very weakly bound biopolymers. When the amount of contaminants is small (e.g., after a prior affinity chromatography step), large amounts of biopolymers can be purified without any capacity issues. A typical example is the removal of aggregates and / or residual host cell proteins from immunoglobulins (e.g., monoclonal antibodies) after a Protein A or Protein L affinity chromatography step using a separation matrix with multimodal anion-exchange ligands, as described above. Advantageously, this affinity chromatography step can be performed on a separation matrix, such as Fibro™ PrismA (Cytiva), containing multiple affinity ligands, e.g., Protein A or Protein L ligands, covalently coupled to a support membrane comprising nonwoven polymer (e.g., cellulose) fibers.

[0095] In a third aspect, the present invention provides a method for recovering a purified biopolymer from a load solution containing one or more impurities, the method comprising: a) passing a load solution through a separation matrix as described above; b) optionally passing a wash solution through the separation matrix; c) passing the eluent through the separation matrix; d) recovering the purified biopolymer in the eluate after passing through the separation matrix; e) passing the regenerant through the separation matrix; A method is disclosed that includes:

[0096] This bind-elute method allows for highly efficient removal of adsorbed and / or non-adsorbed contaminants from bound biomacromolecules, e.g., target proteins. A typical example is the removal of aggregates and / or residual host cell proteins from immunoglobulins (e.g., monoclonal antibodies) after a Protein A or Protein L affinity chromatography step using a separation matrix with multimodal cation-exchange ligands as described above. Advantageously, this affinity chromatography step can be performed on a separation matrix, e.g., Fibro™ PrismA (Cytiva), containing multiple affinity ligands, e.g., Protein A or Protein L ligands, covalently coupled to a support membrane comprising nonwoven polymer (e.g., cellulose) fibers.

[0097] Another example is a metal chelating ligand such as those described above and a transition metal ion (e.g., Ni 2+ Purification of his-tagged proteins from cell culture supernatants or lysates on a separation matrix having

[0098] The above separation matrix allows for very rapid separation cycles, which is advantageous when steps a) to e) are repeated several times, for example at least 10 times or at least 20 or 50 times, in which case the cycle time for each of steps a) to e) can be less than 5 minutes, for example less than 3 minutes or less than 2 minutes, or 0.5 to 5 minutes or 1 to 3 minutes. [Example]

[0099] Example 1 A solution of cellulose acetate with a relative molecular weight of 29,000 g / mol was dissolved in a common solvent and then electrospun to produce fibers with diameters in the range of 300-600 nm. Optimized conditions for nanofiber production can be found, for example, in O. Hardick et al., J. Mater. Sci. 46 (2011) 3890, the entire contents of which are incorporated herein by reference. Approximately 20 g / m 2 Sheets of material were layered and subjected to a combined heat and pressure treatment.

[0100] The nanofiber material was derivatized according to the scheme outlined below:

[0101] [ka]

[0102] Step (i): Saponification of cellulose acetate (CA) to regenerated cellulose (RC)

[0103] [ka]

[0104] A cellulose acetate sheet (0.44*32mm*150mm) obtained according to the method of Example 1 was placed in a large beaker containing 5 L of 0.075 M sodium hydroxide solution in 2:1 water:ethanol. The reaction mixture was stirred at room temperature for 48 hours. The material was then washed according to washing protocol A.

[0105] Washing Protocol A The reaction medium was replaced with an equal volume of deionized water and circulated for 1 hour. The rinsing procedure was repeated once more. Finally, the material was treated with an equal volume of aqueous ethanol (2:1 HO:EtOH) before being removed from the reaction vessel.

[0106] Step (ii): Glycidol polymerization

[0107] [ka]

[0108] The material from (i) was suspended in 1 L of 0.5 M NaOH. After circulating the reaction medium for 15 min, various amounts of glycidol (15 mL, 30 mL, 60 mL, 120 mL, 180 mL) were carefully added all at once. The reaction medium was circulated at room temperature for 16 h, after which the material was washed according to washing protocol B.

[0109] Washing Protocol B The reaction medium was replaced with an equal volume of deionized water and circulated for 1 hour. After this time, the wash medium was replaced with 0.01 M HCl, which was circulated for 1 hour, then replaced with 0.001 M HCl and circulated for 1 hour. Finally, the medium was replaced with a 2:1 mixture of HO:EtOH, which was circulated for 1 hour. The derivatized nanofibers were then removed from the reaction vessel.

[0110] Example 2 Glycidol-grafted, DVS-functionalized materials The nanofiber material was derivatized according to the scheme outlined below:

[0111] [ka]

[0112] Step (i): Saponification of cellulose acetate (CA) to regenerated cellulose (RC)

[0113] [ka]

[0114] A cellulose acetate sheet (0.44*32mm*150mm) obtained according to the method of Example 1 was placed in a large beaker containing 5 L of 0.075 M sodium hydroxide solution in 2:1 water:ethanol. The reaction mixture was stirred at room temperature for 48 hours. The material was then washed according to washing protocol A.

[0115] Step (ii): Glycidol polymerization

[0116] [ka]

[0117] The material from (i) was suspended in 1 L of 1 M NaOH. The reaction medium was circulated for 15 minutes, after which 180 mL of glycidol was added all at once. The reaction medium was circulated at room temperature for 16 hours, after which the material was washed according to washing protocol B.

[0118] Step (iii): Divinyl sulfone derivatization

[0119] [ka]

[0120] The material from (ii) was suspended in a solution of K2CO3 (48.8 g, 0.35 mol) dissolved in 550 mL of H2O and 150 mL of acetonitrile. After circulating the reaction medium for 15 minutes, divinyl sulfone (100 ml, 0.86 mol) was added dropwise, after which the reaction medium was circulated for a further 1.5 hours. The material was then washed according to washing protocol C.

[0121] Washing Protocol C The reaction medium was replaced with a 1:1 mixture of warm (60 °C) deionized water and acetone in equal parts, which was circulated for 30 minutes. The washing procedure was repeated two more times. Finally, the medium was replaced with a 2:1 mixture of HO and EtOH, which was circulated for 1 hour. The derivatized nanofibers were then removed from the reaction vessel.

[0122] Example 3 Alternative Protocol for Glycidol-Grafted, DVS-Functionalized Materials The nanofiber material was derivatized according to the scheme outlined below:

[0123] [ka]

[0124] Step (i): Glycidol polymerization and saponification Glycidol polymerization and saponification of CA nanofiber material was carried out by taking a piece of CA nanofiber material (0.11 × 80 × 50 mm) and suspending it in 1 L of deionized water. The solvent was circulated for 3 hours and then refreshed with an additional 1 L of deionized water. This process was repeated four times, after which the nanofiber material was suspended in 350 ml of 1 M KOH. After circulating the reaction medium for 60 minutes, various amounts of glycidol (100 ml) were carefully added, where 25% of the glycidol was added all at once and the remainder was added dropwise over 90 minutes. The reaction medium was circulated at room temperature for 4 hours, after which the material was washed according to washing protocol B.

[0125] Step (ii): Divinyl sulfone derivatization

[0126] [ka]

[0127] The material from (i) was suspended in a solution of KCO (48.8 g, 0.35 mol) dissolved in 550 mL of H2O and 150 mL of acetonitrile. After circulating the reaction medium for 15 minutes, divinyl sulfone (100 ml, 0.86 mol) was added dropwise, after which the reaction medium was circulated for a further 1.5 hours. The material was then washed according to washing protocol C.

[0128] Example 4 Multimodal anion-exchange matrix with N-benzyl-N-methylethanolamine ligands Step 1: Fifty cellulose acetate discs (32 mm diameter, 0.9 mm thick) were washed with distilled water (4 × 600 ml). The washing solution was removed and replaced with 350 ml of 0.5 M KOH solution. After treating the discs with the KOH solution for 10 minutes with stirring, 100 ml of glycidol was added. The reaction medium was vigorously stirred on the discs for 2 hours. After this time, the supernatant was removed and the discs were washed with distilled water (4 × 600 ml) to obtain a clean glycidol-grafted cellulose intermediate that was used in the next step without further modification.

[0129] Step 2: Twenty-five disks were taken from step 1 and treated with 300 ml of 1 M KOH. After stirring the disks for 10 minutes, 30 ml of allyl glycidyl ether was added all at once. The resulting mixture was stirred vigorously for 16 hours. After this time, the supernatant was decanted and the disks were washed with distilled HO (4 x 600 ml). The clean allylated intermediate was used in the next step without further modification.

[0130] Step 3: Twenty-five disks were taken from step 2 and suspended in 500 ml of HO and 150 ml of acetonitrile containing 37.5 g of NaCO. The mixture was vigorously stirred while 100 ml of divinyl sulfone was added dropwise over 60 minutes. The reaction mixture was then vigorously stirred for 16 hours. After this time, the supernatant was decanted and the disks were washed three times with 600 ml of acetone:HO (1:1) and with distilled HO (1 x 600 ml). The clean intermediate was used in the next step without further modification.

[0131] Step 4: Twenty-five discs from step 3 were suspended in 500 ml of HO:acetonitrile (1:3) solution containing 12.5 g of N-bromosuccinimide. The mixture was vigorously stirred for 4 hours. After this time, the supernatant was decanted and the discs were washed with copious amounts of distilled water (6 x 600 ml). The clean intermediate was used in the next step without further modification.

[0132] Step 5: 18 g of N-benzyl-N-methylethanolamine was suspended in 30 ml of HO, and 6 ml of acetone was added to the mixture. The pH of the solution was changed to pH 15 with 5 N NaOH. Meanwhile, 25 disks from step 4 were individually placed into wells of a 6-well plate. 2.5 ml of N-benzyl-N-methylethanolamine solution was added to each disk. The plate was gently rocked on an orbital shaker for 16 hours. After this time, the reaction mixture was removed, and each disk was washed with distilled water (5 x 10 ml) to obtain the final product as a white fibrous disk.

[0133] The disk was placed in a syringe filter device, and a monoclonal IgG antibody eluate from a MabSelect™ PrismA column (Cytiva, Sweden), containing 160 ppm host cell protein (HCP), was passed through the disk with a residence time of 1.2 seconds, and the flow-through was collected. Aliquots of the eluate were pre-adjusted to different pH and conductivity levels. After passage through the disk, the antibody yield and residual HCP content in the flow-through were as shown in Table 1.

[0134] [Table 1]

[0135] Example 5 Multimodal cation-exchange matrix with N-benzoylamide-homocysteine ​​ligands Step 1: Fifty cellulose acetate discs (32 mm diameter, 0.9 mm thick) were washed with distilled water (4 × 600 ml). The washing solution was removed and replaced with 350 ml of 0.5 M KOH solution. After treating the discs with the KOH solution for 10 minutes with stirring, 100 ml of glycidol was added. The reaction medium was vigorously stirred on the discs for 2 hours. After this time, the supernatant was removed and the discs were washed with distilled water (4 × 600 ml) to obtain a clean glycidol-grafted cellulose intermediate that was used in the next step without further modification.

[0136] Step 2: Twenty-five disks were taken from step 2 and suspended in 500 ml of HO and 150 ml of acetonitrile containing 37.5 g of NaCO. The mixture was vigorously stirred while 100 ml of divinyl sulfone was added dropwise over 60 minutes. The reaction mixture was then vigorously stirred for 16 hours. After this time, the supernatant was decanted and the disks were washed three times with 600 ml of acetone:HO (1:1) and with distilled HO (1 x 600 ml). The clean intermediate was used in the next step without further modification.

[0137] Step 3: The disks from step 2 were placed separately into wells of a 6-well plate. Meanwhile, a solution of N-benzoyl-DL-homocysteine ​​thiolactone was placed in a round-bottom flask containing 27 ml of HO. 4 ml of a 50% w / v solution of NaOH was then added, and the mixture was heated to 40°C with stirring for 2 hours. After this time, the solution was cooled to room temperature. The pH of the solution was changed to 11.6, and 2.5 ml of the prepared solution was added directly to each disk in the 6-well plate. The plate was incubated at 60°C for 16 hours. After this time, the supernatant was decanted, and the disks were washed with distilled water (5 x 10 ml) to obtain the final product as a white fibrous disk.

[0138] The prototype was analyzed for dynamic IgG binding capacity (10% breakthrough) using a polyclonal IgG (Gammanorm, Octapharma) and a monoclonal IgG antibody at a dwell time of 2.4 seconds. Capacity tests were performed on a single 25 mm punched disk placed in a membrane holder, with the disk loaded with 0.47 mg / ml IgG in 50 mM NaAc buffer pH 5.0 using different NaCl concentrations.

[0139] [Table 2]

[0140] Example 6 Multimodal cation exchange matrix with poly(vinylsulfonate-co-N-vinylpyrrolidone) ligands A 32 mm diameter circular disk (0.9 mm thick) of glycidol-grafted, DVS-functionalized material prepared as in Example 2 was placed in a flask. Then, predetermined amounts (see Table 3) of N-vinylpyrrolidone (VP), vinyl sulfonic acid sodium salt (30% aqueous solution) (VSA), and 2,2'-azobis(2-methylpropionamidine) dihydrochloride (ADBA) initiator were added to each flask. The pH of the reaction mixture was set to 6-7 by adding dilute acetic acid. Water was then added to obtain a total solution mass of 2.45 g. The reaction was carried out in a cell culture plate large enough to accommodate the 32 mm diameter membrane. The plate was placed on a heated shaking table, which was set to 65 °C. The grafting reaction continued for 16 h, after which the disk was washed in a well plate. The material was stored in 0.2 M sodium acetate solution. The prototypes were analyzed for dynamic IgG binding capacity (10% breakthrough) at a residence time of 2.4 seconds. Capacity tests were performed on a single 25 mm punched disk placed in a membrane holder, with the disk loaded with 0.5 mg / ml polyclonal IgG (Gammanorm, Octapharma) in 50 mM NaAc buffer, pH 5.0.

[0141] [Table 3]

[0142] Example 7 Metal chelate matrix with EDTA ligands

[0143] [ka]

[0144] 1- Amination step Three membrane sheets (glycidol-grafted, DVS-functionalized material prepared as in Example 2) were wrapped around the mesh and then washed in a beaker with 3×700 ml of water (20 min each wash) to remove the 20% ethanol storage solution. The thoroughly washed sheet surrounding the mesh was transferred to a reactor (500 ml), 700 ml of 25% ammonia was added, and the reaction mixture was left overnight at 45° C. The sheet surrounding the mesh was transferred to a beaker and washed with 3×700 ml of water (20 min each wash).

[0145] 2- Ligand Coupling Step The three aminated sheets on the mesh from step 1 were washed with 6 x 1 GV acetone in a beaker, then transferred to a reactor, and 700 ml of acetone was added. 2.9 g of diisopropylethylamine (DIPEA) was added to the reaction mixture, and the reaction was allowed to proceed with stirring for 5 minutes. 53 g of EDTA dianhydride was added to the reaction mixture, and the mixture was allowed to proceed overnight at 24-28 °C. The mesh sheets were washed with 3 x 1 GV acetone in a beaker, followed by 3 x 1 GV water, and then allowed to proceed with 1 GV 1M NaOH for 1 hour to hydrolyze any excess unreacted EDTA. The mesh sheets were washed with 6 x 1 GV water in a beaker (20 minutes per wash).

[0146] The sheet from the ligand coupling step was placed in a plastic box and a 100 mM NiSO solution was added to the box for 15 minutes at room temperature on a shaking table, at which point the color of the sheet changed from white to turquoise / blue.

[0147] The sheet was retained for evaluation of binding capacity.

[0148] Example 8 Metal chelating matrices with N,N-dicarboxymethyl-homocysteine ​​ligands

[0149] [ka]

[0150] Hydrolysis of N,N-dicarboxymethylethyl ester homocysteine ​​thiolactone 0.293 g of N,N-dicarboxymethylethyl ester homocysteine ​​thiolactone was added to 6.5 mL of 1.05 M NaOH in a 20 mL vial with a magnetic stir bar, and hydrolysis was allowed to proceed for 2.5 hours at room temperature until all of the ligand was dissolved.

[0151] NaHCO31M solution 0.786 g of sodium bicarbonate was added to 25 mL of distilled water and stirred until all the bicarbonate was dissolved.

[0152] Preparation of DVS-activated discs Twelve DVS-activated discs prepared as in Example 2 were placed in a holder and washed four times with 500 mL of water for 20 minutes to remove the 20% ethanol stock solution.

[0153] fixed The hydrolyzed ligand solution was transferred to a beaker, and the vial was repeatedly rinsed with bicarbonate solution to remove as much as possible from the vial. The pH was measured to be 9.94. Half the volume was poured into a beaker, and the pH was adjusted to 11.8 using 50% NaOH. The other half was adjusted to pH 8.13 using concentrated HCl. The washed DVS-activated nanofiber discs were placed into a 6-well plate using tweezers.

[0154] A: Triplicate 3 mL of ligand solution, pH 11.8 B: Triplicate 1.5 mL of ligand solution + 1.5 mL of distilled water, pH 11.8 C: Triplicate 3 mL of ligand solution, pH 8.1 D: Triplicate 1.5 mL of ligand solution + 1.5 mL of distilled water, pH 8.1

[0155] The plate was wrapped in parafilm and placed on a shaker overnight at RT and 90 rpm (17.2 hours). The A and B discs immediately turned yellow, but the pH 8.1 did not appear to affect this.

[0156] All discs had some tinge of yellow, and pH 8.1 was not as good as pH 11.8. The discs were removed from the wells and placed in a washing apparatus using a plastic mesh in a 1 L beaker and washed with 6 x 800 mL water. The pH of the solution was controlled at approximately 7. The discs were placed in a 6-well plate and stored in water in a refrigerator.

[0157] The discs were loaded with nickel ions and evaluated with a) pure his-tagged green fluorescent protein (GFP-His) (0.3 mg / ml), b) Escherichia coli (E. coli) supernatant spiked with GFP-His, and c) monoclonal antibody CHO cell culture supernatant spiked with GFP-His.

[0158] a) Pure GFP-His A 10 ml sample of the GFP-His solution was loaded onto the disk contained in the syringe filter device. Experiments were performed at four different flow rates: 1, 5, 10, and 20 ml / min. Table 4 shows the yield data for GFP-His eluted with imidazole.

[0159] [Table 4]

[0160] b) E. coli supernatant with GFP-His added GFP-His was added to E. coli cultures to obtain a GFP-His concentration of 100 μg / ml, and the cultures were ultracentrifuged at 20,000 rpm for 20 minutes. 50 ml was loaded onto a disk in a syringe filter device at a flow rate of 10 ml / min, and GFP-His was eluted with imidazole buffer. Yield data are shown in Table 5.

[0161] [Table 5]

[0162] c) CHO cell culture supernatant supplemented with GFP-His 500 ml of CHO cell supernatant was ultracentrifuged at 20,000 rpm for 30 minutes and spiked with 6.4 μg / ml GFP-His. 500 ml was then loaded onto the disk in a syringe filter device at a flow rate of 10 ml / min, and GFP-His was eluted with imidazole buffer. Yield data are shown in Table 6.

[0163] [Table 6]

[0164] For CHO cell culture experiments, the time and buffer consumption were: Loading 500ml at 10ml / min - 50 min Wash 50 column volumes at 10 ml / min - 5 min Elution: 15 column volumes at 5 ml / min - 5 min Total: 1 hour, 65ml It was.

[0165] For comparison, the results using a packed bed column (HisTrap excel 5ml, Cytiva) were as follows: Loading 500ml at 5ml / min - 1 hour 40 minutes Wash 30 column volumes at 5 ml / min - 30 min Elution: 10 column volumes at 5 ml / min - 10 min Total: 2 hours 20 minutes, 200ml It was.

[0166] Analysis method Determination of dynamic binding capacity The loading material was passed through the selected functionalized nanofiber disc contained in a holder on the AKTA Pure system (GE Healthcare). The material was loaded at a flow rate of a defined membrane volume per minute (mV / min) until the concentration after the holder outlet, as determined by a UV flow cell, exceeded 10% of the loaded concentration. Taking into account the dead volume in the system and holder device, the total amount of protein loaded onto the disc at 10% breakthrough was determined by analysis of the chromatogram using Unicorn software (GE Healthcare). For the anion exchange material, the loading material was 1 mg / mL BSA in 10 mM Tris, pH 8. For the cation exchange material, the loading material was 1 mg / mL lysozyme in sodium acetate, pH 4.7 mM.

[0167] Determining resistance to flow The pressure drop (ΔP) across selected functionalized nanofiber materials was determined using an AKTA Pure system (GE Healthcare). A buffer solution of 10 mM Tris (pH 8) was passed through the functionalized nanofiber disc contained within a holder. A flow rate at which the delta column pressure (ΔP) was equal to 0.5 MPa was recorded.

[0168] Pore ​​size measured by capillary flow analysis The instrument used was a POROLUX™ 100 porometer (IB-FT GmbH, Berlin, Germany) and the method was as shown in Table 7. Further details about the measurement principle can be found on the manufacturer's website http: / / www.ib-ft.com / measurement_principle.html.

[0169] The three pore sizes obtained from the measurements are the minimum pore size, the mean flow pore (MFP) size, and the bubble point pore size (maximum pore size).

[0170] [Table 7]

[0171] The results from capillary flow porometry and estimates of the average nanofiber diameter from SEM images are shown in Table 8. It can be seen that the presence of grafted polymer in the Glycidol Q and Glycidol DVS Protein A samples does not affect the overall structure of the fibrous network, i.e., the graft coating is conformal and very thin. If too much grafted polymer is introduced, polymer material may form between the nanofibers, negatively impacting the flow performance of the material.

[0172] [Table 8]

[0173] This specification uses examples to disclose the invention, including the best mode, and also to enable any person skilled in the art to practice the invention, including making and using any device or system, and performing any incorporated methods. The patentable scope of the invention is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they have structural elements that do not differ from the literal words of the claims, or if they include equivalent structural elements that have insubstantial differences from the literal words of the claims. All patents and patent applications mentioned herein are incorporated by reference in their entirety as if individually incorporated. [Explanation of symbols]

[0174] 10 Separation Matrix 20 Nanofiber-nanofiber fusion points 30 Nanofibers 40 First Aspect 50 Second Aspect 60 Open three-dimensional connection hole structure

Claims

1. 1. A separation matrix comprising a plurality of multimodal ligands covalently coupled to a support, the substrate is a membrane comprising nonwoven polymeric fibers; the ligand is capable of interacting with a target biopolymer; The multimodal ligand comprises a multimodal cation exchange ligand, the multimodal cation exchange ligand comprising: a) Structure CH 2 =CH-L 4 -X 1 (In the formula, L 4 is a covalent bond or an alkyl ether or hydroxyl-substituted alkyl ether chain containing 2 to 6 carbon atoms; X 1 is a sulfonate or phosphonate group), and b) a second uncharged vinylamide monomer and a copolymer chain comprising units derived from the separation matrix further comprises a grafted polymer coating over the polymer fibers; the multimodal ligand is covalently coupled to the grafted polymer coating; Separation matrix.

2. 10. The separation matrix of claim 1, wherein the polymer fibers are cellulose fibers.

3. The separation matrix of claim 2, wherein the cellulose fibers are saponified or partially saponified cellulose acetate fibers.

4. 4. The separation matrix of claim 1, wherein the polymer fibers are partially fused to one another to form a plurality of fiber-to-fiber fusion bonds, and / or the membrane comprises a plurality of nonwoven fibrous layers, the layers being partially fused to one another.

5. The separation matrix of claim 4, wherein the grafted polymer coating covers the fiber-to-fiber fusion points.

6. The separation matrix according to any one of claims 1 to 5, wherein the polymer fibers have a diameter of 100 to 800 nm.

7. The separation matrix according to any one of claims 1 to 6, wherein the polymer fibers having the grafted polymer coating have a diameter of 100 to 1000 nm.

8. have an average pore size of 200 to 800 nm, and / or and / or has a bubble point pore size of 0.9 to 1.2 μm; and / or has a minimum pore size of 0.2 to 0.4 μm; have a mean flow pore (MFP) diameter of 0.3 to 0.5 μm; and / or The separation matrix according to any one of claims 1 to 7, having a pore volume fraction of 50 to 90%.

9. 9. The separation matrix according to claim 1, having a ligand density of 100 to 2000 μmol of ligand per gram of dry separation matrix.

10. the pressure drop across the separation matrix is ​​less than 1 MPa per mm of bed height when an aqueous liquid phase having a viscosity of less than 1.2 mPas passes through a thickness of 0.05 to 10 mm of the matrix at a flow rate of 1 to 640 media volumes per minute; and / or 10. The separation matrix according to any one of claims 1 to 9, wherein the pressure drop across the separation matrix is ​​less than 2 MPa when an aqueous liquid phase of viscosity less than 1.2 mPas passes through a thickness of 0.05 to 10 mm of the matrix at a flow rate of 1 to 640 media volumes per minute.

11. 11. The separation matrix of any one of claims 1 to 10, wherein when an aqueous buffer solution of pH 5 to 8 is passed through the separation matrix with a residence time of 0.4 seconds, the pressure drop across the separation matrix changes by less than 0.07 MPa per mm of bed height as the conductivity of the buffer solution changes over the interval 3 to 90 mS / cm.

12. The method of claim 1, wherein the grafted polymer coating comprises polymer molecules covalently tethered to the polymer fibers at a single point; and / or the grafted polymer coating comprises branched polymer molecules; and / or the grafted polymer coating comprises glycidol monomer residues; and / or the grafted polymer coating comprises divinyl sulfone monomer residues.

13. 13. The separation matrix according to claim 1, wherein the multimodal cation exchange ligands comprise vinylsulfonate-co-N-vinylpyrrolidone copolymer chains.

14. 13. The separation matrix according to claim 1, wherein the multimodal ligands comprise metal chelating ligands.

15. The metal chelating ligand is coupled to the support via the amide nitrogen. 【Chemistry 1】 or The metal chelating ligand is coupled to the support via sulfur. 【Chemistry 2】 15. The separation matrix of claim 14, comprising a ligand of formula:

16. 16. The separation matrix according to claim 14 or 15, further comprising a transition metal ion bound to a ligand.

17. 1. A method for recovering a purified biopolymer from a load solution containing one or more impurities, comprising: a) passing a load solution through the separation matrix according to any one of claims 1 to 16; b) recovering the purified biopolymer in the matrix effluent during the load cycle and, optionally, during any isocratic washes; Including, The separation matrix is ​​a separation matrix according to claim 12, wherein the grafted polymer coating comprises divinyl sulfone monomer residues, Optionally, the biopolymer is a protein. method.

18. 1. A method for recovering a purified biopolymer from a load solution containing one or more impurities, comprising: a) passing a load solution through a separation matrix according to any one of claims 1 to 16; b) optionally passing a wash solution through the separation matrix; c) passing the eluent through the separation matrix; d) recovering the purified biopolymer in the eluate after passing through the separation matrix; e) passing the regenerant through the separation matrix; Including, 17. The separation matrix as claimed in any one of claims 1 to 16, and optionally the biopolymer is a protein. method.

19. Steps a) to e) are repeated at least 10 times; and / or 19. The method of claim 18, wherein the total cycle time of the series of steps a) to e) is less than 5 minutes.

20. 20. The method of any one of claims 17 to 19, wherein the load solution is the eluate from a preceding affinity chromatography step.

21. 21. The method of claim 20, wherein the affinity chromatography step is performed on a separation matrix comprising a plurality of affinity ligands covalently coupled to a support membrane comprising non-woven polymeric fibers.

22. 20. The method of claim 18 or 19, wherein the biopolymer is a protein comprising a polyhistidine tag and the separation matrix is ​​as defined in claim 16.

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