Methods for coupling ligand to composite material

JP2025063072A5Active Publication Date: 2025-11-14MERCK MILLIPORE LTD
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Patent Information

Application Number
JP2024228391
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2019-11-21
Filing Date
2024-12-25
Publication Date
2025-11-14
Estimated Expiration
2040-11-20

AI Technical Summary

Technical Problem

The prior art is difficult to effectively couple ligands with membrane-based materials quickly, efficiently and easily controlled, especially under slow reaction chemical conditions, and the roll-to-roll membrane modification method requires extremely long processing time.

Method used

The method of arranging the functionalized composite materials into parallel stacks, tubular or spiral winding arrangements is adopted, and a large number of covalent bonds are formed in the functionalized composite materials by flowing the first solution.

Benefits of technology

It improves the binding efficiency and dynamic binding ability of ligand with membrane-based materials, shortens the processing time, and is suitable for various reaction rate conditions.

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Abstract

To provide methods for coupling a ligand to a composite material useful as a chromatographic separation medium.SOLUTION: Provided is a method for coupling a ligand to a functionalized composite material, comprising the steps of: a. providing a functionalized composite material, the functionalized composite material being arranged in a coplanar stack of coextensive sheets, a tubular configuration, or a spiral wound configuration, comprising: i. a support member comprising a plurality of pores extending through the support member; and ii. a macroporous cross-linked gel, the macroporous cross-linked gel comprising a polymer formed from a reaction of one or more polymerizable monomers with one or more cross-linkers, comprising pendant reactive functional groups, being located in the pores of the support member, and having macropores smaller than the pores of the support member; and b. flowing at a first flow rate a first solution substantially through or substantially across the functionalized composite material, the first solution comprising a plurality of first ligands, such that a plurality of covalent bonds forms between the reactive functional groups and the first ligands.SELECTED DRAWING: None
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Description

[Background technology]

[0001] Membrane-based water treatment methods were first introduced in the 1970s. Since then, membrane-based separation techniques have been utilized in many other industries. In the pharmaceutical and biotechnology industries, the use of preparative chromatography, direct flow filtration (DFF), and tangential flow filtration (TFF), including microfiltration, ultrafiltration, nanofiltration, and diafiltration, are well-established methods for separating dissolved molecules or suspended particles. Ultrafiltration (UF) and microfiltration (MF) membranes have become essential for separation and purification in the production of biomolecules. Biomolecule production, regardless of its scale, generally employs one or more steps that use filtration. The appeal of these membrane separations rests on several features, including, for example, high resolution, and simplicity, requiring only the application of a pressure difference between the feed stream and the permeate. This simple and reliable single-step filtration of a sample into two fractions makes membrane separation a valuable approach to separation and purification.

[0002] Ligands conjugated to fluid-accessible surfaces of composite materials such as membranes are useful for separation and purification methods. However, chemical modification of membranes is more difficult than resins. Resins can be easily suspended in solutions and therefore modified in large reactors where the diffusion of reagents into the resin is facilitated by stirring the suspension. Membranes are more difficult to modify because they must be supported during the modification process to avoid damage to the membrane structure. This can be achieved with a roll-to-roll method where the membrane physically moves through a trough of reaction solution when the kinetics of the reaction are very fast. Modification of membranes with slower reaction chemistries such as coupling of protein A ligands with activated membranes requires longer reaction times. Longer reaction times preclude roll-to-roll membrane modification methods, which require extremely slow movement of the membrane and therefore extremely long processing times.

[0003] There is a need for a composite modification process in which the reaction solution flows through the composite support assembly for an extended period of time. Increasing ligand coupling to the composite improves the binding capacity of the affinity medium. The conjugation method should utilize a fast, efficient, and easy-to-control reaction to couple the ligand to the composite. Summary of the Invention [Means for solving the problem]

[0004] In one aspect, the invention provides a method for coupling a ligand to a functionalized composite material, the functionalized composite material being arranged in a coplanar stack of coextensive sheets, a tubular configuration, or a spirally wound configuration, comprising: a. providing a functionalized composite material, i. a support member including a plurality of pores extending therethrough; and ii. a macroporous crosslinked gel, the macroporous crosslinked gel comprising a polymer formed from the reaction of one or more polymerizable monomers and one or more crosslinking agents, the macroporous crosslinked gel comprising a plurality of pendant reactive functional groups, the macroporous crosslinked gel located in the pores of a support member, the macropores of the macroporous crosslinked gel being smaller than the pores of the support member. and and b. flowing a first solution substantially through or substantially across the functionalized composite material at a first flow rate, the first solution comprising a plurality of first ligands, whereby a plurality of covalent bonds are formed between reactive functional groups and the first ligands. [Brief description of the drawings]

[0005] [Figure 1A] FIG. 1 is a schematic diagram of an exemplary composite layer laminated between layers of interleaves (eg, screens) with fluid flow substantially across the layer of functionalized composite (tangential flow). [Figure 1B]FIG. 1 is a schematic diagram of an exemplary composite material laminated between layers of interleaf (eg, screen) with fluid flow substantially through the layer of functionalized composite material (direct flow). [Diagram 2] FIG. 1 illustrates an exemplary composite material having an interleaf layer in a spiral wound configuration. [Diagram 3] FIG. 1 shows the IgG dynamic binding capacity at a flow rate of 10 membrane volumes / min of Protein A affinity ligand membranes conjugated using the flow-through method compared to membranes conjugated using the batch method. [Figure 4] 1 is an illustration showing the composite layer (i.e., membrane), interleaf layer (i.e., screen) and flow distribution layer assembled in a chromatography column. This pattern containing 10 membranes was repeated 9 more times until 100 membranes were assembled. One additional flow distribution layer was then added. [Figure 5A] FIG. 13. IgG dynamic binding capacity as a function of membrane position within the stack. [Figure 5B] FIG. 13 shows membrane flux as a function of membrane position in the stack. [Figure 6] 13 is an illustration showing different locations where circular pieces of composite material were removed from a rectangular membrane sheet after tangential flow coupling with a screen and Protein A ligand on an interleaved spiral wound roll. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0006] overview The capacity of an affinity medium depends largely on the amount of affinity ligand that can be conjugated to the fluid-accessible surface of a medium such as a composite material. Conjugation methods that increase ligand coupling to the composite material increase the binding capacity. In some embodiments, these methods exploit fast, efficient, and easily controllable reactions to functionalize the composite material. In some embodiments, the composite material is an adsorptive macroporous chromatographic membrane. In some embodiments, methods for affinity ligand conjugation that involve direct flow of ligand solution through (i.e., dead-end flow) or across (i.e., tangential flow) the membrane produce affinity membranes with improved dynamic binding capacity compared to batch or static conjugation methods.

[0007] Chromatographic membranes utilize fast convective mass transport mechanisms to facilitate rapid purification or separation operations. However, to maximize the productivity of these operations, the binding capacity of the membrane for the target compounds must be maximized. In some embodiments, the present invention describes a flow-through or dead-end flow method for conjugating ligands to membranes containing pendant reactive functional groups under appropriate conditions of flow rate, buffer pH and concentration, affinity ligand concentration, and exposure time. In some embodiments, the present invention describes a cross-flow or tangential flow method for conjugating ligands to membranes containing pendant reactive functional groups under appropriate conditions of flow rate, buffer pH and concentration, affinity ligand concentration, and exposure time. In some embodiments, the method produces conjugated affinity chromatographic membranes with greater protein binding capacity than would be achieved by using a batch non-flow conjugation method using similar buffer conditions and affinity ligands.

[0008] Flow-through and cross-flow conjugation methods consistently result in higher membrane binding capacity, allowing real-time observation of reaction progress, and can be performed in equipment containing in-line measurement tools, thereby enabling optimization of reaction steps. Higher membrane binding capacity, coupled with fast binding kinetics, allows for rapid and highly productive chromatographic purification operations.

[0009] definition For convenience, before further description of the present invention, certain terms used in the present specification, examples and appended claims are listed here.These definitions should be read in light of the remaining parts of this disclosure and understood by those skilled in the art.Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art.

[0010] In describing the present invention, various terms are used in the description. Standard terminology is used commonly in the filtration, fluid delivery and general fluid processing arts.

[0011] The articles "a" and "an" are used herein to refer to one or to more than one (i.e., to at least one) of the grammatical object of the article. By way of example, "an element" means one element or more than one element.

[0012] The terms "comprise" and "comprising" are used in their inclusive and open sense, meaning that additional elements may be included.

[0013] The term "including" is used to mean "including but not limited to." "Including" and "including but not limited to" are used interchangeably.

[0014] The term "affinity chromatography" refers to a separation method based on specific binding interactions between an immobilized ligand and its binding partner. Examples of specific binding interactions include, but are not limited to, antibody / antigen, enzyme / substrate, and enzyme / inhibitor interactions.

[0015] The term "affinity medium" refers to a material that includes a plurality of immobilized ligands, for example a composite material that includes covalently bound ligands.

[0016] The term "polymer" refers to a large molecule formed by the joining of repeating units (monomers). The term polymer also includes copolymers.

[0017] The term "copolymer" refers to a polymer of at least two or more different monomers. A copolymer may be composed of a crosslinker and a monomer, where the crosslinker is a difunctional monomer.

[0018] The term "functionalized composite" refers to a macroporous cross-linked gel that includes a plurality of pendant reactive functional groups located in the pores of a support member.

[0019] The term "pendant reactive functional group" refers to a functional group that forms one or more covalent bonds with a ligand when a solution of the ligand is contacted with the functional group. Examples of pendant reactive functional groups that form covalent bonds with ligands that contain amine groups include, but are not limited to, epoxides, aldehydes, carboxylic acids, reactive halogens, reactive esters, isocyanates, isothiocyanates, sulfonyl halides, carboniimides, acyl azides, fluorobenzenes, carbonates, N-hydroxysuccinimide esters, imide esters, and fluorophenyl esters. Examples of pendant reactive functional groups that form covalent bonds with ligands that contain thiol groups include, but are not limited to, epoxides, thiols, disulfides, carbon-carbon double bonds, carbon-carbon triple bonds, maleimides, haloacetyls, pyridyl disulfides, -thiosulfates, and reactive halogens.

[0020] The term "ligand" refers to a molecule that binds to a specific binding partner. For example, a protein, an antibody, a hormone or a drug binds to a particular receptor.

[0021] As used herein, the term "Protein A" or "PrA" refers to a bacterial protein from Staphylococcus aureus, a Protein A derivative, or a recombinant Protein A that has the ability to bind with high affinity to mammalian antibodies of the class Immunoglobulin G (IgG). For example, Protein A can be recovered from their natural sources (e.g., Staphylococcus aureus). Protein A can be produced synthetically (e.g., by peptide synthesis or recombinant techniques), as well as fragments and variants thereof that retain the ability to bind to proteins having CH2 / CH3 regions, such as Fc regions. Protein A can be purchased commercially, for example, from Repligen, Pharmacia, EMD Millipore, and Fermatech. The gene for Protein A has been cloned and expressed in E. coli, which allows for the production of large amounts of recombinant Protein A and Protein A derivatives.

[0022] The term "wash solution" in the context of the coupling process refers to a solution that carries away the coupling reactants, i.e., a solution that removes any excess polymerizable monomer and any excess ligand.

[0023] The term "quench solution" with respect to the coupling method is used to mean a solution that contains a reactive compound that covalently bonds with any remaining pendant reactive functional groups to form non-reactive groups, i.e., the reactive compound converts any remaining pendant reactive functional groups into non-reactive groups.

[0024] The term "non-reactive group" refers to a group that does not form a covalent bond under the conditions of further coupling reactions and separation methods. For example, exposure of a non-reactive group to a fluid containing a mixture of materials does not result in the formation of a covalent bond between the material and the non-reactive group.

[0025] The term "buffer" refers to a solution that resists changes in pH due to the action of its acid-base conjugate components. Various buffers that can be used in the methods described herein are described in Buffers. A Guide for the Preparation and Use of Buffers in Biological Systems, Gueffroy, Calbiochem Corporation (1975), edited by D. Different buffers maintain a different range of pH, for example, phosphate buffers are usually used at a pH between 6.0 and 8.0, but at higher pHs borate buffers can be used and at lower pHs carbonate buffers can be used. Those skilled in the art will be able to quickly identify the appropriate buffer to use depending on the pH to be maintained. Non-limiting examples of buffers that can be used in the methods according to the invention include MES, MOPS, MOPSO, Tris, HEPES, phosphate, acetate, citrate, succinate, carbonate, borate and ammonium buffers, and combinations thereof.

[0026] The term "crossflow" with respect to fluid flow and filtration is used to mean a fluid flow or filtration configuration in which the flowing fluid is directed along a surface of a composite material (e.g., a filtration medium) and the portion of the fluid passing through such a composite material has a velocity component that is "crosswise", i.e., perpendicular to the direction of the fluid flowing along the surface of such composite material.

[0027] The terms "tangential flow" or "tangential filtration" are used to refer to a fluid flow or filtration method in which the flowing fluid is directed substantially parallel (i.e., tangential) to a surface of a composite material (e.g., a filtration medium) and a portion of the fluid passes through such composite material to provide a permeate. The terms "tangential filtration" and "cross-flow filtration" are often used interchangeably in the art.

[0028] The term "dead end" with respect to fluid flow and filtration is used to mean a fluid flow or filtration configuration in which a flowing fluid is directed through a composite material (e.g., a filtration medium) and a portion of the fluid passing through such composite material has a velocity component through, i.e. parallel to, the direction of the fluid flowing through such composite material.

[0029] The terms "direct flow" or "direct filtration" are used to refer to a fluid flow or filtration method in which the flowing fluid is directed substantially (i.e., directly) through a surface of a composite material (e.g., a filtration medium) and a majority of the fluid passes through such composite material to provide a filtrate. The terms "direct filtration" and "dead-end filtration" are often used interchangeably in the art.

[0030] The term "permeate" is used to mean a portion of a fluid that passes through a filtration medium and is discharged through a first outlet port of a first filtration device operably connected to such filtration medium. The term "decantate" is used to mean a portion of a fluid that flows along the surface of a filtration medium but does not pass through such filtration medium and is discharged through a second outlet port of a filtration device operably connected to such filtration medium.

[0031] Cross-flow filtration and tangential filtration are well-known filtration methods.For example, U.S. Patent Nos. 5,681,464, 6,461,513, 6,331,253, 6,475,071, 5,783,085, and 4,790,942 may be referred to, the disclosures of which are incorporated herein by reference.Also, "Filter and Filtration Handbook", 4th Edition, T. Christopher Dickenson, Elsevier Advanced Technology, 1997 may be referred to, the disclosures of which are incorporated herein by reference.

[0032] As used herein, "bind-elute mode" refers to an operational approach to chromatography in which buffer conditions are established such that both the target protein and undesired contaminants bind to a chromatographic support or composite. Fractionation of the target protein from other components is then achieved by changing conditions such that the target protein and contaminants are eluted separately. In certain embodiments, the membranes described herein may be used in a "bind-elute mode" characterized by high dynamic binding capacity with high conductivity, high volumetric throughput and selectivity. In certain embodiments, the amount of target protein in the eluent is reduced by about 50% to about 99%. In certain embodiments, the eluent is reduced by about 90%, about 91%, about 92%, about 93%, about 94%, about 95%, about 96%, about 97%, about 98% or about 99% in aggregates of the target protein.

[0033] As used herein, the term "flow-through mode" refers to an operational approach to chromatography in which buffer conditions are established such that, upon application, intact target protein flows through the membrane while selectively retaining contaminants. In certain embodiments, the membranes described herein may be used in "flow-through mode" in post-Protein A purification steps to remove key contaminants such as DNA, host cell proteins (HCPs), leached Protein A, undesirable aggregates and viruses in a single step.

[0034] The term "average pore size" of the macroporous cross-linked gel may be understood by those skilled in the art as being determined by any suitable method. For example, the average pore size may be estimated by environmental scanning electron microscope (ESEM) images of the surface. ESEM may be a very simple and useful technique for characterizing microfiltration membranes. Clear and concise images of the membrane may be obtained for the top layer, cross section and bottom layer, and the porosity and pore size distribution may be estimated from the photographs.

[0035] The "volumetric porosity" of a support member can be determined by a simple calculation. For example, for a polypropylene support member, measure the outer dimensions of the support member and calculate the aggregate volume [e.g., for a flat circular disk: V = πr 2 h, the volume of the support member if it were solid or non-porous. The mass of the support member is then determined. Since the density of polypropylene is known or can be determined from Polymer Handbook, Chapter VII, edited by Brandrup et al., Wiley and Sons, New York, 1999, the volumetric porosity is calculated as in the following example:

[0036] Volume porosity = {(volume of support member if solid) - [(mass of support member) / (density of polypropylene)]} / (volume of support member if solid).

[0037] In this calculation, the void volume of the support member is calculated as follows: = (volume of the outer dimensions of the support member) - [(mass of the support member) / (density of polypropylene)]. For example, the density of polypropylene is 0.91 g / cm 3 It is.

[0038] The volumetric porosity ε of a composite is an experimentally determined value for each composite. It is calculated by mass. A macroporous crosslinked gel is incorporated into the void volume of the support member. The mass of the incorporated gel is measured after drying to constant weight. The partial specific volume of the polymer is known or can be determined from Polymer Handbook, edited by Brandrup et al., Chapter VII, Wiley and Sons, New York, 1999. The maximum volume that the gel can occupy is the void volume of the support member (calculated as above). The volumetric porosity of the gel is calculated.

[0039] ε = {(void volume of support member) - [(mass of gel) × (partial specific volume of gel polymer)]} / (void volume of support member)

[0040] In some embodiments, the ligand is Protein A (PrA). PrA capture chromatography is one key step in the downstream purification of biotherapeutic monoclonal antibodies (mAbs). PrA ligands selectively bind to the Fc and / or Fab binding domains on the mAb while allowing most impurities (host cell proteins, DNA, residual cell culture medium) to pass through the resin. Typically, the PrA medium is washed after the loading step to remove further impurities, and then the captured mAb is eluted at low pH. The eluted mAb is significantly more pure and also concentrated relative to the clarified cell culture. However, affinity media, including for example PrA, are very expensive and must be used for many batches over several years to reduce the cost per batch. Ideally, the affinity media can be used for its maximum number of capture chromatography cycles (about 200) for the purification of a single batch of target material, e.g., mAb, greatly reducing the volume of PrA media required for the processing of a single batch. The PrA medium can then be discarded after purifying a single batch of mAb, reducing the costs associated with storing the resin. Currently, most PrA media used in downstream purification of biotherapeutic mAbs is in the form of a resin. The slow mass transfer of mAb into the porous resin structure requires long loading times, with residence times ranging from 2 to 10 min. Lowering the residence time during the loading step significantly reduces the dynamic binding capacity of the PrA resin, defined as the mass of mAb loaded onto the chromatography medium divided by the volume of the chromatography medium. Longer loading times preclude cycling the resin more than a few times per batch (2-4 times) without extending the PrA capture chromatography step to several days.

[0041] PrA membranes can be loaded at much lower residence times (e.g., 0.1-1 min), thus offering the opportunity to rapidly cycle the capture chromatography step. In some embodiments, the rapid cycling of PrA membranes allows for much larger quantities of mAb to be purified in the same amount of time for the same volume of PrA resin. Thus, over a given period of time, rapid cycling of a small amount of PrA membrane can be used to capture the same amount of mAb as a much larger amount of resin that is cycled fewer times. In some embodiments, PrA membranes offer the possibility to use the entire lifespan of the PrA membrane to process a single batch of mAb, significantly reducing the initial costs of establishing a mAb downstream purification method and eliminating the costs associated with storing the resin.

[0042] In some embodiments, Protein A is an affinity ligand. In some embodiments, Protein A is a protein, peptide, or recombinant protein that comprises a ligand that binds to a monoclonal antibody (e.g., an IgG antibody) and a moiety that can form a covalent bond with a pendant reactive functional group (e.g., a thiol of Cys or an amine of Lys). In some embodiments, Protein A is a protein, peptide, or recombinant protein that comprises a ligand that binds to an Fc domain of an antibody and a moiety that can form a covalent bond with a pendant reactive functional group. In some embodiments, Protein A is a protein, peptide, or recombinant protein that comprises a ligand that binds to a Fab domain of an antibody and a moiety that can form a covalent bond with a pendant reactive functional group. In some embodiments, Protein A is capable of forming multiple covalent bonds with multiple pendant reactive functional groups. In some embodiments, Protein A forms multiple covalent bonds to a functionalized composite.

[0043] In some embodiments, Protein A comprises multiple domains. In some embodiments, Protein A comprises 1, 2, 3, 4, 5, 6, 7 or more domains. In some embodiments, the Protein A domains are identical to one another. In some embodiments, the Protein A domains are different from one another. In some embodiments, Protein A is resistant to degradation.

[0044] In some embodiments, Protein A is immobilized on a solid support material. In some embodiments, Protein A is covalently attached to a composite material. In some embodiments, Protein A refers to an affinity chromatography resin or column containing a chromatography solid support matrix to which Protein A is covalently attached.

[0045] Chemical modification of composite materials is more difficult than resins, for example, roll-to-roll modification methods of membranes with slow reaction chemistries require extremely slow movement of the membrane through the reaction solution and extremely long processing times that are incompatible with large-scale modification.

[0046] In some embodiments, the ligand coupling methods disclosed herein can be used to modify composite materials, such as membranes.

[0047] In one aspect, the present invention provides a method for coupling a ligand to a functionalized composite material, comprising the steps of: a. providing a functionalized composite material, i. a support member including a plurality of pores extending therethrough; and ii. a macroporous crosslinked gel, the macroporous crosslinked gel comprising a polymer formed from the reaction of one or more polymerizable monomers and one or more crosslinking agents, the macroporous crosslinked gel comprising a plurality of pendant reactive functional groups, the macroporous crosslinked gel located in the pores of the support member, the macropores of the macroporous crosslinked gel being smaller than the pores of the support member. and b. flowing a first solution at a first flow rate substantially through or substantially across a functionalized composite material, said first solution comprising a plurality of first ligands, whereby a plurality of covalent bonds are formed between said reactive functional groups and said first ligands; and The method relates to methods in which the functionalized composite materials are arranged in a coplanar stack of coextensive sheets, a tubular configuration, or a spirally wound configuration.

[0048] Exemplary Functionalized Composite Materials Gel composition In some embodiments, the crosslinked gel may be formed by the in situ reaction of one or more polymerizable monomers with one or more crosslinking agents. In certain embodiments, the gel may be formed by the reaction of one or more crosslinkable polymers with one or more crosslinking agents.

[0049] In some embodiments, the crosslinked polymer is macroporous. Porosity within the polymer can be promoted during polymerization by the degree of crosslinking, solvent exclusion of the polymer chains during the formation of the polymer network, or some combination of both. In some embodiments, high concentrations of crosslinker produce macroporous crosslinked gels. In some embodiments, porosity is influenced by varying the degree of polymer-(diluent+monomer) interaction, the amount of crosslinker, the amount of diluent, the initiator concentration, and the polymerization temperature.

[0050] The degree of crosslinking in the polymer can be tuned by adjusting the monomer ratio. The chain length of the polymers in the polymer network, and therefore the degree of crosslinking, can also be controlled by using specific monomers that impart specific physicochemical properties to the final polymer and membrane. These "tuning" monomers can affect the interaction of the polymer chains with the solvent system. Furthermore, the hydrophilicity / hydrophobicity of these monomers can affect the final aqueous swelling properties of the resulting gel and the hydrophilic / hydrophobic surface properties of the polymer network.

[0051] To minimize the formation of composites without pores, the solvent system and monomers are selected to ensure that there is sufficient driving force to drive the growing polymer chains out of solution at a certain point, thereby forming macropores. Specifically, the mixture of solvent and non-solvent is adjusted to provide a suitable reaction system that can initially dissolve all of the reactants, but acts as a poor solvent for the crosslinked polymer chains as they grow above a certain molecular weight. A solvent system with too high a proportion of poor solvent (for the polymer chains) can result in rapid precipitation of the growing polymer chains, reducing porosity. The size of the macropores generally depends on the nature and concentration of the crosslinker, the nature of the solvent or solvents in which the gel is formed, the amount of any polymerization initiator or catalyst, and the nature and concentration of the porogen, if present. In certain embodiments, the composites can have a narrow pore size distribution.

[0052] In some embodiments, the macroporous crosslinked gel is formed as a result of phase separation during free radical crosslinking polymerization of polymerizable monomers in the presence of an inert diluent. In some embodiments, the reaction system includes a polymer network, a soluble polymer, and a small molecule compound (monomer and diluent) to form the macroporous crosslinked polymer. In some embodiments, the macroporous crosslinked gel swells only slightly in a solvent.

[0053] In general, many highly porous, non-rigid polymeric materials are relatively weak and cannot withstand the pressures encountered during typical membrane separation processes (e.g., liquid chromatography). Thus, to create mechanically suitable membranes, in certain embodiments, a composite material comprising both a porous substrate (such as a woven substrate made of chemically inert polypropylene) and a porous cross-linked polymer is produced by directly synthesizing the polymer within the substrate pores.

[0054] In certain embodiments, when examined using an Environmental Scanning Electron Microscope (ESEM), the composite materials exhibited a well-connected gel network embedded within the substrate fibers.

[0055] In some embodiments, the formation of regions of high polymer density, also referred to as bundling or lateral aggregation of polymer chains, leaves macropores between the regions of high polymer density, hi some embodiments, the macroporous crosslinked gel has a non-uniform appearance.

[0056] In certain embodiments, composite materials used as membranes in the present invention are described in U.S. Pat. Nos. 7,316,919, 8,206,958, 8,187,880, 8,211,682, 8,652,849, 8,192,971, 8,206,982, 8,367,809, 8,383,782, 8,133,840, 9,962,691, and 10,357,766, and U.S. patent application Ser. Nos. 14 / 190,650, 16 / 055,786, and 16 / 516,500, all of which are incorporated herein by reference.

[0057] In a particular embodiment, the present invention relates to a functionalized composite material comprising: i. a support member including a plurality of pores extending therethrough; and ii. Any one of the methods disclosed herein comprising a macroporous crosslinked gel, the macroporous crosslinked gel comprising a polymer formed from the reaction of one or more polymerizable monomers and one or more crosslinkers, the macroporous crosslinked gel comprising a plurality of pendant reactive functional groups, the macroporous crosslinked gel located in the pores of the support member, and the macropores of the macroporous crosslinked gel are smaller than the pores of the support member.

[0058] In certain embodiments, the invention relates to any one of the methods disclosed herein, wherein the macroporous crosslinked gel of the composite material has macropores with an average diameter of about 5 nm to about 10,000 nm. In certain embodiments, the macroporous crosslinked gel has macropores with an average diameter of between about 10 nm and about 3000 nm. In certain embodiments, the macroporous crosslinked gel has macropores with an average diameter of between about 25 nm and about 1500 nm. In certain embodiments, the macroporous crosslinked gel has macropores with an average diameter of between about 50 nm and about 1000 nm. In certain embodiments, the macroporous crosslinked gel has macropores with an average diameter of about 50 nm, about 100 nm, about 150 nm, about 200 nm, about 250 nm, about 300 nm, about 350 nm, about 400 nm, about 450 nm, about 500 nm, about 550 nm, about 600 nm, about 650 nm, or about 700 nm.

[0059] In certain embodiments, the diameter of the macropores is estimated by one of the techniques described herein. In certain embodiments, the diameter of the macropores is calculated by capillary flow porometry. Since only the maximum porosity is unique to a given material, it is appropriate to define the macroporosity in terms of the maximum porosity.

[0060] In certain embodiments, the invention relates to any one of the methods disclosed herein, wherein the macroporous crosslinked gel of the composite material is a neutral hydrogel, a charged hydrogel, a polyelectrolyte gel, a hydrophobic gel, a neutral gel, or a gel containing functional groups. In certain embodiments, the invention relates to any one of the methods disclosed herein, wherein the composite macroporous crosslinked gel is a neutral or charged hydrogel, wherein the neutral or charged hydrogel is selected from the group consisting of crosslinked poly(vinyl alcohol), poly(acrylamide), poly(isopropylacrylamide), poly(vinylpyrrolidone), poly(hydroxymethylacrylate), poly(ethylene oxide), copolymers of acrylic or methacrylic acid with acrylamide, isopropylacrylamide or vinylpyrrolidone, copolymers of acrylamido-2-methyl-1-propanesulfonic acid with acrylamide, isopropylacrylamide or vinylpyrrolidone, copolymers of (3-acrylamido-propyl)trimethylammonium chloride with acrylamide, isopropylacrylamide or N-vinyl-pyrrolidone, and copolymers of diallyldimethylammonium chloride with acrylamide, isopropylacrylamide or vinylpyrrolidone. In certain embodiments, the invention relates to any one of the methods disclosed herein, wherein the composite macroporous crosslinked gel is a polyelectrolyte gel selected from the group consisting of crosslinked poly(acrylamido-2-methyl-1-propanesulfonic acid) and its salts, poly(acrylic acid) and its salts, poly(methacrylic acid) and its salts, poly(styrenesulfonic acid) and its salts, poly(vinylsulfonic acid) and its salts, poly(alginic acid) and its salts, poly[(3-acrylamidopropyl)trimethylammonium] salts, poly(diallyldimethylammonium) salts, poly(4-vinyl-N-methylpyridinium) salts, poly(vinylbenzyl-N-trimethylammonium) salts, and poly(ethyleneimine) and its salts.In certain embodiments, the present invention relates to any one of the methods disclosed herein, wherein the composite macroporous crosslinked gel is a hydrophobic gel, the hydrophobic gel being selected from the group consisting of a crosslinked polymer or copolymer of ethyl acrylate, n-butyl acrylate, propyl acrylate, octyl acrylate, dodecyl acrylate, octadecyl acrylamide, stearyl acrylate, and styrene. In certain embodiments, the present invention relates to any one of the methods disclosed herein, wherein the composite macroporous crosslinked gel is a neutral gel, the neutral gel being selected from the group consisting of a crosslinked polymer or copolymer of acrylamide, N,N-dimethylacrylamide, N-methacryloylacrylamide, N-methyl-N-vinylacetamide, and N-vinylpyrrolidone.

[0061] In certain embodiments, the crosslinked composite material (e.g., membrane) is further grafted with chemical functional groups or molecular species to provide a functionalized composite material. In certain embodiments, the crosslinked polymer may be functionalized by post-polymerization modification to form a functionalized composite material. In certain embodiments, the functionalized composite material including the functionalized crosslinked polymer may be coupled to a ligand by post-polymerization modification. In this two-step method, excess pendant reactive functional groups, e.g., excess thiol or alkene groups generated during the thiol-alkene polymerization, are modified during a separate grafting step. By controlling the feed ratio of the monomers and crosslinker, the final polymer can have excess pendant reactive functional groups. The pendant reactive functional groups of the functionalized composite material can be subsequently used in coupling reactions, such as click reactions, to further modify the chemistry or functionality of the final polymer. In certain embodiments, the crosslinked polymer in the composite material contains residual reactive groups, referred to as pendant reactive functional groups, such as thiols or unsaturated carbon-carbon bonds, that can be used to attach various ligands via coupling reactions. In certain embodiments, this approach is useful for making polymer composite materials (e.g., membranes) containing various ligands useful for chromatography, such as chromatographic separation of biomolecules (e.g., proteins). For example, this approach can be used to introduce ion exchange functional groups (e.g., carboxylate, sulfonate, quaternary ammonium, amine), hydrophobic interaction moieties (such as octyl groups by using 1-octanethiol or 1-octene), and biomolecules for bioaffinity chromatography (such as cysteine-protein A for monoclonal antibody purification) into composite materials (e.g., membranes).

[0062] In some embodiments, the composite materials exhibit high selectivity, high flow rates, low backpressure, are inexpensive, and allow for long column lifetimes, short process times, and overall operational flexibility.

[0063] In certain embodiments, the invention relates to any one of the aforementioned composite materials, wherein the composite material is a membrane.

[0064] In certain embodiments, the invention relates to any one of the aforementioned composite materials, wherein the composite material has a water contact angle of about 50° to about 120°.

[0065] Porous Support Member In some embodiments, the support member has a void volume, and the void volume of the support member is substantially filled with a macroporous crosslinked gel. In some embodiments, the porous support member has a volumetric porosity of about 40% to about 90%. In some embodiments, the porous support member has a volumetric porosity of about 50% to about 80%. In some embodiments, the porous support member has a volumetric porosity of about 50%, about 60%, about 70%, or about 80%.

[0066] In certain embodiments, the porous support is flat.

[0067] In certain embodiments, the porous support is disc-shaped.

[0068] Many porous substrates or membranes can be used as the support member. In some embodiments, the porous support member is made of a polymeric material. In certain embodiments, the support member can be a polyolefin, which is available at low cost. In certain embodiments, the polyolefin can be poly(ethylene), poly(propylene) or poly(vinylidene difluoride). Examples include expanded polyolefin membranes made by thermally induced phase separation (TIPS) or non-solvent induced phase separation. In certain embodiments, the support member can be made of a natural polymer, such as cellulose or its derivatives. In certain embodiments, suitable supports include polyethersulfone membranes, poly(tetrafluoroethylene) membranes, nylon membranes, cellulose ester membranes, glass fibers or filter paper. In some embodiments, the support member comprises a polymeric material selected from the group consisting of polysulfone, polyethersulfone, polyphenylene oxide, polycarbonate, polyester, cellulose and cellulose derivatives.

[0069] In certain embodiments, the porous support is composed of a woven or nonwoven fibrous material, for example a polyolefin such as polypropylene. Such fibrous woven or nonwoven support members can have larger pore sizes than the TIPS support members, in some cases up to about 75 μm. The larger pores of the support member allow for the formation of a composite material with larger macropores of the macroporous gel. Non-polymeric support members, such as ceramic-based supports, can also be used. The porous support members can be of various shapes and sizes.

[0070] In some embodiments, the support member is in the form of a membrane.

[0071] In some embodiments, the support member has a thickness of about 10 to about 2000 μm, about 10 to about 1000 μm, or about 10 to about 500 μm. In some embodiments, the support member has a thickness of about 30 μm to about 300 μm. In some embodiments, the thickness of the support member is about 30 μm, about 50 μm, about 100 μm, about 150 μm, about 200 μm, about 250 μm, or about 300 μm.

[0072] In some embodiments, the pores of the support member have an average pore size of about 0.1 μm to about 50 μm. In some embodiments, the pores of the support member have an average pore size of about 0.1 μm to about 25 μm. In some embodiments, the pores of the support member have an average pore size of about 0.5 μm to about 15 μm. In some embodiments, the pores of the support member have an average pore size of about 0.5 μm, about 1 μm, about 2 μm, about 3 μm, about 4 μm, about 5 μm, about 6 μm, about 7 μm, about 8 μm, about 9 μm, about 10 μm, about 11 μm, about 12 μm, about 13 μm, about 14 μm, or about 15 μm.

[0073] In other embodiments, multiple porous support units can be combined, for example, by lamination. In one embodiment, a stack of porous support membranes, for example 2-10 membranes, can be assembled before the gel is formed in the voids of the porous support. In another embodiment, a single support member unit is used to form a composite membrane and then laminated prior to use.

[0074] Relationship between gel and support member The gel may be anchored within the support member. The term "anchored" is intended to mean that the gel is held within the pores of the support member, but this term is not necessarily limited to mean that the gel is chemically bonded to the pores of the support member. The gel may be held by physical constraints imposed on the gel by interlocking and intertwining with structural elements of the support member without actually being chemically grafted to the support member, although in some embodiments the gel may be grafted to the surfaces of the pores of the support member.

[0075] In certain embodiments, the crosslinked gel is macroporous. In these examples, the macropores in the gel must be smaller than the pores in the support member, since the macropores are present in the gel that occupy the pores in the support member. Thus, the flow and separation characteristics of the composite material depend on the characteristics of the gel, but are largely independent of the characteristics of the porous support member, provided that the size of the pores present in the support member is larger than the size of the macropores in the gel. The porosity of the composite material can be tailored by filling the support member with a gel whose porosity is partially or completely defined by the nature and amount of the monomer or polymer, crosslinker, reaction solvent, and porogen, if used. The properties of the composite material are determined in part, if not completely, by the properties of the gel. The net result is that the present invention provides control over the macropore size, permeability, and surface area of ​​the composite material.

[0076] If present, the number of macropores in the composite material is not dictated by the number of pores in the support material. The number of macropores in the composite material can be much greater than the number of pores in the support member because the macropores are smaller than the pores in the support member. As mentioned above, the effect of the pore size of the support material on the pore size of the macroporous gel is generally negligible. There are exceptions when the difference between the pore size and pore size distribution of the support member is large, and a macroporous gel with very small pore sizes and a narrow range of pore size distribution is required. In these cases, the large variation in the pore size distribution of the support member is weakly reflected in the pore size distribution of the macroporous gel. In certain embodiments, a support member with a somewhat narrow pore size range may be used in these situations.

[0077] In certain embodiments, the invention relates to any one of the aforementioned composite materials, wherein the composite material is relatively non-toxic.

[0078] Preparation of composite materials In certain embodiments, the composite materials of the present invention may be prepared by a single-step method. In certain embodiments, these methods may use water or other environmentally friendly solvents as the reaction solvent. In certain embodiments, the methods may be rapid and therefore may result in a simple and / or rapid manufacturing process. In certain embodiments, the preparation of the composite materials may be inexpensive.

[0079] In certain embodiments, the composite material may be prepared by mixing one or more monomers, one or more crosslinkers, one or more initiators, and optionally one or more porogens in one or more suitable solvents. In certain embodiments, the resulting mixture may be homogenous. In certain embodiments, the mixture may be heterogeneous. In certain embodiments, the mixture may then be introduced into a suitable porous support where the gel-forming reaction may occur.

[0080] In certain embodiments, a porogen may be added to the reactant mixture, which may be broadly described as a pore-generating additive, hi certain embodiments, the porogen may be selected from the group consisting of thermodynamically poor solvents and extractable polymers (e.g., poly(ethylene glycol)), surfactants, and salts.

[0081] In some embodiments, the gel-forming reaction must be initiated. In certain embodiments, the gel-forming reaction may be initiated by any known method, for example, by thermal activation or exposure to UV radiation. In certain embodiments, the reaction may be initiated by UV radiation in the presence of a photoinitiator. In certain embodiments, the photoinitiator may be selected from the group consisting of 2-hydroxy-1-[4-(2-hydroxyethoxy)phenyl]-2-methyl-1-propanone (Irgacure 2959), 4,4'-azobis(4-cyanovaleric acid) (ACVA), 2,2-dimethoxy-2-phenylacetophenone (DMPA), benzophenone, benzoin and benzoin ethers, such as benzoin ethyl ether and benzoin methyl ether, dialkoxyacetophenones, hydroxyalkylphenones, and α-hydroxymethylbenzoin sulfonic acid esters. Thermal activation may require the addition of a thermal initiator. In certain embodiments, the thermal initiator may be selected from the group consisting of 1,1'-azobis(cyclohexanecarbonitrile) (VAZO® catalyst 88), azobis(isobutyronitrile) (AIBN), potassium persulfate, ammonium persulfate, and benzoyl peroxide.

[0082] In certain embodiments, the gel-forming reaction may be initiated by UV irradiation. In certain embodiments, a photoinitiator may be added to the reactants of the gel-forming reaction, and the support member containing the mixture of monomer, crosslinker, and photoinitiator may be exposed to UV radiation at wavelengths of about 250 nm to about 400 nm for a period of a few seconds to a few hours. In certain embodiments, the support member containing the mixture of monomer, crosslinker, and photoinitiator may be exposed to UV radiation at about 350 nm for a period of a few seconds to a few hours. In certain embodiments, the support member containing the mixture of monomer, crosslinker, and photoinitiator may be exposed to UV radiation at about 350 nm for about 10 minutes. In certain embodiments, visible wavelength light may be used to initiate polymerization. In certain embodiments, the support member must have low absorbance at the wavelengths used so that energy can be transmitted through the support member.

[0083] In certain embodiments, the rate at which polymerization is carried out can affect the size of the resulting macropores in the macroporous gel. In certain embodiments, when the concentration of crosslinker in the gel is increased to a sufficient concentration, the components of the gel begin to aggregate, producing regions of high polymer density and regions containing little or no polymer, the latter regions being referred to herein as "macropores." This mechanism is influenced by the rate of polymerization.

[0084] In certain embodiments, once the composite materials are prepared, they may be washed with various solvents to remove any unreacted components and any polymers or oligomers that are not anchored within the support. In certain embodiments, suitable solvents for washing the composite materials include water, acidic (e.g., HCl) or basic (e.g., NaOH) aqueous solutions, salt solutions (e.g., NaCl), acetone, methanol, ethanol, propanol, and DMF.

[0085] Exemplary methods for coupling ligands to functionalized composite materials Provided herein is a method for coupling a ligand to a functionalized composite material by flowing a first solution containing the ligand across or through the functionalized composite material.

[0086] In one aspect, the present invention provides a method for coupling a ligand to a functionalized composite material, comprising the steps of: a. providing a functionalized composite material, i. a support member including a plurality of pores extending therethrough; and ii. a macroporous crosslinked gel, the macroporous crosslinked gel comprising a polymer formed from the reaction of one or more polymerizable monomers and one or more crosslinking agents, the macroporous crosslinked gel comprising a plurality of pendant reactive functional groups, the macroporous crosslinked gel located in the pores of the support member, the macropores of the macroporous crosslinked gel being smaller than the pores of the support member. and b. flowing a first solution substantially through or substantially across the composite material at a first flow rate, the first solution comprising a plurality of first ligands, whereby a plurality of covalent bonds are formed between the reactive functional groups and the first ligands; The method relates to methods in which the functionalized composite materials are arranged in a coplanar stack of coextensive sheets, a tubular configuration, or a spirally wound configuration.

[0087] In certain embodiments, the present invention relates to providing any one of the aforementioned functionalized composite materials.

[0088] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first solution flows substantially across the functionalized composite material. In some embodiments, the fluid flow path is tangential to the surface of the functionalized composite material (FIG. 1A). In some embodiments, the tangential flow provides a lower pressure drop and / or allows for the simultaneous coupling of stacks composed of many layers of composite material.

[0089] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first solution flows substantially through the functionalized composite material. In some embodiments, the fluid flow path is directly through the functionalized composite material (FIG. 1B). In some embodiments, the direct flow increases the pressure drop as the number of layers of composite increases. In some embodiments, the pressure drop limits the number of layers in the stack. In some embodiments, one or more layers of interleaves act to distribute the flow. In some embodiments, the direct flow increases the mass transfer rate of the ligand into the porous composite structure.

[0090] In certain embodiments, the crosslinked macroporous gel is further grafted with chemical functional groups or molecular species to provide a functionalized composite material. In certain embodiments, the crosslinked polymer can be functionalized by post-polymerization modification to form a functionalized composite material. In this two-step method, excess pendant reactive functional groups, such as excess thiol or alkene groups generated during thiol-alkene polymerization, are modified during a separate grafting step. By controlling the feed ratio of monomers and crosslinkers, the final polymer can have excess pendant reactive functional groups.

[0091] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the pendant reactive functional group is selected from the group consisting of aldehydes, amines, carbon-carbon double bonds, carbon-carbon triple bonds, epoxides, hydroxyls, thiols, anhydrides, azides, reactive halogens, acid chlorides, and mixtures thereof.

[0092] In some embodiments of the method, the pendant reactive functional group is selected from the group consisting of a carbon-carbon double bond, a carbon-carbon triple bond, and a thiol. In some embodiments, the pendant reactive functional group is derived from a molecule that includes a thiol functional group or a molecule that includes an unsaturated carbon-carbon bond. In some embodiments, the pendant reactive functional group is derived from a molecule that includes a thiol functional group, the molecule that includes a thiol functional group being 3-mercaptopropionic acid, 1-mercaptosuccinic acid, a polypeptide that includes a cysteine ​​residue, a protein that includes a cysteine ​​residue, a recombinant protein that includes a cysteine ​​residue, a bacterial immunoglobulin binding protein that includes a cysteine ​​residue, a recombinant fusion protein that includes a cysteine ​​residue, cysteamine, 1-thiohexitol, poly(ethylene glycol) 2-mercaptoethyl ether acetate, poly(ethylene glycol) methyl ether thiol, 1-thioglycerol, 2-naphthalene glycol ... Selected from the group consisting of tarthiol, biphenyl-4-thiol, 3-amino-1,2,4 triazole-5-thiol, 5-(trifluoromethyl)pyridine-2-thiol, 1-[2-(dimethylamino)ethyl]-1H-tetrazole-5-thiol, 1-propanethiol, 1-butanethiol, 1-pentanethiol, 1-hexanethiol, 1-octanethiol, 8-amino-1-octanethiol hydrochloride, 3,3,4,4,5,5,6,6,7,7,8,8,8-tridecafluoro-1-octanethiol, 8-mercapto-1-octanol and γ-Glu-Cys.

[0093] In some embodiments, the molecule comprising a thiol functional group is selected from the group consisting of a polypeptide comprising a cysteine ​​residue, a protein comprising a cysteine ​​residue, a recombinant protein comprising a cysteine ​​residue, a bacterial immunoglobulin binding protein comprising a cysteine ​​residue, and a recombinant fusion protein comprising a cysteine ​​residue. In some embodiments, the molecule comprising a thiol functional group is a protein comprising a cysteine ​​residue.

[0094] In some embodiments, the pendant reactive functional group is derived from a molecule containing an unsaturated carbon-carbon bond, and the molecule containing an unsaturated carbon-carbon bond is selected from the group consisting of 1-octene, 1-hexyne, 4-bromo-1-butene, allyldiphenylphosphine, allylamine, allyl alcohol, 3,4-dihydroxy-1-butene, 7-octene-1,2-diol, 3-allyloxy-1,2-propanediol, 3-butenoic acid, 3,4-dehydro-L-proline, vinyl laurate, 1-vinyl-2-pyrrolidinone, vinyl cinnamate, acyl amide, or acrylate.

[0095] In some embodiments, the pendant reactive functional group is selected from the group consisting of acid chlorides, acyl azides, aldehydes, amines, anhydrides, azides, carbonates, carbon-carbon double bonds, carbon-carbon triple bonds, carboniimides, carboxylic acids, disulfides, epoxides, fluorobenzenes, fluorophenyl esters, haloacetyls, hydroxyls, imidoesters, isocyanates, isothiocyanates, maleimides, N-hydroxysuccinimide esters, pyridyl disulfides, reactive esters, reactive halogens, sulfonyl halogens, thiols, and -thiosulfates. In some embodiments, the pendant reactive functional group is selected from the group consisting of aldehydes, amines, epoxides, hydroxyls, anhydrides, azides, reactive halogens, and acid chlorides. In some embodiments, the pendant reactive functional group is selected from the group consisting of aldehydes, amines, epoxides, and hydroxyls. In some embodiments, the pendant reactive functional group is selected from the group consisting of epoxides, aldehydes, carboxylic acids, reactive halogens, reactive esters, isocyanates, isothiocyanates, sulfonyl halides, carbodiimides, acyl azides, fluorobenzenes, carbonates, N-hydroxysuccinimide esters, imide esters, and fluorophenyl esters. In some embodiments, the pendant reactive functional group is selected from the group consisting of epoxides, aldehydes, carboxylic acids, reactive halogens, reactive esters, isocyanates, isothiocyanates, sulfonyl halides, carboniimides, acyl azides, fluorobenzenes, carbonates, N-hydroxysuccinimide esters, imide esters, and fluorophenyl esters and reacts with amine groups. In some embodiments, the pendant reactive functional group is selected from the group consisting of epoxides, thiols, disulfides, carbon-carbon double bonds, carbon-carbon triple bonds, maleimides, haloacetyls, pyridyl disulfides, thiosulfates, and reactive halogens.In some embodiments, the pendant reactive functional group is selected from the group consisting of epoxide, thiol, disulfide, carbon-carbon double bond, carbon-carbon triple bond, maleimide, haloacetyl, pyridyl disulfide, thiosulfate, and reactive halogen.

[0096] In some embodiments, the one or more monomers comprising a pendant reactive functional group are selected from the group consisting of glycidyl methacrylate, acrylamidooxime, acrylic anhydride, azelaic anhydride, maleic anhydride, hydrazide, acryloyl chloride, 2-bromoethyl methacrylate, and vinyl methyl ketone.

[0097] In some embodiments, the pendant reactive functional group is an aldehyde, hi some embodiments, the one or more monomers comprising a pendant reactive functional group is vinyl methyl ketone.

[0098] In some embodiments, the pendant reactive functional group is an amine.

[0099] In some embodiments, the pendant reactive functional group is an epoxide. In some embodiments, the one or more monomers comprising a pendant reactive functional group is glycidyl methacrylate.

[0100] In some embodiments, the pendant reactive functional group is hydroxyl.

[0101] In some embodiments, the first ligand comprises a first functional group. In some embodiments, the first ligand further comprises at least one grafted end group, and the first functional group is selected from the group consisting of cationic, anionic, hydrophobic, hydrophilic, thiophilic, hydrogen bond donating, hydrogen bond accepting, π-π bond donating, π-π bond accepting, metal chelating, biological molecule, and biological ion. In some embodiments, the first functional group is selected from the group consisting of cationic, anionic, hydrophobic, hydrophilic, thiophilic, hydrogen bond donating, hydrogen bond accepting, π-π bond donating, and π-π bond accepting.

[0102] In some embodiments, individual functionality is included through the incorporation of functional monomers, and in some embodiments, the relative amounts of each functional group can be easily and quickly tuned for optimal performance characteristics.

[0103] In some embodiments, the molecule comprises a first functional group, the molecule being selected from the group consisting of 2-(diethylamino)ethyl methacrylate, 2-aminoethyl methacrylate, 2-carboxyethyl acrylate, 2-(methylthio)ethyl methacrylate, acrylamide, N-acryloxysuccinimide, butyl acrylate or methacrylate, N,N-diethylacrylamide, N,N-dimethylacrylamide, 2-(N,N-dimethylamino)ethyl acrylate or methacrylate, N-[3-(N,N-dimethylamino)propyl]methacrylamide, N,N-dimethylacrylamide, ethyl acrylate or methacrylate, 2-ethylhexyl methacrylate, hydroxypropyl methacrylate, glycidyl acrylate or methacrylate, ethylene glycol phenyl ether methacrylate, methacrylamide, methacrylic anhydride, propyl acrylate or methacrylate. acrylate, N-isopropylacrylamide, styrene, 4-vinylpyridine, vinylsulfonic acid, N-vinyl-2-pyrrolidinone (VP), acrylamido-2-methyl-1-propanesulfonic acid, styrenesulfonic acid, alginic acid, (3-acrylamidopropyl)trimethylammonium halide, diallyldimethylammonium halide, 4-vinyl-N-methylpyridinium halide, vinylbenzyl-N-trimethylammonium halide, methacryloxyethyltrimethylammonium halide, 3-sulfopropyl methacrylate, 2-(2-methoxy)ethyl acrylate or methacrylate, hydroxyethylacrylamide, N-(3-methoxypropylacrylamide), N-[tris(hydroxymethyl)methyl]acrylamide, N-phenylacrylamide, N-tert-butylacrylamide or diacetone acrylamide.

[0104] In some embodiments, the first functional group is a metal chelating functional group, hi some embodiments, the first functional group comprises a metal chelating functional group selected from the group consisting of octadentate, hexadentate, tetradentate, tridentate, and bidentate iminodicarboxylic acids, iminodiacetic acids, and salts of iminodiacetic acids.

[0105] In some embodiments, the metal chelating functional group is complexed to a plurality of metal ions. In some embodiments, the metal chelating functional group is selected from the group consisting of iminodicarboxylic acids, iminodiacetic acids, and salts of iminodiacetic acids complexed with a plurality of metal ions selected from the group consisting of transition metal ions, lanthanide ions, poor metal ions, and alkaline earth metal ions. In some embodiments, the metal chelating functional group is selected from the group consisting of iminodicarboxylic acids, iminodiacetic acids, and salts of iminodiacetic acids complexed with a plurality of metal ions selected from the group consisting of nickel, zirconium, lanthanum, cerium, manganese, titanium, cobalt, iron, copper, zinc, silver, gallium, platinum, palladium, lead, mercury, cadmium, and gold. In some embodiments, the metal chelating functional group is iminodiacetic acid or a salt of iminodiacetic acid complexed with a plurality of metal ions, and the metal ions are nickel or zirconium.

[0106] In some embodiments, the first functional group is a biological molecule or a biological ion. In some embodiments, the first functional group comprises a biological molecule or a biological ion functional group selected from the group consisting of albumin, lysozyme, virus, cell, gamma-globulins of human and animal origin, immunoglobulins of both human and animal origin, recombinant or naturally occurring proteins including synthetic or naturally occurring polypeptides, interleukin-2 and its receptor, enzymes, monoclonal antibodies, antigens, lectins, bacterial immunoglobulin binding proteins, trypsin and its inhibitors, cytochrome C, myoglobulins, recombinant human interleukins, recombinant fusion proteins, protein A, protein G, protein L, peptide H, nucleic acid derived products, synthetic or naturally occurring DNA, and synthetic or naturally occurring RNA. In some embodiments, the first functional group comprises a biological molecule or biological ionic functional group selected from the group consisting of gamma globulins of human and animal origin, immunoglobulins of both human and animal origin, recombinant or naturally occurring proteins including synthetic or naturally occurring polypeptides, monoclonal antibodies, bacterial immunoglobulin binding proteins, recombinant fusion proteins, Protein A, Protein G, and Protein L. In certain embodiments, the first functional group comprises a biological molecule or biological ionic functional group selected from the group consisting of polypeptides, proteins, recombinant proteins, bacterial immunoglobulin binding proteins, recombinant fusion proteins, Protein A, Protein G, Protein L, and Peptide H.

[0107] In some embodiments, the first functional group comprises protein A. In some embodiments, the first functional group comprises protein A, including protein A derivatives and recombinant protein A, selected from the group consisting of polypeptides comprising cysteine ​​residues, proteins comprising cysteine ​​residues, recombinant proteins comprising cysteine ​​residues, bacterial immunoglobulin binding proteins comprising cysteine ​​residues, recombinant fusion proteins comprising cysteine ​​residues. In some embodiments, the first functional group comprises protein A, selected from the group consisting of proteins, peptides, or recombinant proteins comprising a ligand that binds to a monoclonal antibody (e.g., an IgG antibody) and a moiety that can form a covalent bond with a pendant reactive functional group. In some embodiments, the first functional group comprises protein A, selected from the group consisting of proteins, peptides, or recombinant proteins comprising a ligand that binds to an Fc domain of an antibody and a moiety that can form a covalent bond with a pendant reactive functional group. In some embodiments, the first functional group comprises protein A, selected from the group consisting of proteins, peptides, or recombinant proteins comprising a ligand that binds to a Fab domain of an antibody and a moiety that can form a covalent bond with a pendant reactive functional group.

[0108] In some embodiments, the first ligand comprises a first functional group and at least one grafted end group selected from the group consisting of aldehyde, amine, carbon-carbon double bond, carbon-carbon triple bond, epoxide, hydroxyl, thiol, and mixtures thereof. In some embodiments, at least one grafted end group is an aldehyde. In some embodiments, at least one grafted end group is an amine. In some embodiments, at least one grafted end group is a carbon-carbon double bond or a carbon-carbon triple bond. In some embodiments, at least one grafted end group is an epoxide. In some embodiments, at least one grafted end group is a hydroxyl. In some embodiments, at least one grafted end group is a thiol.

[0109] In certain embodiments, thiol-ene grafting is an attractive option for attaching biomolecules to the crosslinked polymer of the membrane. The reaction is fast, can be efficiently carried out in aqueous media, works well at room temperature, can be photoinitiated using relatively long wavelength light (365 nm), and therefore has very limited impact on protein bioactivity. In addition, it can allow controlled biomolecule attachment, which can be advantageous in terms of preserving the bioactivity and 3D structure of the biomolecule.

[0110] In certain embodiments, any biomolecule with a free thiol functional group can be immobilized on the composite material described herein. This can be very useful for creating biocompatible membranes for bioseparation or biocatalysis membranes (by immobilizing enzymes). In certain embodiments, the composite material can be functionalized with oligonucleotide probes for DNA detection.

[0111] In certain embodiments, the present invention provides a method for producing a pharmaceutical composition comprising: c. Any one of the preceding methods, further comprising the step of removing excess first ligand by flowing a first wash solution at a second flow rate substantially through or substantially across the composite material.

[0112] In certain embodiments, the present invention provides a method for producing a pharmaceutical composition comprising: d. flowing a quenching solution substantially through or substantially across the composite material at a third flow rate, the quenching solution including a reactive compound that converts any remaining pendant reactive functional groups to non-reactive groups; e. optionally, flowing a second cleaning liquid at a fourth flow rate substantially through or substantially across the composite material to remove any residual reactive compounds.

[0113] In some embodiments, the first solution of step b. is recirculated through or across the composite material.

[0114] In some embodiments, the quenching solution of step d. is recirculated through or across the composite material.

[0115] In certain embodiments, the present invention provides a method for producing a pharmaceutical composition comprising: c. optionally, flowing a first wash solution at a second flow rate substantially through or across the composite material to remove excess first ligand; d. flowing a second solution substantially through or substantially across the functionalized composite material at a third flow rate, the second solution comprising a plurality of second ligands comprising at least three reactive groups, the second ligands being a crosslinker and, optionally, a polymerizable monomer comprising at least two pendant reactive functional groups, thereby forming a plurality of covalent bonds between the reactive functional groups and the second ligands; The method according to any one of the preceding claims, further comprising:

[0116] In some embodiments, the second ligand is added in at least two portions. In some embodiments, the polymerizable monomer comprising at least two pendant reactive functional groups is added in at least two portions.

[0117] In some embodiments, the second ligand comprises a second functional group. In some embodiments, the second ligand further comprises at least one grafted end group, and the second functional group is selected from the group consisting of cationic, anionic, hydrophobic, hydrophilic, thiophilic, hydrogen bond donating, hydrogen bond accepting, π-π bond donating, π-π bond accepting, metal chelating, biological molecule, and biological ion. In some embodiments, the second functional group is selected from the group consisting of cationic, anionic, hydrophobic, hydrophilic, thiophilic, hydrogen bond donating, hydrogen bond accepting, π-π bond donating, and π-π bond accepting.

[0118] In some embodiments, the second ligand comprises a biological molecule or biological ion comprising at least one grafted end group selected from the group consisting of amine, hydroxyl and thiol functional groups. In some embodiments, the biological molecule or biological ion is selected from the group consisting of albumin, lysozyme, viruses, cells, gamma-globulins of human and animal origin, immunoglobulins of both human and animal origin, recombinant or naturally occurring proteins including synthetic or naturally occurring polypeptides, interleukin-2 and its receptor, enzymes, monoclonal antibodies, antigens, lectins, bacterial immunoglobulin binding proteins, trypsin and its inhibitors, cytochrome C, myoglobulins, recombinant human interleukins, recombinant fusion proteins, protein A, protein G, protein L, peptide H, nucleic acid derived products, synthetic or naturally occurring DNA and synthetic or naturally occurring RNA. In some embodiments, the biological molecule or biological ion is selected from the group consisting of gamma globulins of human and animal origin, immunoglobulins of both human and animal origin, recombinant or naturally occurring proteins including synthetic or naturally occurring polypeptides, monoclonal antibodies, antigens, bacterial immunoglobulin binding proteins, recombinant fusion proteins, Protein A, Protein G, Protein L, and Peptide H. In some embodiments, the second ligand is a polypeptide, a protein, a recombinant protein, a bacterial immunoglobulin binding protein, recombinant fusion proteins, Protein A, Protein G, Protein L, and Peptide H.

[0119] In some embodiments, the first ligand and the second ligand are the same. In some embodiments, the first ligand and the second ligand are different.

[0120] In some embodiments, the polymerizable monomer comprising at least two pendant reactive functional groups is poly(ethylene glycol) divinyl ether.

[0121] In certain embodiments, the present invention provides a method for producing a pharmaceutical composition comprising: e. Any one of the preceding methods, further comprising the step of flowing a second wash liquid at a fourth flow rate substantially through or substantially across the composite material to remove any excess second ligand and optionally any excess polymerizable monomer.

[0122] In certain embodiments, the present invention provides a method for producing a pharmaceutical composition comprising: f. flowing a quenching solution substantially through or substantially across the composite material at a fifth flow rate, the quenching solution comprising a reactive compound that converts any remaining pendant reactive functional groups to non-reactive groups; g. optionally, flowing a third cleaning fluid at a sixth flow rate substantially through or substantially across the composite material to remove any residual reactive compounds; The method according to any one of the preceding claims, further comprising:

[0123] In some embodiments, the present invention provides a method for coupling a ligand to a functionalized composite material, comprising the steps of: a. providing a functionalized composite material, i. a support member including a plurality of pores extending therethrough; and ii. a macroporous crosslinked gel, the macroporous crosslinked gel comprising a polymer formed from the reaction of one or more polymerizable monomers and one or more crosslinking agents, the macroporous crosslinked gel comprising a plurality of pendant reactive functional groups, the macroporous crosslinked gel located in the pores of the support member, the macropores of the macroporous crosslinked gel being smaller than the pores of the support member. and b. flowing a first solution substantially through or substantially across the functionalized composite material at a first flow rate, the first solution including a plurality of first ligands, whereby a plurality of covalent bonds are formed between the reactive functional groups and the first ligands; c. optionally removing excess first ligand by flowing a first wash solution substantially through or across said composite material at a second flow rate; d. flowing a quenching solution substantially through or substantially across the composite material at a third flow rate, the quenching solution including a reactive compound that converts any remaining pendant reactive functional groups to non-reactive groups; e. optionally, flowing a second cleaning fluid at a fourth flow rate substantially through or across the composite material to remove any residual reactive compounds; The method relates to methods in which the functionalized composite materials are arranged in a coplanar stack of coextensive sheets, a tubular configuration, or a spirally wound configuration.

[0124] In some embodiments, the present invention provides a method for coupling a ligand to a functionalized composite material, comprising the steps of: a. providing a functionalized composite material, i. a support member including a plurality of pores extending therethrough; and ii. a macroporous crosslinked gel, the macroporous crosslinked gel comprising a polymer formed from the reaction of one or more polymerizable monomers and one or more crosslinking agents, the macroporous crosslinked gel comprising a plurality of pendant reactive functional groups, the macroporous crosslinked gel located in the pores of the support member, the macropores of the macroporous crosslinked gel being smaller than the pores of the support member. and b. flowing a first solution substantially through or substantially across the functionalized composite material at a first flow rate, the first solution including a plurality of first ligands, whereby a plurality of covalent bonds are formed between the reactive functional groups and the first ligands; c. optionally removing excess first ligand by flowing a first wash solution substantially through or across said composite material at a second flow rate; d. flowing a second solution substantially through or substantially across the functionalized composite material at a third flow rate, the second solution comprising a plurality of second ligands comprising at least three reactive groups, the second ligands being a crosslinker and, optionally, a polymerizable monomer comprising at least two pendant reactive functional groups, thereby forming a plurality of covalent bonds between the reactive functional groups and the second ligands; e. optionally, flowing a second wash liquid substantially through or substantially across said composite material at a fourth flow rate to remove any excess second ligand and optionally any excess polymerizable monomer; f. flowing a quenching solution substantially through or substantially across said composite material at a fifth flow rate, said quenching solution comprising a reactive compound that converts any remaining pendant reactive functional groups to non-reactive groups; g. optionally, flowing a third cleaning fluid at a sixth flow rate substantially through or across said composite material to remove any residual reactive compounds; Further comprising: The method relates to methods in which the functionalized composite materials are arranged in a coplanar stack of coextensive sheets, a tubular configuration, or a spirally wound configuration.

[0125] In some embodiments, the functionalized composite material is a wet membrane.

[0126] In some embodiments, the wet membrane is placed in a holder that is attached to a chromatography system, and in some embodiments, various solutions and fluids (e.g., the first solution, the first wash solution, the second solution, the quench solution, the second wash solution, and the third wash solution) are pumped through the membrane holder.

[0127] In certain embodiments, the present invention relates to any one of the aforementioned methods, wherein the functionalized composite material is arranged in a coplanar stack of coextensive sheets, a tubular configuration, or a spirally wound configuration.

[0128] Membrane Stack In some embodiments, the composite material is arranged in a substantially coplanar stack of substantially coextensive sheets, hi some embodiments, the composite material has between 2 and 300 separate support members. In some embodiments, the composite material has 5, 10, 15, 20, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95, 100, 105, 110, 115, 120, 125, 130, 35, 140, 145, 150, 155, 160, 165, 170, 175, 180, 185, 190, 195, 200, 205, 210, 215, 220, 225, 230, 235, 240, 245, 250, 255, 260, 265, 270, 275, 280, 285, 290, 295, or 300 separate support members. In some embodiments, the composite material has between 5 and 200 distinct support members. In some embodiments, the composite material has between 5 and 100 distinct support members.

[0129] In some embodiments, when the composite material is arranged in a substantially coplanar stack of substantially coextensive sheets, one or more separate support members are separated by one or more interleaf layers. In some embodiments, the invention provides a method for preparing a composite material and an interleaf layer, the method comprising the steps of: (composite material-interleaf) x or (Interleaf-Composite) x), alternating layers of 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, , 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, and 100 separate interleaf layers. In some embodiments, the composite material has 1 to 50 separate interleaf layers. In some embodiments, the composite material has 1 to 25 separate interleaf layers.

[0130] In some embodiments, the interleaf is a flow dividing layer. In some embodiments, the interleaf layer extends beyond the edge of the composite layer. In some embodiments, the interleaf layer allows flow through the membrane while also providing a lower pressure drop across the stack since the solution can also flow around the membrane.

[0131] In some embodiments, when the composite material is arranged in a substantially coplanar stack of substantially coextensive sheets, the one or more separate support members, and optionally the one or more interleaf layers, are separated by one or more diverting layers. In some embodiments, the one or more diverting layers allow for uniform coupling within the stack. In some embodiments, the one or more diverting layers allow for more uniform coupling of the ligand to the composite material throughout the stack compared to coupling without a diverting layer. In some embodiments, the composite material has 1 to 250 separate diverting layers. In some embodiments, the composite material has 1 to 100 separate diverting layers. In some embodiments, the composite material is 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51 , 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, and 100 distinct flow distribution layers. In some embodiments, the composite material has 1 to 50 distinct flow distribution layers. In some embodiments, the composite material has 1 to 25 distinct flow distribution layers.

[0132] In some embodiments, one or more of the flow distribution layers are non-porous sheets. In some embodiments, one or more of the flow distribution layers are non-porous sheets containing holes. In some embodiments, the flow distribution layers are periodically distributed within the membrane stack. In some embodiments, the flow distribution layers are a composite layer and an interleaf layer (i.e., (composite-interleaf) x (Diversion) y or (Interleaf-Composite) x (Diversion) y ) is periodically distributed into the membrane stack containing the

[0133] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the support member comprises a polymeric material selected from the group consisting of polysulfone, polyethersulfone, polyphenylene oxide, polycarbonate, polyester, cellulose, and cellulose derivatives.

[0134] In some embodiments, the composite material is arranged in a tubular configuration.

[0135] Spiral winding configuration In some embodiments, the composite material is arranged in a substantially spirally wound configuration. In some embodiments, the substantially spirally wound configuration includes the composite material forming a layer wrapped around the inner core. In some embodiments, the substantially spirally wound configuration includes the composite material and an interleaf wrapped around the inner core.

[0136] Spiral wound interleaf In some embodiments, the present invention provides a method for preparing a composite material and an interleaf layer comprising: x or (Interleaf-Composite) x In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the layers of composite and interleaf are alternating layers of (interleaf-first composite-second composite). x or (first composite material - second composite material - interleaf) x In certain embodiments, the present invention relates to any one of the aforementioned methods, wherein the layers of composite material and interleaf are arranged in a combination of the aforementioned arrangements. In certain embodiments, the first composite material and the second composite material are the same.

[0137] In some embodiments, the composite material comprises about 3 to about 50 layers of composite material around the inner core.

[0138] In some embodiments, the invention relates to any one of the aforementioned methods (e.g., a membrane stack or a spiral wound configuration) in which the composite material is in contact with one or more interleaf layers. In some embodiments, the interleaf layer provides some mechanical support to the composite material.

[0139] In some embodiments, the interleaf helps reduce backpressure.

[0140] In some embodiments, the invention relates to any one of the aforementioned methods (e.g., membrane stacks or spiral wound configurations), wherein one or more interleaf layers are selected from the group consisting of screen, mesh, polypropylene, polyethylene, paper, and cellulose. In some embodiments, the interleaf is a screen or a nonwoven material. In some embodiments, the interleaf is a mesh. In some embodiments, the interleaf is polypropylene or polyethylene. In some embodiments, the interleaf is nonwoven polypropylene. In some embodiments, the interleaf is paper. In certain embodiments, the interleaf is cellulose.

[0141] In certain embodiments, the interleaf is a mesh. In certain embodiments, the mesh interleaf is an extruded net. In certain embodiments, the mesh interleaf is about 0.45 mm mesh. In certain embodiments, the mesh interleaf is a biplanar thermoplastic net. In certain embodiments, the mesh interleaf is substantially similar to Naltex (a specific biplanar thermoplastic net) manufactured by DelStar Technologies, Inc.

[0142] In a particular embodiment, the interleaf is a spunbond polypropylene. In a particular embodiment, the interleaf is about 0.70 oz / yd. 2 ~ approx. 0.95 oz / yd 2 In a particular embodiment, the interleaf is a spunbond polypropylene of about 0.70 oz / yd.2 , approx. 0.75 oz / yd 2 , approx. 0.80 oz / yd 2 , approx. 0.85 oz / yd 2 , approx. 0.90 oz / yd 2 Or about 0.95 oz / yd 2 In a particular embodiment, the interleaf is a spunbond polypropylene of about 0.86 oz / yd. 2 The fiber is a spunbond polypropylene of 1.0 g / m.

[0143] In certain embodiments, the interleaf is about 50 μm to about 300 μm thick, hi certain embodiments, the interleaf is about 50 μm, about 100 μm, about 150 μm, about 200 μm, about 250 μm, or about 300 μm thick.

[0144] In certain embodiments, the interleaf has a volume porosity of about 50% to about 99%. In certain embodiments, the interleaf has a volume porosity of about 70% to about 95%. In certain embodiments, the interleaf has a volume porosity of about 70%, about 75%, about 80%, about 85%, about 90% or about 95%. In certain embodiments, the interleaf has a volume porosity of about 80% to about 90%. In certain embodiments, the interleaf is substantially compressible.

[0145] In some embodiments, one or more interleaf layers are in contact with one or more flow distribution layers.

[0146] Spiral wound inner core In some embodiments, the inner core is a plastic, hi some embodiments, the inner core is polypropylene or polysulfone.

[0147] In some embodiments, the inner core is a cylinder, hi certain embodiments, the inner core is a cylinder that is capped or sealed at both ends.

[0148] In certain embodiments, the inner core is a cylindrical tube. In certain embodiments, the inner core is a perforated cylindrical tube. In certain embodiments, the inner core is a perforated cylindrical tube that is capped or sealed at one end.

[0149] In some embodiments, the inner core is a screen wrapped around a cylinder. In certain embodiments, the screen provides a path through which fluid can flow.

[0150] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the composite material is a membrane.

[0151] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the crosslinked gel is a neutral hydrogel, a charged hydrogel, a polyelectrolyte gel, a hydrophobic gel, a neutral gel, or a gel containing functional groups.

[0152] In some embodiments, the invention relates to any one of the aforementioned methods, wherein the macroporous crosslinked gel comprises macropores having an average size between 10 nm and 3000 nm.

[0153] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the pores of the support member have an average pore size from about 0.1 μm to about 50 μm.

[0154] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the fluid flow path passes substantially through the composite material.

[0155] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the fluid flow path substantially traverses the composite material.

[0156] Exemplary Methods for Making Composite Materials In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the ratio of pendant reactive functional groups to grafted end groups in the monomer mixture is from about 1:10 to about 2:1, e.g., about 1:10, about 1:9, about 1:8, about 1:7, about 1:6, about 1:5, about 1:4, about 1:3, about 1:2, about 1:1, or about 2:1. In some embodiments, an alkyne group is equivalent to two alkene groups.

[0157] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first monomer is present in the monomer mixture in an amount from about 5% to about 25% by weight of the monomer mixture. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first monomer is present in the monomer mixture in an amount from about 5% to about 20% by weight of the monomer mixture.

[0158] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the second monomer is present in the monomer mixture in an amount from about 0.1% to about 20% by weight of the monomer mixture.

[0159] In certain embodiments, the present invention relates to any one of the aforementioned methods, wherein the first crosslinker is present in the monomer mix in an amount from about 1% to about 20% by weight of the monomer mix.

[0160] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the photoinitiator is present in the monomer mixture in an amount from about 0.1% to about 2% by weight of the monomer mixture.

[0161] In a particular embodiment, the present invention relates to a photoinitiator comprising benzoin or a benzoin ether, benzophenone, dialkoxyacetophenone, 2,2-dimethoxy-2-phenylacetophenone, diphenyl(2,4,6 trimethylbenzoyl)phosphine oxide, hydroxyalkylphenone, 1-hydroxy-cyclohexyl-phenyl-ketone, 4-(2-hydroxyethoxy)phenyl-(2-hydroxy-2-propyl)ketone, 1-[4-(2-hydroxyethoxy)-phenyl]-2-hydroxy -2-methyl-1-propan-1-one, 2-hydroxy-1-[4-(2-hydroxyethoxy)phenyl]-2-methyl-1-propanone, α-hydroxymethylbenzoin sulfonic acid ester, 2-hydroxy-2-methylpropiophenone, lithium acylphosphinate or 2-methyl-1-[4-(methylthio)phenyl]-2-(4-morpholinyl)-1-propanone, 4,4'-azobis(4-cyanovaleric acid) (ACVA), or a mixture thereof.

[0162] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first solvent comprises N,N'-dimethylacetamide (DMAc), (±)-1,3-butanediol (butiol), di(propylene glycol) methyl ether acetate (DPMA), water, di(propylene glycol) dimethyl ether (DPM), di(propylene glycol) propyl ether (DPGPE), di(propylene glycol) methyl ether (DPGME), tri(propylene glycol) butyl ether (TPGBE), 3-methyl-1,3-butanediol, 3,3-dimethyl-1,2-butanediol, 3-methoxy-1-butanol, dimethyl sulfoxide (DMSO), ethylene glycol, di(ethylene glycol), tri(ethylene glycol), tetra(ethylene glycol), hexylene glycol, sodium dodecyl sulfate, or N,N-dimethylformamide (DMF), or a mixture thereof.

[0163] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein N,N'-dimethylacetamide (DMAc) is present in the monomer mixture in an amount of about 0% to about 70% by weight of the monomer mixture. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein N,N'-dimethylacetamide (DMAc) is present in the monomer mixture in an amount of about 0% to about 50% by weight of the monomer mixture. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein N,N'-dimethylacetamide (DMAc) is present in the monomer mixture in an amount of about 0% to about 70% by weight of total solvent. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein N,N'-dimethylacetamide (DMAc) is present in the monomer mixture in an amount of about 0% to about 50% by weight of total solvent.

[0164] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein (±)-1,3-butanediol (butiol) is present in the monomer mixture in an amount from about 0% to about 50% by weight of the monomer mixture. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein (±)-1,3-butanediol (butiol) is present in the monomer mixture in an amount from about 0% to about 50% by weight of total solvent.

[0165] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein di(propylene glycol) methyl ether acetate (DPMA) is present in the monomer mixture in an amount from about 0% to about 60% by weight of the monomer mixture. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein di(propylene glycol) methyl ether acetate (DPMA) is present in the monomer mixture in an amount from about 0% to about 60% by weight of total solvent.

[0166] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein water is present in the monomer mixture in an amount of about 0% to about 50% by weight of the monomer mixture. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein water is present in the monomer mixture in an amount of about 0% to about 30% by weight of the monomer mixture. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein water is present in the monomer mixture in an amount of about 0% to about 30% by weight of the total solvent.

[0167] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the coated support member is irradiated at about 350 nm.

[0168] In certain embodiments, the present invention relates to any one of the aforementioned methods, wherein the period of time is about 1 minute, about 5 minutes, about 10 minutes, about 15 minutes, about 20 minutes, about 30 minutes, about 45 minutes, or about 1 hour.

[0169] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the composite material comprises macropores.

[0170] In certain embodiments, the present invention relates to any one of the aforementioned methods, wherein the average pore size of the macropores is smaller than the average pore size of the pores.

[0171] Pore ​​size determination SEM and ESEM As mentioned above, in certain embodiments, the crosslinked gel is a macroporous crosslinked gel. The average diameter of the macropores in the macroporous crosslinked gel can be estimated by one of many methods. One method that can be used is scanning electron microscopy (SEM). SEM is an established method for determining pore size and porosity in general, and for characterizing membranes in particular. See the book "Basic Principles of Membrane Technology" by Marcel Mulder ((C)1996) ("Mulder"), especially chapter IV. Mulder provides an overview of methods for characterizing membranes. In the case of porous membranes, the first method mentioned is electron microscopy. SEM is a very simple and useful technique for characterizing microfiltration membranes. Clear and concise images of the membrane can be obtained for the top layer, cross section and bottom layer. In addition, the porosity and pore size distribution can be estimated from the photographs.

[0172] Environmental SEM (ESEM) is a technique that allows for non-destructive imaging of wet samples by allowing a gaseous environment in the sample chamber. Environmental secondary detectors (ESDs) require a gas background to function and operate at about 3 Torr to about 20 Torr. These pressure constraints limit the ability to vary the humidity in the sample chamber. For example, at 10 Torr, the relative humidity at a particular temperature is as follows:

[0173] [Table 1]

[0174] This is a useful guide to the relative humidity in the sample chamber at different temperatures. In certain embodiments, the relative humidity in the sample chamber during imaging is about 1% to about 99%. In certain embodiments, the relative humidity in the sample chamber during imaging is about 1%, about 2%, about 3%, about 4%, about 5%, about 6%, about 7%, about 8%, about 9%, about 10%, about 15%, about 20%, about 25%, about 30%, about 35%, about 40%, about 45%, about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, about 85%, about 90%, about 95% or about 99%. In certain embodiments, the relative humidity in the sample chamber during imaging is about 45%.

[0175] In certain embodiments, the microscope has nanometer resolution and a magnification of up to about 100,000X.

[0176] In certain embodiments, the temperature in the sample chamber during imaging is about 1° C. to about 95° C. In certain embodiments, the temperature in the sample chamber during imaging is about 2° C., about 3° C., about 4° C., about 5° C., about 6° C., about 7° C., about 8° C., about 9° C., about 10° C., about 12° C., about 14° C., about 16° C., about 18° C., about 20° C., about 25° C., about 30° C., about 35° C., about 40° C., about 45° C., about 50° C., about 55° C., about 60° C., about 65° C., about 70° C., about 75° C., about 80° C., or about 85° C. In certain embodiments, the temperature in the sample chamber during imaging is about 5° C.

[0177] In certain embodiments, the pressure in the sample chamber during imaging is about 0.5 Torr to about 20 Torr. In certain embodiments, the pressure in the sample chamber during imaging is about 4 Torr, about 6 Torr, about 8 Torr, about 10 Torr, about 12 Torr, about 14 Torr, about 16 Torr, about 18 Torr, or about 20 Torr. In certain embodiments, the pressure in the sample chamber during imaging is about 3 Torr.

[0178] In certain embodiments, the working distance from the electron beam source to the sample is about 6 mm to about 15 mm. In certain embodiments, the working distance from the electron beam source to the sample is about 6 mm, about 7 mm, about 8 mm, about 9 mm, about 10 mm, about 11 mm, about 12 mm, about 13 mm, about 14 mm, or about 15 mm. In certain embodiments, the working distance from the electron beam source to the sample is about 10 mm.

[0179] In certain embodiments, the voltage is about 1 kV to about 30 kV. In certain embodiments, the voltage is about 2 kV, about 4 kV, about 6 kV, about 8 kV, about 10 kV, about 12 kV, about 14 kV, about 16 kV, about 18 kV, about 20 kV, about 22 kV, about 24 kV, about 26 kV, about 28 kV, or about 30 kV. In certain embodiments, the voltage is about 20 kV.

[0180] In certain embodiments, the average pore size may be measured by estimating the pore size of a representative sample of images from the top or bottom of the composite material. Those skilled in the art will recognize and appreciate the various experimental variables associated with obtaining ESEM images of wet membranes and can design experiments accordingly.

[0181] Capillary Flow Porometry Capillary flow porometry is an analytical technique used to measure the pore size of porous materials. In this analytical technique, a wetting fluid is used to fill the pores of a test sample and the pressure of a non-reactive gas is used to displace the liquid from the pores. The gas pressure and flow rate through the sample are precisely measured and the pore size is determined using the following equation: The gas pressure required to remove the liquid from the pores is related to the size of the pores by the following equation: D=4×γ×cosθ / P D=pore diameter γ=liquid surface tension θ=liquid contact angle P = gas differential pressure

[0182] This equation shows that the pressure required to displace liquid from a wet sample is inversely proportional to the pore size. Because this technique involves the flow of liquid from the pores of the test sample under pressure, it is useful for characterizing "through pores" (interconnected pores that allow fluid flow from one side of the sample to the other). Other pore types (closed and blind pores) cannot be detected by this method.

[0183] Capillary flow porometry detects the presence of pores when gas begins to flow through them. This occurs only if the gas pressure is high enough to displace liquid from the most constricted part of the pore. Thus, the pore size calculated using this method is the diameter of the pore at its most constricted part, and each pore is detected as a single pore of this constricted diameter. The maximum pore size (called the bubble point) is determined by the minimum gas pressure required to initiate flow through the wet sample, and the average pore size is calculated from the average flow pressure. In addition, both the constricted pore size range and the pore size distribution can be determined using this technique.

[0184] The method can be performed on small membrane samples (e.g., about 2.5 cm in diameter) immersed in a test fluid (e.g., water, buffer, alcohol). The range of applied gas pressure can be selected from about 0 to about 500 psi.

[0185] Other methods for determining pore size Mulder describes other methods for characterizing the average pore size of porous membranes, including atomic force microscopy (AFM) (page 164), permeability calculations (page 169), gas adsorption-desorption (page 173), thermoporometry (page 176), perporometry (page 179), and liquid displacement (page 181). Mulder and the references cited therein are incorporated herein by reference.

[0186] Exemplary Uses of Composite Materials In certain embodiments, the invention relates to a method in which a fluid is passed through a cross-linked gel of any one of the aforementioned composite materials. By adjusting the conditions for binding or fractionation, good selectivity can be obtained.

[0187] In certain embodiments, the present invention provides a method for producing a pharmaceutical composition comprising: f. flowing a first fluid comprising the substance at a fifth flow rate substantially through or substantially across the composite material, thereby causing a portion of the substance to be adsorbed or absorbed onto the composite material.

[0188] In certain embodiments, the present invention provides a method for producing a pharmaceutical composition comprising: h. flowing a first fluid comprising the substance substantially through or substantially across the composite material at a seventh flow rate, thereby adsorbing or absorbing a portion of the substance onto the composite material.

[0189] In certain embodiments, the first fluid further comprises a fragmented antibody, an aggregated antibody, a host cell protein, a polynucleotide, an endotoxin, or a virus. In some aspects, the first fluid is a suspension of cells or a suspension of aggregates.

[0190] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the fluid flow path for the first fluid is substantially through the macropores of the composite material.

[0191] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the fluid flow paths of the first fluid are substantially perpendicular to the macropores of the composite material.

[0192] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein substantially all of the substance is adsorbed or absorbed onto the composite material after the first fluid flows substantially through or across the composite material.

[0193] In certain embodiments, the present invention provides a method for producing a pharmaceutical composition comprising: g. Any one of the preceding methods, further comprising the step of contacting a second fluid with the substance adsorbed or absorbed on the composite material at a sixth flow rate, thereby releasing a portion of the substance from the composite material.

[0194] In certain embodiments, the present invention provides a method for producing a pharmaceutical composition comprising: Any one of the aforementioned methods, further comprising the step of: i. contacting a second fluid with the substance adsorbed or absorbed on the composite material at an eighth flow rate, thereby releasing a portion of the substance from the composite material.

[0195] In some embodiments, the present invention provides a method for coupling a ligand to a functionalized composite material, comprising the steps of: a. providing a functionalized composite material, i. a support member including a plurality of pores extending therethrough; and ii. a macroporous crosslinked gel, the macroporous crosslinked gel comprising a polymer formed from the reaction of one or more polymerizable monomers and one or more crosslinking agents, the macroporous crosslinked gel comprising a plurality of pendant reactive functional groups, the macroporous crosslinked gel located in the pores of the support member, the macropores of the macroporous crosslinked gel being smaller than the pores of the support member. and b. flowing a first solution substantially through or substantially across the functionalized composite material at a first flow rate, the first solution including a plurality of first ligands, whereby a plurality of covalent bonds are formed between the reactive functional groups and the first ligands; c. optionally, flowing a first wash solution substantially through or across the composite material at a second flow rate to remove excess first ligand; d. flowing a quenching solution substantially through or substantially across the composite material at a third flow rate, the quenching solution including a reactive compound that converts any remaining pendant reactive functional groups to non-reactive groups; e. optionally, flowing a second cleaning fluid at a fourth flow rate substantially through or across said composite material to remove any residual reactive compounds; f. flowing a first fluid comprising a substance at a fifth flow rate substantially through or substantially across the composite material to adsorb or absorb a portion of the substance onto the composite material; g. contacting a second fluid at a sixth flow rate with the substance adsorbed or absorbed on the composite material, thereby releasing a portion of the substance from the composite material; The method relates to methods in which the functionalized composite materials are arranged in a coplanar stack of coextensive sheets, a tubular configuration, or a spirally wound configuration.

[0196] In some embodiments, the present invention provides a method for coupling a ligand to a functionalized composite material, comprising the steps of: a. providing a functionalized composite material, i. a support member including a plurality of pores extending therethrough; and ii. a macroporous crosslinked gel, the macroporous crosslinked gel comprising a polymer formed from the reaction of one or more polymerizable monomers and one or more crosslinking agents, the macroporous crosslinked gel comprising a plurality of pendant reactive functional groups, the macroporous crosslinked gel located in the pores of the support member, the macropores of the macroporous crosslinked gel being smaller than the pores of the support member; b. flowing a first solution substantially through or substantially across the functionalized composite material at a first flow rate, the first solution including a plurality of first ligands, whereby a plurality of covalent bonds are formed between the reactive functional groups and the first ligands; c. optionally, flowing a first wash solution substantially through or across the composite material at a second flow rate to remove excess first ligand; d. flowing a second solution substantially through or substantially across the functionalized composite material at a third flow rate, the second solution comprising a plurality of second ligands comprising at least three reactive groups, the second ligands being a crosslinker and, optionally, a polymerizable monomer comprising at least two pendant reactive functional groups, thereby forming a plurality of covalent bonds between the reactive functional groups and the second ligands; e. optionally, flowing a second wash liquid substantially through or substantially across said composite material at a fourth flow rate to remove any excess second ligand and optionally any excess polymerizable monomer; f. flowing a quenching solution substantially through or substantially across the composite material at a fifth flow rate, the quenching solution comprising a reactive compound that converts any remaining pendant reactive functional groups to non-reactive groups; g. optionally, flowing a third cleaning fluid at a sixth flow rate substantially through or across said composite material to remove any residual reactive compounds; h. flowing a first fluid comprising the substance at a seventh flow rate substantially through or substantially across the composite material to adsorb or absorb a portion of the substance onto the composite material; i. contacting a second fluid with the substance adsorbed or absorbed on the composite material at an eighth flow rate, thereby releasing a portion of the substance from the composite material; The method relates to methods in which the functionalized composite materials are arranged in a coplanar stack of coextensive sheets, a tubular configuration, or a spirally wound configuration.

[0197] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the fluid flow path for the second fluid is substantially through the macropores of the composite material.

[0198] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the fluid flow paths of the second fluid are substantially perpendicular to the macropores of the composite material.

[0199] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the substance is a biological molecule, a biological ion, a virus, or a viral particle.

[0200] In certain embodiments, the present invention relates to methods for separating biological molecules, such as proteins or immunoglobulins, or biological ions from a solution. In certain embodiments, the present invention relates to methods for purifying biological molecules, such as proteins or immunoglobulins, or biological ions. In certain embodiments, the present invention relates to methods for purifying proteins or monoclonal antibodies with high selectivity. In certain embodiments, the present invention relates to methods whereby biological molecules or biological ions retain their tertiary or quaternary structure, which may be important for retaining biological activity.

[0201] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the substance is a biological molecule or ion selected from the group consisting of albumin, lysozyme, viruses, cells, gamma-globulins of human and animal origin, immunoglobulins of human and animal origin, hIgG, proteins of recombinant and natural origin, polypeptides of synthetic and natural origin, interleukin-2 and its receptor, enzymes, monoclonal antibodies, trypsin and its inhibitors, cytochrome C, myoglobin, myoglobulins, alpha-chymotrypsinogen, recombinant human interleukins, recombinant fusion proteins, nucleic acid derived products, DNA of synthetic and natural origin, and RNA of synthetic and natural origin.

[0202] In some embodiments, the invention relates to a method for the treatment of cancer, comprising administering to a patient a therapeutically effective amount of a substance comprising: an agent selected from the group consisting of albumin, lysozyme, viruses, cells, gamma-globulins of human and animal origin, immunoglobulins of human and animal origin, hIgG, immunoglobulin M, proteins of recombinant and natural origin, such as recombinant human growth hormone, recombinant human insulin, recombinant follicle stimulating hormone, recombinant factor VII (antihemophilic factor), recombinant human erythropoietin, recombinant granulocyte colony stimulating factor, recombinant alpha-galactosidase a, recombinant iduronidase, recombinant galsulfase, recombinant dornase alfa, recombinant tissue plasminogen activator, recombinant human interferon, recombinant human erythropoietin ... The biological molecule or ion is selected from the group consisting of: recombinant insulin-like growth factor 1 and recombinant asparaginase), polypeptides of synthetic and natural origin, interleukin-2 and its receptor, enzymes, monoclonal antibodies, trypsin and its inhibitors, cytochrome C, myoglobin, myoglobulins, α-chymotrypsinogen, recombinant human interleukins, recombinant fusion proteins, Factor VIII, Factor IX, antithrombin III, alpha-I-antitrypsin, nucleic acid derived products, DNA of synthetic and natural origin, and RNA of synthetic and natural origin.

[0203] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the biological molecule or biological ion is lysozyme, hIgG, myoglobin, human serum albumin, soybean trypsin inhibitor, transferase, enolase, ovalbumin, ribonuclease, egg trypsin inhibitor, cytochrome c, annexin V, or α-chymotrypsinogen.

[0204] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the substance is a biological molecule or the biological ion is selected from the group consisting of gamma globulins of human and animal origin, immunoglobulins of both human and animal origin, recombinant or naturally occurring proteins including synthetic or naturally occurring polypeptides, monoclonal antibodies, antigens, bacterial immunoglobulin binding proteins, recombinant fusion proteins, Protein A, Protein G, Protein L and Peptide H.

[0205] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the substance is a biological molecule or the biological ion is selected from the group consisting of a polypeptide, a protein, a recombinant protein, a bacterial immunoglobulin binding protein, a recombinant fusion protein, Protein A, Protein G, Protein L, and Peptide H.

[0206] In certain embodiments, the present invention relates to a method for recovering antibody fragments from related variants, impurities or contaminants. In certain embodiments, the separation or purification of biological molecules or biological ions may occur substantially in the crosslinked gel. In certain embodiments, when the crosslinked gel has macropores, the separation or purification of biological molecules or biological ions may occur substantially in the macropores of the crosslinked gel.

[0207] In certain embodiments, the present invention relates to a method for reversible adsorption of a substance, in which the adsorbed substance can be released by altering the liquid flowing through the gel, in certain embodiments, the uptake and release of the substance can be controlled by varying the composition of the cross-linked gel.

[0208] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first fluid is a clarified cell culture supernatant.

[0209] In certain embodiments, the present invention relates to a method in which a substance may be applied to a composite material from a buffer solution. In certain embodiments, the present invention relates to any one of the aforementioned methods, wherein the first fluid is a buffer. In certain embodiments, the present invention relates to any one of the aforementioned methods, wherein the concentration of the buffer in the first fluid is about 5 mM, about 10 mM, about 15 mM, about 20 mM, about 25 mM, about 30 mM, about 35 mM, about 40 mM, about 50 mM, about 60 mM, about 70 mM, about 75 mM, about 80 mM, about 85 mM, about 90 mM, about 95 mM, about 0.1 M, about 0.11 M, about 0.12 M, about 0.13 M, about 0.14 M, about 0.15 M, about 0.16 M, about 0.17 M, about 0.18 M, about 0.19 M, or about 0.2 M.

[0210] In certain embodiments, the present invention relates to any one of the aforementioned methods, wherein the pH of the first fluid is about 5, about 5.5, about 6, about 6.5, about 7, about 7.5, about 8, about 8.5 or about 9.

[0211] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first fluid comprises sodium phosphate.

[0212] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first fluid comprises a salt. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the concentration of the salt in the first fluid is about 50 mM, about 60 mM, about 70 mM, about 75 mM, about 80 mM, about 85 mM, about 90 mM, about 95 mM, about 0.1 M, about 0.11 M, about 0.12 M, about 0.13 M, about 0.14 M, about 0.15 M, about 0.16 M, about 0.17 M, about 0.18 M, about 0.19 M, about 0.2 M, about 0.25 M, or about 0.3 M. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the salt is sodium chloride.

[0213] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the substance is a binding partner. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the composite material comprises a coupled ligand and the substance is a binding partner of the ligand.

[0214] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the concentration of the substance in the first fluid is from about 0.01 mg / mL to about 1,000 mg / mL. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the concentration of the substance in the first fluid is from about 0.2 mg / mL to about 10 mg / mL. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the concentration of the substance in the first fluid is about 0.2 mg / mL, about 0.3 mg / mL, about 0.4 mg / mL, about 0.5 mg / mL, about 0.6 mg / mL, about 0.7 mg / mL, about 0.8 mg / mL, about 0.9 mg / L, about 1 mg / mL, about 1.2 mg / mL, about 1.4 mg / mL, about 1.6 mg / mL, about 1.8 mg / mL, about 2 mg / mL, about 3 mg / mL, about 4 mg / mL, about 5 mg / mL, about 6 mg / mL, about 7 mg / mL, about 8 mg / mL, about mg / mL, or about 10 mg / mL.

[0215] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first flow rate, the second flow rate, the third flow rate, the fourth flow rate, the fifth flow rate, the sixth flow rate, the seventh flow rate, and the eighth flow rate are each independently selected from about 1 membrane volume (MV) / min to about 75 MV / min. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first flow rate, the second flow rate, the third flow rate, the fourth flow rate, the fifth flow rate, the sixth flow rate, the seventh flow rate, and the eighth flow rate are each independently selected from about 3 membrane volume (MV) / min to about 70 MV / min. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first flow rate, the second flow rate, the third flow rate, the fourth flow rate, the fifth flow rate, the sixth flow rate, the seventh flow rate, and the eighth flow rate are each independently selected from about 5 MV / min to about 50 MV / min. In certain embodiments, the present invention provides a method for controlling the flow rate of a first flow rate, a second flow rate, a third flow rate, a fourth flow rate, a fifth flow rate, a sixth flow rate, a seventh flow rate, and an eighth flow rate, each independently being about 5 MV / min, about 6 MV / min, about 7 MV / min, about 8 MV / min, about 9 MV / min, about 10 MV / min, about 11 MV / min, about 12 MV / min, about 13 MV / min, about 14 MV / min, about 15 MV / min, about 16 MV / min, about 17 MV / min, about 18 MV / min, about 19 MV / min, about 20 MV / min, about 20 MV / min, about 21 MV / min, about 22 MV / min, about 23 MV / min, about 24 MV / min, about 25 MV / min, any one of the aforementioned methods, wherein the MV / min is selected from the group consisting of about 26MV / min, about 27MV / min, about 28MV / min, about 29MV / min, about 30MV / min, about 30MV / min, about 31MV / min, about 32MV / min, about 33MV / min, about 34MV / min, about 35MV / min, about 36MV / min, about 37MV / min, about 38MV / min, about 39MV / min, about 40MV / min, about 40MV / min, about 41MV / min, about 42MV / min, about 43MV / min, about 44MV / min, about 45MV / min, about 46MV / min, about 47MV / min, about 48MV / min, about 49MV / min, and about 50MV / min. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first flow rate, the second flow rate, the third flow rate, the fourth flow rate, the fifth flow rate, the sixth flow rate, the seventh flow rate, and the eighth flow rate are each independently selected from about 10 MV / min to about 20 MV / min.

[0216] In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first flow rate, the second flow rate, the third flow rate, the fourth flow rate, the fifth flow rate, the sixth flow rate, the seventh flow rate, and the eighth flow rate are each independently selected from about 0.5 mL / min to about 50 L / min. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first flow rate, the second flow rate, the third flow rate, the fourth flow rate, the fifth flow rate, the sixth flow rate, the seventh flow rate, and the eighth flow rate are each independently selected from about 0.5 mL / min to about 25 L / min. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first flow rate, the second flow rate, the third flow rate, the fourth flow rate, the fifth flow rate, the sixth flow rate, the seventh flow rate, and the eighth flow rate are each independently selected from about 0.5 mL / min to about 10 L / min. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first flow rate, the second flow rate, the third flow rate, the fourth flow rate, the fifth flow rate, the sixth flow rate, the seventh flow rate, and the eighth flow rate are each independently selected from about 0.5 mL / min to about 1 L / min. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first flow rate, the second flow rate, the third flow rate, the fourth flow rate, the fifth flow rate, the sixth flow rate, the seventh flow rate, and the eighth flow rate are each independently selected from about 0.5 mL / min to about 0.5 L / min. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first flow rate, the second flow rate, the third flow rate, the fourth flow rate, the fifth flow rate, the sixth flow rate, the seventh flow rate, and the eighth flow rate are each independently selected from about 0.5 mL / min to about 100 mL / min. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first flow rate, the second flow rate, the third flow rate, the fourth flow rate, the fifth flow rate, the sixth flow rate, the seventh flow rate, and the eighth flow rate are each independently selected from about 0.5 mL / min to about 10 mL / min. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first flow rate, the second flow rate, the third flow rate, the fourth flow rate, the fifth flow rate, the sixth flow rate, the seventh flow rate, and the eighth flow rate are each independently selected from about 0.5 mL / min to about 2 mL / min.In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the first flow rate, the second flow rate, the third flow rate, the fourth flow rate, the fifth flow rate, the sixth flow rate, the seventh flow rate, and the eighth flow rate are each independently selected from the group consisting of 0.5 mL / min, about 0.6 mL / min, about 0.7 mL / min, about 0.8 mL / min, about 0.9 mL / min, about 1 mL / min, about 1.1 mL / min, about 1.2 mL / min, about 1.3 mL / min, about 1.4 mL / min, about 1.5 mL / min, about 1.6 mL / min, about 1.7 mL / min, and about 1.8 mL / min.

[0217] In certain embodiments, the present invention relates to a method in which the substance may be eluted using aqueous salt solutions of various concentrations and pH. In certain embodiments, the present invention relates to any one of the aforementioned methods, wherein the second fluid is a buffer. In certain embodiments, the present invention relates to any one of the aforementioned methods, wherein the second fluid comprises glycine-HCl or sodium citrate. In certain embodiments, the present invention relates to any one of the aforementioned methods, wherein the second fluid comprises glycine-HCl or sodium citrate at a concentration of about 5 mM to about 2 M. In certain embodiments, the present invention relates to any one of the aforementioned methods, wherein the second fluid comprises about 5 mM, about 10 mM, about 20 mM, about 30 mM, about 40 mM, about 50 mM, about 60 mM, about 70 mM, about 80 mM, about 90 mM, about 100 mM, about 125 mM, about 150 mM, about 200 mM, about 300 mM, or about 400 mM glycine-HCl or sodium citrate.

[0218] In certain embodiments, the present invention relates to any one of the aforementioned methods, wherein the second fluid has a pH of about 2 to about 8. In certain embodiments, the invention relates to any one of the aforementioned methods, wherein the pH of the second fluid is about 2, about 2.2, about 2.4, about 2.6, about 2.8, about 3, about 3.2, about 3.4, about 3.6, about 3.8, about 4, about 4.2, about 4.4, about 4.6, about 4.8, about 5, about 5.2, about 5.4, about 5.5, about 5.6, about 5.7, about 5.8, about 5.9, about 6, about 6.1, about 6.2, about 6.3, about 6.4, about 6.5, about 6.6, about 6.7, about 6.8, about 6.9, about 7.0, about 7.1, about 7.2, about 7.3, about 7.4, about 7.5, about 7.6, about 7.7, about 7.8, about 7.9, and about 8.0.

[0219] In certain embodiments, the present invention relates to methods that exhibit high binding capacity. In some embodiments, the binding capacity of the composite material was higher using flow-through conjugation methods compared to using batch or dead-end conjugation methods. In certain embodiments, the present invention provides a method that exhibits a binding capacity of about 1 mg / mL at 10% breakthrough. 膜 , about 2mg / mL 膜 , about 3mg / mL 膜 , about 4mg / mL 膜 , about 5mg / mL 膜 , about 6mg / mL 膜 , about 7mg / mL 膜 , about 8mg / mL 膜 , about 9 mg / mL 膜 , about 10mg / mL 膜 , about 12mg / mL 膜 , about 14mg / mL 膜 , about 16mg / mL 膜 , about 18mg / mL 膜 , about 20mg / mL 膜 , about 30mg / mL 膜 , about 40mg / mL 膜 , about 50mg / mL 膜 , about 60mg / mL 膜 , about 70mg / mL 膜 , about 80mg / mL 膜 , about 90mg / mL 膜 , about 100mg / mL, about 110mg / mL 膜, about 120mg / mL 膜 , about 130mg / mL 膜 , about 140mg / mL 膜 , about 150mg / mL 膜 , about 160mg / mL 膜 , about 170mg / mL 膜 , about 180mg / mL 膜 , about 190mg / mL 膜 , about 200mg / mL 膜 , about 210mg / mL 膜 , about 220mg / mL 膜 , about 230mg / mL 膜 , about 240mg / mL 膜 , about 250mg / mL 膜 , about 260mg / mL 膜 , about 270mg / mL 膜 , about 280mg / mL 膜 , about 290mg / mL 膜 , about 300mg / mL 膜 , about 320mg / mL 膜 , about 340mg / mL 膜 mg / mL 膜 , about 360mg / mL 膜 , about 380mg / mL 膜 or about 400 mg / mL 膜 This invention relates to a method for indicating the binding capacity of a protein. EXAMPLES

[0220] The following examples are provided by way of illustration. However, it will be understood that the specific details given in each example have been selected for illustrative purposes and should not be construed as limiting the scope of the present disclosure. In general, unless otherwise stated, the experiments were performed under similar conditions.

[0221] Example 1 - General Materials and Methods protein rProtein A-cys was obtained from Biomedal SL (Seville, Spain). Polyclonal immune γ-globulin IgG was obtained from Equitech-Bio Inc. (Carville, TX, USA).

[0222] Preparation of membranes Protocol A The crosslinker and monomers (except for the thiol-functionalized monomer, which was added 10 min prior to casting) were added to the solvent mixture along with the photoinitiator (IRGACURE 2959), and the mixture was stirred long enough to dissolve all the components. A pre-weighed 7" x 8" porous support substrate sheet (non-woven polypropylene mesh) was placed on the polyethylene sheet, and then about 15 g of the polymer solution was poured onto the substrate sheet. The impregnated substrate was subsequently covered with another polyethylene sheet. The sheet was gently pressed by hand in a circular motion to remove excess solution and trapped air bubbles. The polymerization process was initiated by irradiating the polymer solution / substrate sandwiched between the polyethylene sheets with UV light (about 350 nm) for 10 min in a closed chamber. The resulting membrane was then removed from between the polyethylene sheets and subjected to extensive washing cycles (2-3 times) with immersion periods of 20-30 min in purified (RO) water with stirring. The clean membrane was dried by hanging freely in air at room temperature for about 16 h.

[0223] Protocol B The membranes were fabricated by UV-initiated polymerization of acrylate and / or acrylamide monomers and crosslinkers within the supporting mesh material. By introducing suitable functional polymerizable groups into the gel polymerization solution, a variety of functional membranes containing protein binding groups (e.g., ion exchange, hydrophobic interaction, and hydrophilic interaction) can be produced in a single polymerization step. The wet-washed membranes can also be subjected to an additional heat treatment step to tailor their performance and properties.

[0224] For example, epoxy-containing membranes can serve as reactive media platforms that can be converted into biocompatible membranes by covalently anchoring various ligands onto the surface, such as protein A. Other ligands can also be conjugated to other target biomolecules or entities such as viruses.

[0225] Mass gain, wetting and permeability of composite membranes The weight of the dried membrane was measured and used to calculate the mass gain. Wetting of the membrane was also determined by dispensing a 50 μL drop of distilled water onto the membrane surface and measuring the time required for the drop to be absorbed into the membrane. To estimate membrane permeability, the flux of each membrane was determined using RO water (or acetate buffer pH 5) and a 7.7 cm diameter membrane sample using an applied pressure of 100 kPa.

[0226] To estimate membrane permeability, the flux of RO water (or 132 mM acetate buffer pH 5) as the mobile phase through each membrane was determined. The amount of test liquid passing through a circular membrane coupon with a diameter of 7.7 cm (actual available diameter 7.3 cm) under an applied pressure of 100 kPa was determined after the membrane was presoaked in the test liquid for at least 10 min prior to testing and flushed with approximately 300 mL of test liquid. The flux was expressed as the amount of liquid per surface area per time (kg / m 2 h).

[0227] Imaging of porous structures To probe the gel structure and porosity, the membranes in the wet state were imaged using an environmentally controlled scanning electron microscope (ESEM). Small coupons (approximately 7 × 5 mm) were wetted by immersion in distilled water for 10-15 min and then examined using an ESEM instrument (FEI QuantaFEG 250 ESEM). The samples were placed on a cooling stage and the temperature was adjusted to 5 °C, and images were examined at low pressure levels (4.5-5.5 Torr) and relative humidity of 50-55%.

[0228] To probe the membrane structure in the dry state, the gold-coated membranes were imaged using a Tescan Vega II LSU scanning electron microscope (SEM) (Tescan, PA, USA) with voltages set at 10–20 kV.

[0229] Pore ​​size measurement Membrane pore size (diameter) was measured using a CFP-1500-AE capillary flow porometer (Porous Materials Inc., Ithaca, NY) operated by CapWin software (V.6).

[0230] A small disk of membrane (2.5 cm diameter) was immersed in Galwick® wetting fluid (Porous Materials Inc., surface tension = 15.9 dynes / cm) for 10 minutes, then it was gently squeezed between two pre-wetted filter paper disks (Whatman 5-70 mm) to remove excess solution, and the thickness of the wet membrane was determined using a micrometer. The membrane disk was then placed on a 2.5 cm stainless steel mesh support disk. The support disk loaded with the test membrane was placed in a designated holder with the membrane facing up. A metal cover was then gently placed on the holder, and the test was performed within a pressure range of 0-200 psi.

[0231] Density of Protein A ligands on composite membranes To measure Protein A ligand density on coupled membranes, the amount of uncoupled protein remaining after the coupling reaction was determined and subtracted from the total ligand amount to obtain the amount of coupled ligand, which was then divided by the membrane volume (mL) to express the density in mg of ligand per mL of membrane.

[0232] To determine the amount of Protein A in solution, a series of protein solutions in 0.1 M phosphate buffer (pH 7.2) were prepared, the absorbance at 280 nm was measured for each, and a calibration curve was constructed to determine the slope.

[0233] For the selected membrane formulas, 4 cm x 7 cm coupons were cut and their thicknesses were measured, from which the volumes were calculated. Coupling reactions were carried out as outlined above, with 20 mg individually loaded into each membrane coupling reaction. Once the UV reaction was complete, the reaction solution was collected in a tube, which was then used to wash the membrane by adding 3-5 mL of 0.1 M phosphate buffer to the reaction bag and shaking for 20-25 minutes, and then the resulting solution was added to the collection tube.

[0234] After two more wash cycles, the final solution absorbance was measured and the amount of uncoupled protein was calculated using the slope of the standard curve. The amount of coupled ligand was determined by taking the difference between the total reaction volume and the uncoupled amount.

[0235] Coupling capacitance measurement Biocompatible IgG binding capacity A 25 mm diameter membrane disk was placed in a 25 mm Natrix-StainlessSteel (SS) holder. Equilibration was achieved by passing 20 mL of binding buffer (20 mM sodium phosphate, 150 mM NaCl, pH 7.4) through the disk (approximately 160–200 bed volumes / min). In the binding step, 0.5 mg / mL polyclonal IgG in binding buffer was passed through at a flow rate of 1 mL / min until the UV absorbance of the effluent exceeded 10% of the feed solution, then 10–15 mL of buffer was passed through to remove unbound protein at a flow rate of 2 mL / min. In the elution step, bound IgG was eluted by passing 10–14 mL of elution buffer (0.1 M glycine-HCl, or 0.1 M sodium citrate, both pH 3) through the disk at a flow rate of 2 mL / min.

[0236] Cation exchange IgG binding capacity The 25 mm membrane disks were placed in a 25 mm Natrix-SS holder and equilibration was achieved by passing 20 mL of binding buffer (132 mM sodium acetate, pH 5.0). A protein solution (0.5 mg / mL human polyclonal IgG (Equitech-Bio Inc.) in binding buffer) was then passed through until the UV absorbance of the eluate was greater than 10% of the feed solution, and then 10-15 mL of buffer was passed through the cells to wash out unbound proteins. In the elution step, 10 mL of elution buffer (132 mM sodium acetate, 1 M NaCl, pH 5.0, or 50 mM Tris, 0.5 M NaCl, pH 8.5) was passed through to elute bound IgG.

[0237] Hydrophobic interaction mode IgG binding capacity The 25 mm membrane disks were placed in a 25 mm Natrix-SS holder and equilibration was achieved by passing 20 mL of binding buffer (50 mM sodium phosphate, 1 M ammonium sulfate, pH 6.5). A protein solution (0.5 mg / mL human polyclonal IgG (Equitech-BioInc.) in binding buffer) was then passed through until the UV absorbance of the eluate was greater than 10% of the feed solution. Subsequently, 15–20 mL of buffer was passed through the cells to wash out unbound proteins. In the elution step, 10 mL of elution buffer (50 mM sodium phosphate, pH 7.0) was passed through to elute bound IgG.

[0238] Example 2 - Exemplary Bulk Coupling Protocol Conjugation of Protein A Ligands for Clicking Alkene Membranes To investigate the feasibility of chemically attaching biomolecules (bearing thiol functional groups) to alkene membranes via the hydrothiolation click reaction, engineered Protein A ligands containing cysteine ​​residues were coupled to alkene membranes (of different chemical formulas) and the biological activity of the immobilized ligands was investigated.

[0239] Protein A ligand lyophilized powder (r-Protein A-cys) was dissolved in PBS (20 mM sodium phosphate, 0.15 M NaCl, pH 7.4) to make a stock solution of 50 mg / mL. To make the coupling solution for each membrane, 0.4 mL of the ligand stock solution was transferred to a small Ziploc® plastic bag (5×8 cm) to which 1.6 mL of 2 M phosphate buffer (pH 7.2) was added, followed by 50 μL of initiator (4,4′-azobis(4-cyanovaleric acid), ACVA) in DMAc (150 mg / mL). The reaction solution was mixed well. The final reaction solution had a volume of about 2.0 mL and contained about 20 mg of ligand and about 7.5 mg of initiator.

[0240] Alternatively, to avoid the use of DMAc, ACVA was dissolved in reaction buffer (2 M phosphate, pH 7.2) at a concentration of 5 mg / mL. For low-salt experiments, the initiator was dissolved in 0.5 M phosphate at a concentration of 7.5 mg / mL.

[0241] A 4 x 7 cm membrane coupon (pre-wetted in water) was added to the bag loaded with the coupling reactant. The bag was shaken for 1 min and then irradiated with UV light (approximately 365 nm) for 10 min. After irradiation was completed, the coupling solution was decanted, then 15-20 mL of wash buffer (0.1 M phosphate, pH 7.2) was added and the membrane was placed on a shaker for 10-15 min. The wash cycle was repeated three times, after which the membrane was either (i) transferred to 8 mL of trehalose solution (10 wt%), shaken for 10-15 min and dried in an oven (50 °C) for 20-30 min or (ii) stored in 0.1 M phosphate buffer.

[0242] For coupling in the presence of additives, ACVA was dissolved in 0.5 M potassium phosphate (pH 7.2) to make a solution with a concentration of 7.5 mg / mL. Protein A ligand was dissolved in 20 mM sodium phosphate buffer (pH 7.2) to make a stock solution of 50 mg / mL. In each of three small bags (5 x 8 cm), 0.25 mL of ligand stock solution was mixed with 0.25 mL of initiator solution and 50 μL of additive was added (cysteamine-HCl in reaction B bag and 1-mercaptoethanol in reaction C bag).

[0243] After the reaction solution was mixed well, a 25 mm diameter membrane disk was placed into each bag, the reaction bags were shaken well, and then irradiated with UV light for 10 min. The reaction solution was decanted, and the membrane coupons were then washed three times using 0.1 M sodium phosphate buffer (pH 7.2) and shaken for 10-15 min. The composite membrane coupons were stored in buffer (0.1 M sodium phosphate, pH 7.2) and tested for bioaffinity for IgG protein as outlined above.

[0244] Example 3 - Flow-through ligand conjugation effect A sample disk of wet membrane containing pendant reactive functional groups was placed in a stainless steel holder and mounted in an AKTA chromatography system. The affinity ligand solution was pumped into the membrane holder at a defined flow rate for a predefined time. A wash solution was then pumped into the holder, followed by a quench solution containing a reactive compound that converts the remaining membrane pendant groups into non-reactive groups. Finally, a wash solution was pumped into the holder. The pump was stopped, the holder was removed from the AKTA, and the holder was disassembled to remove the conjugated membrane. The human IgG dynamic binding capacity of the conjugated membrane (Protein A affinity ligand) was measured at a flow rate of 10 membrane volumes / min and compared to membranes conjugated in a batch non-flow-through method (see Figure 3). The dynamic binding capacity of the membrane was observed to be consistently higher when flow-through conjugation was used.

[0245] Example 4 - Protein A coupling by flow through a stack of membranes without periodic flow plates. A header containing a porous frit was attached to the bottom of a 44 mm inner diameter glass chromatography column (VANTAGE®L Laboratory Column VL 44x250, catalog number 96440250). A circular membrane 30 mm in diameter and approximately 350 microns thick (0.25 mL volume) was then placed on the frit inside the column so that it was an equal distance from the column wall. The membrane had a surface containing epoxide groups. A circular piece of 44 mm diameter polypropylene screen (1:2 twill weave, 500 micron mesh opening) was then placed on the column and lowered so that it was flat on the membrane and in contact with the inner wall of the column. Another 30 mm diameter membrane was then placed in the column and lowered so that it was flat on the screen and equidistant from the column wall. The process of placing screens on membranes and then membranes on screens was repeated until the column contained 100 membranes layered between 99 screens (total volume 25 mL). A header was then added to the top of the column and lowered until the membrane and screen layers were compressed to a height of 9.5 cm.

[0246] Next, tubing was added to the inlet at the bottom of the column and to the outlet at the top of the column. The inlet tubing was connected through a peristaltic pump that allowed for controlled flow of the solution through the column.

[0247] The air in the column and tubing was replaced with PBS buffer consisting of 20 mM sodium phosphate with 150 mM sodium chloride at pH 7.4. The inlet tubing was placed in a glass bottle containing 400 mL of PBS buffer and the outlet tubing was directed to waste. The pump was then started and 200 mL of PBS buffer was run through the column at a rate of 50 mL / min for 4 minutes. The pump was stopped and the column was inverted. The connections of the inlet and outlet tubing to the column were then swapped so that the inlet was again at the bottom of the column and the outlet was at the top of the column. The pump was started and an additional 200 mL of PBS buffer was run through the column at a rate of 50 mL / min for 4 minutes.

[0248] The pump was stopped and the inlet tube was transferred to a glass bottle containing 500 mL of coupling buffer composed of 1.35 M potassium phosphate, pH 9.0. The outlet tube remained pointed to waste. The pump was started and 200 mL of coupling buffer was run through the column at a rate of 50 mL / min for 4 minutes. The pump was stopped and the outlet tube was placed in the same glass bottle as the inlet tube containing the remaining 300 mL of coupling buffer. This configuration, with the inlet and outlet tubes in the same bottle, allows the solution to be recirculated through the column multiple times. By recirculating the solution through the column, the reaction time can be extended without increasing the volume of solution required.

[0249] To the vial containing the remaining 300 mL of coupling buffer, 82.4 mL of PrA ligand stock solution at a concentration of 25.8 g / L in water was added. After starting the pump, the PrA solution was recirculated through the column at a flow rate of 50 mL / min for 4 hours. The total volume of PrA solution recirculated through the column was calculated to be 422.4 mL, which consisted of the 300 mL of coupling buffer remaining in the vial, the 40 mL of coupling buffer remaining in the column / tube, and the addition of 82.4 mL of PrA stock solution. Assuming that the 82.4 mL of stock PrA ligand solution containing 2.12 g of PrA ligand was diluted to a volume of 422.4 mL, the PrA solution recirculated in the system was calculated to have a concentration of 5 g / L. The ligand loading on the membrane was calculated by dividing the total mass of PrA ligand, 2.12 g, by the total membrane load of 25 mL to give a ligand loading of 85 g / L.

[0250] After 4 hours, the pump was stopped and the outlet tubing was directed to waste. The inlet tubing was placed into a glass bottle containing 200 mL of PBS buffer. The pump was started and PBS buffer was allowed to flow through the column at a flow rate of 50 mL / min for 4 minutes.

[0251] The pump was then stopped and the inlet tube was placed into a vial containing 800 mL of 1 M ethanolamine. The outlet tube was left pointed to waste. The pump was started and 200 mL of 1 M ethanolamine was run through the column to waste at a flow rate of 50 mL / min for 4 minutes. The pump was stopped and the outlet tube was pointed to a vial containing the remaining 600 mL of 1 M ethanolamine solution. The pump was then started and the remaining 600 mL of 1 M ethanolamine solution was recirculated through the column at a flow rate of 50 mL / min for 3 hours.

[0252] The pump was stopped and the outlet tubing was directed to waste. The inlet tubing was placed into a glass bottle containing 200 mL of PBS buffer. The pump was started and PBS buffer was allowed to flow through the column at a flow rate of 50 mL / min for 4 minutes.

[0253] The pump was stopped and the top column header was removed. The membrane was removed and stored in PBS buffer. The flux and IgG dynamic binding capacity of several membranes at different positions in the stack were determined. Position #1 was closest to the column inlet and position #100 was closest to the column outlet. It was found that there was no significant deviation in membrane flux with varying positions (Table 1). Membranes at positions 60 and 80 were found to have much lower IgG dynamic binding capacity, suggesting that the flow distribution in the column was not uniform.

[0254] [Table 2]

[0255] Example 5 - Protein A coupling by flow through a stack of membranes with periodic flow-through plates. A header containing a porous frit was attached to the bottom of a 44 mm inner diameter glass chromatography column (VANTAGE® L Laboratory Column VL 44x250, catalog number 96440250). A dividing layer was then constructed from a circular impermeable plastic sheet approximately 0.025 inches thick and 44 mm in diameter, with a 6 mm diameter hole in the center, lowered flat onto the porous frit. Two circular pieces of polypropylene screen (1:2 twill, 500 micron mesh openings) with a diameter of 44 mm were then placed on top of the dividing layer. A circular membrane 30 mm in diameter and approximately 350 microns thick (volume 0.25 mL) was then placed on the screens at equal distances from the wall of the column. The membrane had a surface containing epoxide groups. Another circular piece of polypropylene screen was lowered flat onto the membrane. The process of adding a membrane layer followed by a polypropylene screen layer was repeated nine more times until the column had the following composition shown in FIG. 4:

[0256] The process of assembling the layers into a column as described above was repeated nine more times until the column contained 100 membrane layers (total volume 25 mL), 120 screen layers, and 10 flow-division layers. An additional flow-division layer was then added to the stack and a header with a porous frit was added to the top of the column. The header was lowered until the membrane, screen, and flow distributor layers were compressed to a height of 10.5 cm.

[0257] Next, tubing was added to the inlet at the bottom of the column and to the outlet at the top of the column. The inlet tubing was connected through a peristaltic pump that allowed for controlled flow of the solution through the column.

[0258] The air in the column and tubing was replaced with PBS buffer consisting of 20 mM sodium phosphate with 150 mM sodium chloride at pH 7.4. The inlet tubing was placed in a glass bottle containing 400 mL of PBS buffer and the outlet tubing was directed to waste. The pump was then started and 200 mL of PBS buffer was run through the column at a rate of 50 mL / min for 4 minutes. The pump was stopped and the column was inverted. The connections of the inlet and outlet tubing to the column were then swapped so that the inlet was again at the bottom of the column and the outlet was at the top of the column. The pump was started and an additional 200 mL of PBS buffer was run through the column at a rate of 50 mL / min for 4 minutes.

[0259] The pump was stopped and the inlet tube was transferred to a glass bottle containing 500 mL of coupling buffer composed of 1.35 M potassium phosphate, pH 9.0. The outlet tube remained pointed to waste. The pump was started and 200 mL of coupling buffer was run through the column at a rate of 50 mL / min for 4 minutes. The pump was stopped and the outlet tube was placed in the same glass bottle as the inlet tube containing the remaining 300 mL of coupling buffer. This configuration, with the inlet and outlet tubes in the same bottle, allows the solution to be recirculated through the column multiple times. By recirculating the solution through the column, the reaction time can be extended without increasing the volume of solution required.

[0260] To the vial containing the remaining 300 mL of coupling buffer, 82.4 mL of PrA ligand stock solution at a concentration of 25.8 g / L in water was added. After starting the pump, the PrA solution was recirculated through the column at a flow rate of 50 mL / min for 4 hours. The total volume of PrA solution recirculated through the column was calculated to be 422.4 mL, which consisted of the 300 mL of coupling buffer remaining in the vial, the 40 mL of coupling buffer remaining in the column / tube, and the addition of 82.4 mL of PrA stock solution. Assuming that the 82.4 mL of stock PrA ligand solution containing 2.12 g of PrA ligand was diluted to a volume of 422.4 mL, the PrA solution recirculated in the system was calculated to have a concentration of 5 g / L. The ligand loading on the membrane was calculated by dividing the total mass of PrA ligand, 2.12 g, by the total membrane load of 25 mL to give a ligand loading of 85 g / L.

[0261] After 4 hours, the pump was stopped and the outlet tube was directed to waste. The inlet tube was placed into a glass bottle containing 200 mL of PBS buffer. The pump was started and PBS buffer was allowed to flow through the column at a flow rate of 50 mL / min for 4 minutes.

[0262] The pump was then stopped and the inlet tube was placed into a vial containing 800 mL of 1 M ethanolamine. The outlet tube was left pointed to waste. The pump was started and 200 mL of 1 M ethanolamine was run through the column to waste at a flow rate of 50 mL / min for 4 minutes. The pump was stopped and the outlet tube was pointed to a vial containing the remaining 600 mL of 1 M ethanolamine solution. The pump was then started and the remaining 600 mL of 1 M ethanolamine solution was recirculated through the column at a flow rate of 50 mL / min for 3 hours.

[0263] The pump was stopped and the outlet tubing was directed to waste. The inlet tubing was placed into a glass bottle containing 200 mL of PBS buffer. The pump was started and PBS buffer was allowed to flow through the column at a flow rate of 50 mL / min for 4 minutes.

[0264] The pump was stopped and the top column header was removed. The membranes were removed and stored in PBS buffer. The flux and IgG dynamic binding capacity of several membranes at different positions in the stack were determined. Position #1 was closest to the column inlet and position #100 was closest to the column outlet. It was found that there was no significant deviation in membrane flux with varying positions (Table 2). Also, no significant deviation was observed in the dynamic binding capacity of IgG, suggesting that the splitting was relatively uniform throughout the column. The addition of the splitting layer provided uniform coupling of the PrA ligand to all epoxide membranes in the stack (Figure 5A and Figure 5B).

[0265] [Table 3]

[0266] Example 6 - Protein A coupling by tangential flow through a spiral wound roll of membrane. A rectangular membrane with a width of 24.5 cm, a length of 62.5 cm, and a thickness of 0.035 cm (total membrane volume 53.6 mL) was wound around a cylindrical core with a diameter of 1.6 cm and a length of 25.4 cm, together with a plastic rectangular piece of polypropylene screen (1:2 twill, 500 micron mesh opening) with a width of 25.4 cm. The membrane was centered so that there was 0.45 cm between the edge of the membrane and the edge of the screen. The membrane and screen were wrapped around the core, with the screen in contact with the core. The membrane and screen were rolled until all of the membrane was completely covered by the screen layer. The screen layer continued to be wound on the roll until the diameter of the roll was 32 mm. The screen layer was then cut off. The roll was then slid into a glass chromatography column with an inner diameter of 32 mm (Vantage® L Laboratory Column VL 32×250, catalog number 96320250) so that the edges of the roll were 2.5 cm from both ends of the column. Headers containing porous frits were then attached to the bottom and top of the column.

[0267] Next, tubing was added to the inlet at the bottom of the column and to the outlet at the top of the column. The inlet tubing was connected through a peristaltic pump that allowed for controlled flow of the solution through the column.

[0268] The air in the column and tubing was replaced with PBS buffer consisting of 20 mM sodium phosphate with 150 mM sodium chloride at pH 7.4. The inlet tubing was placed in a glass bottle containing 400 mL of PBS buffer and the outlet tubing was directed to waste. The pump was then started and 200 mL of PBS buffer was run through the column at a rate of 40 mL / min for 5 minutes. The pump was stopped and the column was inverted. The connections of the inlet and outlet tubing to the column were then swapped so that the inlet was again at the bottom of the column and the outlet was at the top of the column. The pump was started and an additional 200 mL of PBS buffer was run through the column at a rate of 40 mL / min for 5 minutes.

[0269] The pump was stopped and the inlet tube was transferred to a glass bottle containing 1064 mL of coupling buffer composed of 1.35 M potassium phosphate, pH 9.0. The outlet tube was left pointed to waste. The pump was started and 300 mL of coupling buffer was run through the column at a rate of 40 mL / min for 7.5 minutes. The pump was stopped and the outlet tube was placed in the same glass bottle as the inlet tube containing the remaining 764 mL of coupling buffer. This configuration, with the inlet and outlet tubes in the same bottle, allows the solution to be recirculated through the column multiple times. By recirculating the solution through the column, the reaction time can be extended without increasing the volume of solution required.

[0270] To the vial containing the remaining 764 mL of coupling buffer, 205.6 mL of PrA ligand stock solution at a concentration of 25.8 g / L in water was added. After starting the pump, the PrA solution was recirculated through the column at a flow rate of 40 mL / min for 4 hours. The total volume of PrA solution recirculated through the column was calculated to be 1062.6 mL, which consisted of the 764 mL of coupling buffer remaining in the vial, the 93 mL of coupling buffer remaining in the column / tube, and the addition of 205.6 mL of PrA stock solution. Assuming that the 205.6 mL of stock PrA ligand solution containing 5.3 g of PrA ligand was diluted to a volume of 1064 mL, the PrA solution recirculated in the system was calculated to have a concentration of 5 g / L. The ligand loading on the membrane was calculated by dividing the total mass of 5.3 g of PrA ligand by the total membrane load of 53.6 mL to give a ligand loading of 99 g / L.

[0271] After 4 hours, the pump was stopped and the outlet tube was directed to waste. The inlet tube was placed into a glass bottle containing 200 mL of PBS buffer. The pump was started and PBS buffer was allowed to flow through the column at a flow rate of 40 mL / min for 5 minutes.

[0272] The pump was then stopped and the inlet tube was placed into a vial containing 600 mL of 1 M ethanolamine. The outlet tube remained pointed to waste. The pump was started and 200 mL of 1 M ethanolamine was flushed through the column to waste at a flow rate of 20 mL / min for 10 minutes. The pump was stopped and the outlet tube was pointed to a vial containing the remaining 400 mL of 1 M ethanolamine solution. The pump was then started and the remaining 400 mL of 1 M ethanolamine solution was recirculated through the column at a flow rate of 20 mL / min for 170 minutes.

[0273] The pump was stopped and the outlet tubing was directed to waste. The inlet tubing was placed into a glass bottle containing 400 mL of PBS buffer. The pump was started and PBS buffer was allowed to flow through the column at a flow rate of 40 mL / min for 10 minutes.

[0274] The pump was stopped and the top and bottom column headers were removed. The wound roll of membrane and screen was then removed from the column. The membrane was unwound and separated from the screen. A circular section of membrane, 30 mm in diameter, was then removed from the rectangular membrane sheet. Five circular sections of membrane were removed from each of the following locations (Figure 6): 1. Center: Located in the center of the entire rectangular membrane sheet. 2. Core: Located in the center of the edge of the rectangular membrane sheet closest to the core during the coupling reaction. 3. Shell: Located in the center of the edge of the rectangular membrane sheet closest to the column side during the coupling reaction. 4. Inlet: Located in the center of the edge of the rectangular membrane sheet closest to the column inlet during the coupling reaction. 5. Outlet: Located in the center of the edge of the rectangular membrane sheet closest to the column inlet during the coupling reaction. 6. Five membranes removed from each portion were assembled into five 5-layer membrane chromatography devices with a total accessible membrane volume of 1.0 mL. The pressure drop and IgG dynamic binding capacity of the five chromatography devices were determined at a flow rate of 10 membrane volumes per minute or 10 mL / min, as shown in Table 3. All 1 mL devices were found to have very similar pressure drop and IgG dynamic binding capacity at all five different locations. These results suggest that tangential flow coupling of the epoxide membrane with PrA ligand can be achieved uniformly across the membrane when interleaved with a polypropylene screen.

[0275] [Table 4]

[0276] Incorporation by Reference All U.S. patents and U.S. patent application publications cited herein are hereby incorporated by reference.

[0277] Equivalent Those skilled in the art will recognize, or be able to ascertain using no more than routine experimentation, many equivalents to the specific embodiments of the invention described herein which equivalents are intended to be encompassed by the following claims. The embodiments of the present invention include the following. [Embodiment 1] 1. A method for coupling a ligand to a functionalized composite material, comprising: a. providing a functionalized composite material, the functionalized composite material being arranged in a coplanar stack of coextensive sheets, a tubular configuration, or a spirally wound configuration; i. said support member including a plurality of pores extending therethrough; and ii. a macroporous crosslinked gel, the macroporous crosslinked gel comprising a polymer formed from the reaction of one or more polymerizable monomers and one or more crosslinking agents, the macroporous crosslinked gel comprising a plurality of pendant reactive functional groups, the macroporous crosslinked gel located in the pores of the support member, the macropores of the macroporous crosslinked gel being smaller than the pores of the support member. and b. flowing a first solution substantially through or substantially across the functionalized composite material at a first flow rate, the first solution including a plurality of first ligands, whereby a plurality of covalent bonds are formed between the reactive functional groups and the first ligands; The method includes the steps of: [Embodiment 2] The method of embodiment 1, wherein the pendant reactive functional group is selected from the group consisting of aldehydes, amines, carbon-carbon double bonds, carbon-carbon triple bonds, epoxides, hydroxyls, thiols, anhydrides, azides, reactive halogens, acid chlorides, and mixtures thereof. [Embodiment 3] The method of embodiment 1, wherein the pendant reactive functional group is selected from the group consisting of a carbon-carbon double bond, a carbon-carbon triple bond, and a thiol. [Embodiment 4] The method of any of embodiments 1-3, wherein the pendant reactive functional group is derived from a molecule containing a thiol functional group or a molecule containing an unsaturated carbon-carbon bond. [Embodiment 5] The pendant reactive functional group is derived from a molecule that contains a thiol functional group, and the molecule that contains a thiol functional group is selected from the group consisting of 3-mercaptopropionic acid, 1-mercaptosuccinic acid, a polypeptide that contains a cysteine ​​residue, a protein that contains a cysteine ​​residue, a recombinant protein that contains a cysteine ​​residue, a bacterial immunoglobulin binding protein that contains a cysteine ​​residue, a recombinant fusion protein that contains a cysteine ​​residue, cysteamine, 1-thiohexitol, poly(ethylene glycol) 2-mercaptoethyl ether acetate, poly(ethylene glycol) methyl ether thiol, 1-thioglycerol, 2-naphthalene thiol, biphenylsulfonyl ether, tert-butyl ... 5. The method of embodiment 4, wherein the aryl group is selected from the group consisting of phenyl-4-thiol, 3-amino-1,2,4 triazole-5-thiol, 5-(trifluoromethyl)pyridine-2-thiol, 1-[2-(dimethylamino)ethyl]-1H-tetrazole-5-thiol, 1-propanethiol, 1-butanethiol, 1-pentanethiol, 1-hexanethiol, 1-octanethiol, 8-amino-1-octanethiol hydrochloride, 3,3,4,4,5,5,6,6,7,7,8,8,8-tridecafluoro-1-octanethiol, 8-mercapto-1-octanol, and γ-Glu-Cys. [Embodiment 6] The method of embodiment 5, wherein the molecule containing a thiol functional group is a polypeptide containing a cysteine ​​residue, a protein containing a cysteine ​​residue, a recombinant protein containing a cysteine ​​residue, a bacterial immunoglobulin binding protein containing a cysteine ​​residue, and a recombinant fusion protein containing a cysteine ​​residue. [Embodiment 7] The method of embodiment 6, wherein the molecule containing a thiol functional group is a protein containing a cysteine ​​residue. [Embodiment 8] The method of embodiment 4, wherein the pendant reactive functional group is derived from a molecule containing an unsaturated carbon-carbon bond, and the molecule containing an unsaturated carbon-carbon bond is selected from the group consisting of 1-octene, 1-hexyne, 4-bromo-1-butene, allyldiphenylphosphine, allylamine, allyl alcohol, 3,4-dihydroxy-1-butene, 7-octene-1,2-diol, 3-allyloxy-1,2-propanediol, 3-butenoic acid, 3,4-dehydro-L-proline, vinyl laurate, 1-vinyl-2-pyrrolidinone, vinyl cinnamate, acyl amide, or acrylate. [Embodiment 9] The method of embodiment 1, wherein the pendant reactive functional group is selected from the group consisting of aldehydes, amines, epoxides, hydroxyls, anhydrides, azides, reactive halogens, and acid chlorides. [Embodiment 10] The method of embodiment 9, wherein the one or more monomers comprising a pendant reactive functional group are selected from the group consisting of glycidyl methacrylate, acrylamidooxime, acrylic anhydride, azelaic anhydride, maleic anhydride, hydrazide, acryloyl chloride, 2-bromoethyl methacrylate, and vinyl methyl ketone. [Embodiment 11] The method of embodiment 9, wherein the pendant reactive functional group is an amine. [Embodiment 12] The method of embodiment 9, wherein the pendant reactive functional group is an epoxide. [Embodiment 13] The method of embodiment 9, wherein the pendant reactive functional group is hydroxyl. [Embodiment 14] The method of any of embodiments 1-13, wherein the first ligand comprises a first functional group. [Embodiment 15] The method of embodiment 14, wherein the first ligand further comprises at least one grafted end group, and the first functional group is selected from the group consisting of cationic, anionic, hydrophobic, hydrophilic, thiophilic, hydrogen bond donating, hydrogen bond accepting, π-π bond donating, π-π bond accepting, metal chelating, biological molecule, and biological ion. [Embodiment 16] The method of embodiment 15, wherein the first functional group is selected from the group consisting of cationic, anionic, hydrophobic, hydrophilic, thiophilic, hydrogen bond donating, hydrogen bond accepting, π-π bond donating and π-π bond accepting. [Embodiment 17] A molecule comprises a first functional group, the molecule being selected from the group consisting of 2-(diethylamino)ethyl methacrylate, 2-aminoethyl methacrylate, 2-carboxyethyl acrylate, 2-(methylthio)ethyl methacrylate, acrylamide, N-acryloxysuccinimide, butyl acrylate or methacrylate, N,N-diethylacrylamide, N,N-dimethylacrylamide, 2-(N,N-dimethylamino)ethyl acrylate or methacrylate, N-[3-(N,N-dimethylamino)propyl]methacrylamide, N,N-dimethylacrylamide, ethyl acrylate or methacrylate, 2-ethylhexyl methacrylate, hydroxypropyl methacrylate, glycidyl acrylate or methacrylate, ethylene glycol phenyl ether methacrylate, methacrylamide, methacrylic anhydride, propyl acrylate or methacrylate, N-iso ... 16. The method of embodiment 15, wherein the alkyl group is selected from the group consisting of isopropylacrylamide, styrene, 4-vinylpyridine, vinylsulfonic acid, N-vinyl-2-pyrrolidinone (VP), acrylamido-2-methyl-1-propanesulfonic acid, styrenesulfonic acid, alginic acid, (3-acrylamidopropyl)trimethylammonium halide, diallyldimethylammonium halide, 4-vinyl-N-methylpyridinium halide, vinylbenzyl-N-trimethylammonium halide, methacryloxyethyltrimethylammonium halide, 3-sulfopropyl methacrylate, 2-(2-methoxy)ethyl acrylate or methacrylate, hydroxyethylacrylamide, N-(3-methoxypropylacrylamide), N-[tris(hydroxymethyl)methyl]acrylamide, N-phenylacrylamide, N-tert-butylacrylamide, or diacetone acrylamide. [Embodiment 18] The method of embodiment 15, wherein the first functional group is a metal chelating functional group. [Embodiment 19] The method of embodiment 15, wherein the first functional group comprises a metal chelating functional group selected from the group consisting of octadentate, hexadentate, tetradentate, tridentate, and bidentate iminodicarboxylic acids and iminodiacetic acids. [Embodiment 20] 16. The method of embodiment 15, wherein the first functional group is a biological molecule or a biological ion. [Embodiment 21] 16. The method of embodiment 15, wherein the first functional group comprises a biological molecule or biological ion functional group selected from the group consisting of albumin, lysozyme, viruses, cells, gamma-globulins of human and animal origin, immunoglobulins of both human and animal origin, recombinant or naturally occurring proteins including polypeptides of synthetic or natural origin, interleukin-2 and its receptor, enzymes, monoclonal antibodies, antigens, lectins, bacterial immunoglobulin binding proteins, trypsin and its inhibitors, cytochrome C, myoglobulins, recombinant human interleukins, recombinant fusion proteins, protein A, protein G, protein L, peptide H, nucleic acid derived products, synthetic or naturally occurring DNA, and synthetic or naturally occurring RNA. [Embodiment 22] 22. The method of any of embodiments 15-21, wherein the at least one grafted end group is selected from the group consisting of aldehyde, amine, carbon-carbon double bond, carbon-carbon triple bond, epoxide, hydroxyl, thiol, and mixtures thereof. [Embodiment 23] 22. The method of any of embodiments 15 to 21, wherein the at least one grafted end group is an aldehyde. [Embodiment 24] 22. The method of any of embodiments 15-21, wherein the at least one grafted end group is an amine. [Embodiment 25] 22. The method of any of embodiments 15-21, wherein the at least one grafted end group is a carbon-carbon double bond or a carbon-carbon triple bond. [Embodiment 26] 22. The method of any of embodiments 15-21, wherein the at least one grafted end group is an epoxide. [Embodiment 27] 22. The method of any of embodiments 15-21, wherein the at least one grafted end group is hydroxyl. [Embodiment 28] 22. The method of any of embodiments 15 to 21, wherein the at least one grafted end group is a thiol. [Embodiment 29] c. The method of any of embodiments 1-28, further comprising the step of removing excess first ligand by flowing a first wash solution at a second flow rate substantially through or substantially across the composite material. [Embodiment 30] d. flowing a quenching solution substantially through or substantially across the composite material at a third flow rate, the quenching solution including a reactive compound that converts any remaining pendant reactive functional groups to non-reactive groups; e. optionally, flowing a second cleaning liquid at a fourth flow rate substantially through or substantially across the composite material to remove any residual reactive compounds. [Embodiment 31] The method of any of the preceding embodiments, wherein the first solution of step b. is recirculated through or across the composite material. [Embodiment 32] 32. The method of embodiment 30 or 31, wherein the quenching solution of step d. is recirculated through or across the composite material. [Embodiment 33] c. optionally, flowing a first wash solution substantially through or across the composite material at a second flow rate to remove excess first ligand; d. flowing a second solution substantially through or substantially across the functionalized composite material at a third flow rate, the second solution comprising a plurality of second ligands comprising at least three reactive groups, the second ligands being a crosslinker and, optionally, a polymerizable monomer comprising at least two pendant reactive functional groups, thereby forming a plurality of covalent bonds between the reactive functional groups and the second ligands; The method of any of embodiments 1-28, further comprising: [Embodiment 34] The method of embodiment 33, wherein the second ligand is added in at least two portions. [Embodiment 35] The method of embodiment 33, wherein the polymerizable monomer comprising at least two pendant reactive functional groups is added in at least two portions. [Embodiment 36] The method of any of embodiments 33-35, wherein the second ligand comprises a second functional group. [Embodiment 37] The method of embodiment 36, wherein the second ligand further comprises at least one grafted end group, and the second functional group is selected from the group consisting of cationic, anionic, hydrophobic, hydrophilic, thiophilic, hydrogen bond donating, hydrogen bond accepting, π-π bond donating, π-π bond accepting, metal chelating, biological molecule, and biological ion. [Embodiment 38] The method of embodiment 37, wherein the second functional group is selected from the group consisting of cationic, anionic, hydrophobic, hydrophilic, thiophilic, hydrogen bond donating, hydrogen bond accepting, π-π bond donating and π-π bond accepting. [Embodiment 39] 38. The method of embodiment 37, wherein the second ligand comprises a biological molecule or biological ion comprising at least one grafted end group selected from the group consisting of amine, hydroxyl and thiol functional groups. [Embodiment 40] The method of embodiment 39, wherein the biological molecule or the biological ion is selected from the group consisting of albumin, lysozyme, viruses, cells, gamma-globulins of human and animal origin, immunoglobulins of both human and animal origin, recombinant or naturally occurring proteins including polypeptides of synthetic or natural origin, interleukin-2 and its receptor, enzymes, monoclonal antibodies, antigens, lectins, bacterial immunoglobulin binding proteins, trypsin and its inhibitors, cytochrome C, myoglobulins, recombinant human interleukins, recombinant fusion proteins, protein A, protein G, protein L, peptide H, nucleic acid derived products, synthetic or naturally occurring DNA and synthetic or naturally occurring RNA. [Embodiment 41] The method of embodiment 39, wherein the biological molecule or the biological ion is selected from the group consisting of gamma globulins of human and animal origin, immunoglobulins of both human and animal origin, recombinant or naturally occurring proteins including synthetic or naturally occurring polypeptides, monoclonal antibodies, antigens, bacterial immunoglobulin binding proteins, recombinant fusion proteins, protein A, protein G, protein L and peptide H. [Embodiment 42] The method of any of embodiments 39 to 41, wherein the second ligand is a polypeptide, a protein, a recombinant protein, a bacterial immunoglobulin binding protein, a recombinant fusion protein, protein A, protein G, protein L and peptide H. [Embodiment 43] 43. The method of any of embodiments 33-42, wherein the polymerizable monomer comprising at least two pendant reactive functional groups is poly(ethylene glycol) divinyl ether. [Embodiment 44] e. The method of any of embodiments 33-43, further comprising flowing a second wash liquid at a fourth flow rate substantially through or substantially across the composite material to remove any excess second ligand and, optionally, any excess polymerizable monomer. [Embodiment 45] f. flowing a quenching solution substantially through or substantially across said composite material at a fifth flow rate, said quenching solution comprising a reactive compound that converts any remaining pendant reactive functional groups to non-reactive groups; g. optionally, flowing a third cleaning fluid at a sixth flow rate substantially through or across said composite material to remove any residual reactive compounds; The method of any of embodiments 33 to 44, further comprising: [Embodiment 46] 46. ​​The method of any of the preceding embodiments, wherein the composite material is arranged in a substantially coplanar stack of substantially coextensive sheets. [Embodiment 47] 47. The method of any of the preceding claims, wherein the composite material has 2 to 300 distinct support members. [Embodiment 48] The method of any of embodiments 1-45, wherein the composite material is arranged in a tubular configuration. [Embodiment 49] 46. ​​The method of any of the preceding embodiments, wherein the composite material is arranged in a substantially spirally wound configuration. [Embodiment 50] 50. The method of any of the preceding embodiments, wherein the support member comprises a polymeric material selected from the group consisting of polysulfone, polyethersulfone, polyphenylene oxide, polycarbonate, polyester, cellulose, and cellulose derivatives. [Embodiment 51] The method of any of the preceding embodiments, wherein the composite material is a membrane. [Embodiment 52] The method of any of the preceding embodiments, wherein the composite material is in contact with one or more interleaf layers. [Embodiment 53] The method of embodiment 52, wherein the one or more interleaf layers are selected from the group consisting of screen, polypropylene, polyethylene, and paper. [Embodiment 54] 54. The method of embodiment 52 or 53, wherein the one or more interleaf layers are in contact with the one or more flow distribution layers. [Embodiment 55] 55. The method of any of the preceding embodiments, wherein the crosslinked gel is a neutral hydrogel, a charged hydrogel, a polyelectrolyte gel, a hydrophobic gel, a neutral gel, or a gel containing functional groups. [Embodiment 56] 56. The method of any of the preceding embodiments, wherein the macroporous crosslinked gel comprises macropores having an average size of from 10 nm to 3000 nm. [Embodiment 57] 57. The method of any of the preceding embodiments, wherein the pores of the support member have an average pore size of from about 0.1 μm to about 50 μm. [Embodiment 58] The method of any of the preceding embodiments, wherein a fluid flow path extends substantially through the composite material. [Embodiment 59] The method of any of the preceding embodiments, wherein the fluid flow path substantially traverses the composite material. [Embodiment 60] h. The method of any of embodiments 1-59, further comprising the step of flowing a first fluid containing a substance at a seventh flow rate substantially through or substantially across the composite material, thereby adsorbing or absorbing a portion of the substance onto the composite material. [Embodiment 61] The method of embodiment 60, wherein the first fluid further comprises a fragmented antibody, an aggregated antibody, a host cell protein, a polynucleotide, an endotoxin or a virus. [Embodiment 62] 62. The method of embodiment 60 or 61, wherein the fluid flow path of the first fluid substantially passes through the composite material. [Embodiment 63] 62. The method of embodiment 60 or 61, wherein the fluid flow path of the first fluid substantially traverses the composite material. [Embodiment 64] 64. The method of any of embodiments 60-63, wherein substantially all of the substance is adsorbed or absorbed onto the composite material after the first fluid has flowed substantially through or substantially across the composite material. [Embodiment 65] The method of any of embodiments 60-64, further comprising the step of: i. contacting a second fluid with the substance adsorbed or absorbed on the composite material at an eighth flow rate, thereby releasing a portion of the substance from the composite material. [Embodiment 66] 66. The method of embodiment 65, wherein the fluid flow path of the second fluid is substantially through the macropores of the composite material. [Embodiment 67] 66. The method of embodiment 65, wherein the fluid flow path of the second fluid is substantially perpendicular to the macropores of the composite material. [Embodiment 68] The method of any of embodiments 60 to 67, wherein the substance is a biological molecule, a biological ion, a virus or a virus particle. [Embodiment 69] The method of embodiment 68, wherein the biological molecule or biological ion is selected from the group consisting of albumin, lysozyme, viruses, cells, gamma-globulins of human and animal origin, immunoglobulins of human and animal origin, hIgG, proteins of recombinant and natural origin, polypeptides of synthetic and natural origin, interleukin-2 and its receptor, enzymes, monoclonal antibodies, trypsin and its inhibitors, cytochrome C, myoglobin, myoglobulins, alpha-chymotrypsinogen, recombinant human interleukins, recombinant fusion proteins, nucleic acid derived products, DNA of synthetic and natural origin, and RNA of synthetic and natural origin. [Embodiment 70] The method of embodiment 69, wherein the biological molecule or biological ion is lysozyme, hIgG, myoglobin, human serum albumin, soybean trypsin inhibitor, transferase, enolase, ovalbumin, ribonuclease, egg trypsin inhibitor, cytochrome c, annexin V, or α-chymotrypsinogen. [Embodiment 71] 71. The method of any of embodiments 60 to 70, wherein the concentration of the substance in the first fluid is from about 0.2 mg / mL to about 10 mg / mL. [Embodiment 72] 72. The method of any of the preceding embodiments, wherein said first flow rate is from about 1 membrane volume (MV) / min to about 75 MV / min. [Embodiment 73] The method of any of embodiments 29 to 72, wherein the second flow rate is from about 1 MV / min to about 75 MV / min. [Embodiment 74] 74. The method of any of embodiments 30 to 73, wherein the third flow rate is from about 1 MV / min to about 75 MV / min. [Embodiment 75] The method of any of embodiments 30 to 74, wherein the fourth flow rate is from about 1 MV / min to about 75 MV / min. [Embodiment 76] 76. The method of any of embodiments 45 to 75, wherein the fifth flow rate is from about 1 MV / min to about 75 MV / min. [Embodiment 77] The method of any of embodiments 45 to 76, wherein the sixth flow rate is from about 1 MV / min to about 75 MV / min. [Embodiment 78] The method of any of embodiments 60 to 77, wherein the seventh flow rate is from about 1 MV / min to about 75 MV / min. [Embodiment 79] The method of any of embodiments 65 to 78, wherein the eighth flow rate is from about 1 MV / min to about 75 MV / min.

Claims

1. 1. A method for coupling a ligand to a composite material, comprising: providing a composite material, the composite material being arranged in a coplanar stack of coextensive sheets or in a spirally wound configuration, the coplanar sheets being periodically separated by a screen, or the spirally wound composite material being wound on a screen, the composite material being i. a support member including a plurality of pores extending therethrough; and ii. A macroporous cross-linked gel, the macroporous cross-linked gel comprising a polymer formed from the reaction of one or more polymerizable monomers and one or more cross-linking agents, the macroporous cross-linked gel comprising a plurality of pendant reactive functional groups, the macroporous cross-linked gel located in the pores of the support member, and the macropores of the macroporous cross-linked gel being smaller than the pores of the support member. and b) flowing a liquid or a series of solutions containing affinity ligands through or across the composite material, where the liquid or solutions react with pendant reactive functional groups on the surface of the composite material to form a functionalized composite material having affinity ligands attached to pendant reactive functional groups on its surface; c) flowing a first solution at a first flow rate through or across the functionalized composite material, the first solution including a plurality of first ligands, whereby a plurality of bonds are formed between the affinity ligands and the first ligands; The method wherein the pendant reactive functional group is selected from the group consisting of an aldehyde, an amine, a carbon-carbon double bond, a carbon-carbon triple bond, an epoxide, a hydroxyl, a thiol, an anhydride, an azide, a reactive halogen, an acid chloride, and mixtures thereof.

2. 2. The method of claim 1, wherein the pendant reactive functional group is selected from the group consisting of a carbon-carbon double bond, a carbon-carbon triple bond, and a thiol.

3. 2. The method of claim 1, wherein the pendant reactive functional group is derived from a molecule containing an unsaturated carbon-carbon bond, and the molecule containing an unsaturated carbon-carbon bond is selected from the group consisting of 1-octene, 1-hexyne, 4-bromo-1-butene, allyldiphenylphosphine, allylamine, allyl alcohol, 3,4-dihydroxy-1-butene, 7-octene-1,2-diol, 3-allyloxy-1,2-propanediol, 3-butenoic acid, 3,4-dehydro-L-proline, vinyl laurate, 1-vinyl-2-pyrrolidinone, vinyl cinnamate, acyl amide, or acrylate.

4. 10. The method of claim 1, wherein the pendant reactive functional group is selected from the group consisting of aldehyde, amine, epoxide, hydroxyl, anhydride, azide, reactive halogen, and acid chloride.

5. 5. The method of claim 4, wherein the one or more monomers comprising a pendant reactive functional group are selected from the group consisting of glycidyl methacrylate, acrylamidooxime, acrylic anhydride, azelaic anhydride, maleic anhydride, hydrazide, acryloyl chloride, 2-bromoethyl methacrylate, and vinyl methyl ketone.

6. The method of claim 4 wherein the pendant reactive functional group is an amine.

7. The method of claim 4 wherein the pendant reactive functional group is an epoxide.

8. The method of claim 4 wherein the pendant reactive functional group is hydroxyl.

9. The method of any one of claims 1 to 8, wherein the first ligand comprises a first functional group.

10. 10. The method of claim 9, wherein the first ligand further comprises at least one grafted end group, and the first functional group is selected from the group consisting of a biological molecule and a biological ion.

11. 11. The method of claim 10, wherein the first functional group comprises a biological molecule or biological ion functional group selected from the group consisting of albumin, lysozyme, viruses, cells, gamma globulins of human and animal origin, immunoglobulins of both human and animal origin, recombinant or naturally occurring proteins including polypeptides of synthetic or natural origin, interleukin-2 and its receptor, enzymes, monoclonal antibodies, antigens, lectins, bacterial immunoglobulin binding proteins, trypsin and its inhibitor, cytochrome C, myoglobulins, recombinant human interleukins, recombinant fusion proteins, nucleic acid derived products, synthetic or naturally occurring DNA, and synthetic or naturally occurring RNA.

12. The method of claim 1 , wherein the coplanar stack of coextensive sheets further comprises one or more flow diverter plates.