Methods for reducing impurities from recombinant protein manufacturing processes

A depth filter with silica and polyacrylic fibers effectively reduces non-aggregated impurities in monoclonal antibody solutions, enhancing the purity and efficiency of antibody production.

JP7801227B2Active Publication Date: 2026-01-16F HOFFMANN LA ROCHE & CO AG
View PDF 5 Cites 0 Cited by

Patent Information

Application Number
JP2022543061
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-01-15
Filing Date
2021-01-15
Publication Date
2026-01-16
Estimated Expiration
2041-01-15

AI Technical Summary

Technical Problem

Existing methods struggle to effectively reduce non-aggregated product-related impurities (NAPRIs) in monoclonal antibody solutions, which are difficult to remove using standard purification processes.

Method used

Utilizing a depth filter comprising silica and polyacrylic fibers to purify monoclonal antibody solutions, significantly reducing non-aggregated product-related impurities by passing the solution through this filter.

Benefits of technology

The method achieves substantial reduction in non-aggregated product-related impurities, allowing for the production of monoclonal antibodies with improved purity and efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007801227000010
    Figure 0007801227000010
  • Figure 0007801227000011
    Figure 0007801227000011
  • Figure 0007801227000012
    Figure 0007801227000012
Patent Text Reader

Abstract

The present invention relates to a method for reducing the amount of non-aggregated product-related impurities (NAPRIs) in a buffered solution of a monoclonal antibody (mAb) comprising the use of a synthetic depth filter. The present invention may be useful in the purification of monoclonal antibodies.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to methods for reducing the amount of product-related impurities in solutions of monoclonal antibodies (mAbs). In particular, the methods of the present invention involve the use of depth filters to reduce the amount of non-aggregated product-related impurities (NAPRIs). [Background technology]

[0002] Monoclonal antibodies (mAbs), including bispecific antibodies (BsAbs), are important therapeutic modalities (1). Their large size and exquisite folding have led to mammalian cell culture being the preferred means of expressing these proteins (2).

[0003] Mammalian cell culture expression results in both product and process-related impurities that must be removed during purification of the mAb molecule. Purification steps to remove these impurities can include centrifugation, depth filtration, Protein A chromatography, viral inactivation, cation exchange chromatography, anion exchange chromatography, multimodal (mixed-mode) chromatography, viral filtration, and ultrafiltration.

[0004] Depth filters are widely used to remove process-related impurities from liquid media, thereby "clarifying" the media and preventing membrane fouling in subsequent purification steps. For example, antibody-containing media harvested from cell culture is often passed through a depth filter to remove solid, insoluble components of the cell culture process, such as host cell proteins (HCPs) and DNA contaminants (3) and adventitious and endogenous viruses (4), before final filtration by microfiltration membrane (5) or column chromatography.

[0005] Depth filters include porous materials such as cellulose pulp, diatomaceous earth, polyacrylic fibers, and silica, and some depth filters include two or more layers of porous material (6).

[0006] Depth filters have also been observed to remove product-associated aggregated species following protein A purification and viral inactivation via electrostatic or hydrophobic interactions (7).

[0007] During protein production, product-associated impurities include higher-order aggregated species, which are complexes containing product aggregates. These product-associated aggregates and impurities may include HCPs and DNA. (4) Other non-aggregated product-associated impurities include unreacted (unpaired) half antibodies, non-covalently or covalently linked homodimers, and non-covalently linked heterodimers, which are closely associated with the desired product and are difficult to remove by standard processes such as Protein A purification. (8)

[0008] Bispecific heterodimeric antibodies containing heavy and light chains from different monospecific monoclonal antibodies can be produced in high yields by a "knobs-into-holes" strategy that biases the formation of specific heterodimers (9). This is based on the principle that "knobs" (substitution of large amino acids for small amino acids in a region of one antibody chain) preferentially fill "holes" (substitution of small amino acids for large amino acids in the corresponding region of another antibody chain) to promote selective heterodimerization between specific chains. However, this method can generate additional non-aggregated products, resulting, for example, from mismatched knob-knob and hole by-products.

[0009] There remains a need to provide methods for reducing the amount of non-agglomerated product-related impurities. Summary of the Invention

[0010] Disclosure of the Invention The present invention provides a novel method and use for reducing the amount of non-aggregate-related impurities in a buffered solution of a monoclonal antibody (mAb) by using a depth filter comprising silica and polyacrylic fibers. The inventors have found that the use of such a depth filter reduces non-aggregate-derived impurities.

[0011] As discussed herein, depth filters are known to reduce certain process-related impurities, such as HCPs and DNA, as well as aggregated product-related impurities, in recombinant protein manufacturing processes. However, the inventors did not anticipate that depth filters would also reduce non-aggregated product-related impurities. Most broadly, the present invention relates to this unexpected finding.

[0012] Accordingly, one aspect of the present invention provides a method for reducing the amount of NAPRI in a buffered solution of a monoclonal antibody (mAb), the method comprising passing the buffered solution of the monoclonal antibody (mAb) through a depth filter comprising silica and polyacrylic fibers to remove a portion of the non-aggregated product-related impurities (NAPRI) from the buffered solution. The amount of NAPRI is reduced by passing the buffered solution of the mAb through the depth filter.

[0013] In a further aspect, the present invention provides a method for producing a buffered monoclonal antibody (mAb) solution having reduced amounts of non-aggregated product-related impurities (NAPRI), comprising passing the buffered monoclonal antibody (mAb) solution through a depth filter comprising silica and polyacrylic fibers, thereby producing a buffered monoclonal antibody (mAb) solution having reduced amounts of non-aggregated product-related impurities (NAPRI). The amount of NAPRI is reduced by passing the buffered mAb solution through the depth filter.

[0014] In a further aspect, the present invention provides the use of a depth filter comprising silica and polyacrylic fibers to reduce the amount of non-aggregated product-related impurities (NAPRIs) in a buffered solution of a monoclonal antibody (mAb).

[0015] In a further aspect, the present invention provides a buffered solution of a monoclonal antibody (mAb) having a reduced amount of non-aggregated product-related impurities (NAPRIs) compared to the amount of mAb produced by performing any of the methods or by any of the uses of the present invention.

[0016] In a further aspect, the invention provides a method of producing a mAb, comprising: (a) culturing a host cell containing nucleic acid encoding said mAb, whereby said mAb is produced together with NAPRI; (b) forming a buffered solution of the mAb and NAPRI; (c) reducing the amount of NAPRI reduced by carrying out the method or use of the invention; and optionally, (d) isolating the mAb from the buffer solution. The present invention provides a method comprising:

[0017] The following embodiments are embodiments of aspects of the present invention.

[0018] In some embodiments, the buffered solution of the mAb is a concentrated buffered solution of the mAb, in some embodiments, the concentration of the concentrated buffered solution of the mAb is 2 mg / mL to 20 mg / mL, 5 mg / mL to 15 mg / mL, or 5 mg / mL to 10 mg / mL.

[0019] In some embodiments, the mAb is a multispecific antibody. In one embodiment, the mAb is a bispecific antibody. In some embodiments, the mAb is an antibody fragment. In some embodiments, the mAb is an antibody fusion protein comprising an antibody or antibody fragment and another biologically active polypeptide.

[0020] In some embodiments, the buffered solution of monoclonal antibody is passed through the depth filter at a temperature below ambient temperature. For example, the temperature may be from about 4°C to about 22°C. The temperature may be from about 10°C to about 21°C. The temperature may be from about 15°C to about 20°C.

[0021] The present invention allows for large-scale antibody purification. Large amounts of antibody can be loaded onto silica and polyacrylic fiber depth filters. For example, loadings of 100 g / m 2 Super, 200g / m 2 Super, 300g / m2 Super, 500g / m 2 Over 700g / m 2 The load can be up to 1500g / m 2 , 2000g / m 2 , or 2500 g / m 2 The flow rate is approximately 1 L / min. * m 2 ~about 10L / min * m 2 , e.g. 1.5 L / min * m 2 ~ approx. 8L / min * m 2 In a preferred example, the flow rate is about 3 L / min. * m 2 ~ approx. 6L / min * m 2 range, or approximately 4.3 L / min. * m 2 The unit is L / min. * m 2 " indicates the volume (liters) per minute flowing through the filter per unit area (m2).

[0022] Even before passing through the depth filter, NAPRI are present in the initial buffered mAb solution at relatively low concentrations, e.g., at least 1.5-fold, at least 2-fold, at least 5-fold, at least 10-fold, at least 20-fold, at least 50-fold, at least 100-fold, at least 1000-fold, or at least 10,000-fold lower than the concentration of the mAb. The present invention allows for even further reductions in NAPRI concentration relative to the concentration of the mAb.

[0023] Similarly, the absolute amount of NAPRI (e.g., measured in moles) relative to the absolute amount of mAb is reduced (the absolute amount of NAPRI in solution is reduced after passing through a depth filter). Furthermore, the NAPRI concentration can be reduced after a solution passes through a depth filter relative to the NAPRI concentration before the solution passed through the depth filter (however, this is not necessarily the case; for example, if a wash fraction is included in the elution solution, its volume is increased).

[0024] The reduction in NAPRI concentration relative to mAb concentration can be expressed as a reduction in the ratio: [mAb]:[NAPRI], which increases after the solution passes through a depth filter.

[0025] Typically, a non-aggregated product-related impurity (NAPRI) is a polypeptide composed of incompletely or misassembled polypeptide chains of a mAb. In some embodiments, a NAPRI is a polypeptide lacking one or more polypeptide chains of a mAb. In some embodiments, a NAPRI is a polypeptide comprising a different polypeptide chain sequence than a mAb. In some embodiments, a non-aggregated product-related impurity (NAPRI) comprises a polypeptide having a different amino acid sequence and / or a different antibody chain configuration than a mAb.

[0026] In one embodiment, the mAb is a multispecific antibody composed of four different polypeptide chains, and NAPRI is a polypeptide that (a) lacks one or more of the four different polypeptide chains, or (b) comprises two or more of the four different polypeptide chains. In one embodiment, the mAb is a multispecific antibody comprising two heavy chains associated with each other, one heavy chain comprising a knob mutation and the other heavy chain comprising a hole mutation, and NAPRI is a polypeptide comprising two heavy chains associated with each other comprising a knob mutation or two heavy chains associated with each other comprising a hole mutation. In one embodiment, the mAb is a multispecific antibody comprising two Fab fragments, the first Fab fragment comprising, from N-terminus to C-terminus, a first light chain comprising a VL domain and a CL domain, and, from N-terminus to C-terminus, a VH domain and a CH domain. and a first heavy chain comprising, from N- to C-terminus, a VL domain and a CH1 domain; and a second Fab fragment comprising (a) a second light chain comprising, from N- to C-terminus, a VL domain and a CH1 domain, and a second heavy chain comprising, from N- to C-terminus, a VH domain and a CL domain; (b) a second light chain comprising, from N- to C-terminus, a VH domain and a CH1 domain, and a second heavy chain comprising, from N- to C-terminus, a VL domain and a CL domain; or (c) a VH domain and a and a second light chain comprising, from N-terminus to C-terminus, a VL domain and a CH1 domain, and a second heavy chain comprising, from N-terminus to C-terminus, a VL domain and a CH1 domain, wherein NAPRI is a polypeptide in which (a) a first light chain and a second heavy chain are associated, (b) a second light chain and a first heavy chain are associated, (c) two first heavy chains are associated, (d) two second heavy chains are associated, or (e) the polypeptide lacks at least one of the first light chain, the first heavy chain, the second light chain, and the second heavy chain.

[0027] In some embodiments, NAPRI comprises two heavy chains that are identical to each other. In some embodiments, NAPRI comprises two heavy chains with the same amino acid sequence. In some embodiments, NAPRI comprises two heavy chains that are identical to each other and / or two light chains that are identical to each other. For example, if the product is a bispecific monoclonal antibody engineered to pair via knob-hole interactions, NAPRI may contain knob-knob and / or hole-hole mismatched chains. In some embodiments, non-aggregated product-associated impurity (a) has the following incorrect chain configurations: (b) has a loss of a moiety, optionally lacking a light chain; (c) has an addition of a moiety, optionally where the impurity is a monomer with a light chain; (d) is a 3 / 4 antibody; (e) is a light chain mismatch; (f) is a knob / knob antibody; or (g) is a hole / hole antibody. In some embodiments, NAPRI can be a light chain dimer, a free light chain, a heavy chain dimer in which one of the heavy chains is truncated, a heavy chain monomer, or a 1+1 clipping dimer.

[0028] In some embodiments, the buffer solution has a pH of about 4.0 to about 7.5. In some embodiments, the buffer solution has a pH of about 4.0 to about 7.2. In some embodiments, the buffer solution has a pH of about 4.0 to about pH 5.5. The buffer solution may include sodium acetate or sodium citrate. The buffer solution may include sodium acetate. In some embodiments, the buffer solution may include 150 mM sodium acetate. In some embodiments, the buffer solution may include 10 mM or 50 mM sodium citrate. In some embodiments, the buffer solution may include histidine. In some embodiments, the buffer solution may include acetic acid. In some embodiments, the pH of the solution is buffered with Tris.

[0029] In some embodiments, the concentration of non-aggregated product-related impurities (NAPRIs) is measured after reducing the amount of NAPRIs according to the methods of the invention.

[0030] In some embodiments, the buffered solution of mAbs (or the buffered solution of mAbs) may have been subjected to chromatography (before a depth filter is used). In some embodiments, the buffered solution of mAbs may have been subjected to affinity chromatography, anion exchange chromatography, cation exchange chromatography, or multimodal (mixed-mode) chromatography. In some embodiments, the buffered solution of mAbs may be subjected to affinity chromatography, e.g., using a Protein A resin, a Protein L resin, an Fc-selective resin, a kappa light chain-selective resin, or a lambda light chain-selective resin. In addition to or instead of previous chromatography, e.g., affinity chromatography, in some embodiments, the buffered solution of mAbs may have been subjected to ion exchange chromatography, e.g., on an anion exchange or cation exchange column, or multimodal (mixed-mode) chromatography. The buffered solution mAbs can be concentrated by affinity chromatography.

[0031] The depth filtration media may be a multi-layer depth filter containing multiple levels of depth filtration media. Preferably, the depth filter is a dual-layer depth filter. Preferably, the depth filter does not contain diatomaceous earth. In some embodiments, the depth filter may be a Millistak+® HC Pro Synthetic Depth Filter X0SP.

[0032] The methods and uses of the present invention may further include a step of determining the presence or absence of NAPRI in the buffer solution of the mAb after the solution has passed through the depth filter, or a step of measuring the concentration of NAPRI. The amount of NAPRI remaining can be measured. Similarly, the amount of mAb can be measured after the solution has passed through the depth filter. In some embodiments, the amount of remaining NAPRI can be measured by capillary electrophoresis SDS-Page or size-exclusion chromatography. In some embodiments, NAPRI is a heavy chain dimer in which one heavy chain is truncated; a heavy chain; or a product light chain, and its amount can be measured using capillary electrophoresis SDS-Page in a reducing environment. In some embodiments, NAPRI is an LMW, a 1+1 dimer (a truncated heavy chain), a 1+1 clip dimer (a heavy chain that has been cleaved and clipped at the hinge region), a hole-hole mismatch; a hole-hole mismatch; a half-hole; a light chain, or a light chain dimer, and its amount can be measured using size-exclusion chromatography and / or capillary electrophoresis SDS-Page in a non-reducing environment. In some embodiments, the NAPRI are HMW, and the amount can be measured using hydrophobic interaction chromatography and / or capillary electrophoresis SDS-Page in a non-reducing environment. In some embodiments, the HMW NAPRI are knob-knob mismatches. In some embodiments, the NAPRI are heavy chain knobs or heavy chain holes.

[0033] In some embodiments, the total concentration or amount of Non-Agglomerated Product Associated Impurities (NAPRI) or Non-Agglomerated Product Associated Impurities (NAPRI) is less than 40%, less than 35%, less than 30%, less than 25%, less than 20%, less than 15%, less than 14%, less than 13%, less than 12%, less than 11%, less than 10%, less than 8%, less than 6%, less than 5%, less than 4%, less than 3%, less than 2%, or less than 1%.

[0034] In some embodiments, the concentration of non-aggregated product-related impurities (NAPRIs) is measured by size exclusion chromatography (SEC), and optionally, the measurement is performed using high performance liquid chromatography.

[0035] In some embodiments, the concentration of non-aggregated product-associated impurities (NAPRIs) is measured by capillary electrophoresis SDS Page (CE-SDS), optionally, the measurement is performed using a LabChip instrument or a LabChip GXII instrument. [The present invention 1001] 1. A method for reducing the amount of non-aggregated product-related impurities (NAPRI) in a buffered solution of a monoclonal antibody (mAb) by passing the mAb through a synthetic depth filter comprising silica and polyacrylic fibers to remove a portion of the NAPRI from the buffered solution, comprising: The method, wherein said NAPRI comprises incompletely or misassembled mAb polypeptides. [The present invention 1002] 1. A method for producing a monoclonal antibody (mAb) buffer solution having a reduced amount of non-aggregated product-related impurities (NAPRIs), by passing the monoclonal antibody (mAb) buffer solution through a synthetic depth filter comprising silica and polyacrylic fibers, the method comprising: The method, wherein said NAPRI comprises incompletely or misassembled mAb polypeptides. [The present invention 1003] 1. Use of a synthetic depth filter comprising silica and polyacrylic fibers to reduce the amount of non-aggregated product-related impurities (NAPRIs) in a buffered solution of a monoclonal antibody (mAb), comprising: The use, wherein the NAPRI comprises incompletely or misassembled mAb polypeptides. [The present invention 1004] Any of the methods of the invention or the use of 1003 of the invention, wherein said mAb is a multispecific antibody. [The present invention 1005] Any of the preceding methods of the invention or any of the preceding uses of the invention, wherein the mAb is an antibody fusion protein comprising an antibody or antibody fragment and another biologically active polypeptide. [The present invention 1006] Any of the preceding methods of the invention or any of the preceding uses of the invention, wherein the buffered solution of monoclonal antibody is passed through the depth filter at a temperature below ambient temperature. [The present invention 1007] Any of the preceding methods of the invention or any of the preceding uses of the invention, wherein said NAPRI is a polypeptide lacking one or more polypeptide chains of said mAb. [The present invention 1008] Any of the methods of the invention or any of the uses of the invention, wherein the NAPRI is a polypeptide comprising a different arrangement of polypeptide chains than the mAb. [The present invention 1009] 1007. The method of any one of claims 1001 to 1006, or the use of any one of claims 1003 to 1006, wherein said NAPRI comprises two heavy chains having the same amino acid sequence. [The present invention 1010] Any of the preceding methods of the invention or any of the preceding uses of the invention, wherein the buffered solution of the mAb is subjected to affinity chromatography. [The present invention 1011] Any of the preceding methods of the present invention or any of the preceding uses of the present invention, wherein the depth filter is a multi-layer depth filter comprising multiple levels of depth filtration media. [The present invention 1012] Any of the methods of the present invention or any of the uses of the present invention, wherein the depth filter does not comprise diatomaceous earth. [The present invention 1013] Any of the methods of the invention or any of the uses of the invention, further comprising measuring the NAPRI concentration in the buffered solution of the mAb after it has passed through the depth filter. [The present invention 1014] Any of the methods of the invention or any of the uses of the invention, wherein the buffered solution of the mAb has been subjected to chromatography before passing through the synthetic depth filter. [The present invention 1015] 1014. The method or use of claim 1014, wherein said chromatography is affinity chromatography, anion exchange chromatography, cation exchange chromatography, or multimodal (mixed mode) chromatography. [The present invention 1016] 1015. The method or use of claim 1015, wherein said chromatography is affinity chromatography using a Protein A resin, a Protein L resin, an Fc-selective resin, a kappa light chain-selective resin, or a lambda light chain-selective resin. [The present invention 1017] 1017. The method or use of any one of claims 1014 to 1016, wherein the chromatography is ion exchange chromatography. [The present invention 1018] 1017. The method or use of claim 1017, wherein the ion exchange chromatography uses an anion exchange column, a cation exchange column, or multimodal (mixed mode) chromatography. [The present invention 1019] A buffered solution of a monoclonal antibody (mAb) in which the amount of non-aggregation product-related impurities (NAPRIs) is reduced relative to the amount of the mAb, produced by carrying out any of the methods of the invention or by using any of the methods of the invention. [The present invention 1020] 1. A method for producing a mAb, comprising: (a) culturing a host cell containing nucleic acid encoding said mAb, whereby said mAb is produced together with NAPRI; (b) forming a buffered solution of the mAb and NAPRI; (c) reducing the amount of NAPRI by performing any of the methods of the invention or any of the uses of the invention on a buffered solution of the mAb and NAPRI; and (d) isolating the mAb from the buffer solution. A method comprising: [The present invention 1021] 1020. The method of claim 1020, wherein the buffered solution of the mAb is subjected to chromatography before passing through the synthetic depth filter. [The present invention 1022] 1020. The method of claim 1020, wherein said chromatography is affinity chromatography, anion exchange chromatography, cation exchange chromatography, or multimodal (mixed mode) chromatography. [The present invention 1023] 1023. The method of claim 1022, wherein said chromatography is affinity chromatography using a Protein A resin, a Protein L resin, an Fc-selective resin, a kappa light chain-selective resin, or a lambda light chain-selective resin. [The present invention 1024] The method of any one of claims 1021 to 1023, wherein the chromatography is ion exchange chromatography. [The present invention 1025] 1024. The method of claim 1024, wherein the ion exchange chromatography uses an anion exchange column, a cation exchange column, or multimodal (mixed mode) chromatography. [The present invention 1026] Any of the methods or uses of the present invention, wherein the buffered solution of the monoclonal antibody is passed through the depth filter at a temperature of about 10°C to about 21°C, or about 15°C to about 20°C. [The present invention 1027] The buffered solution of the monoclonal antibody has a concentration of about 100 g / m 2 ~About 2500g / m 2 , about 300g / m 2 ~About 2000g / m 2 , or about 500 g / m 2 ~About 1500g / m 2 Any of the methods or uses of the present invention, wherein a mass load in the range of [The present invention 1028] Any of the methods or uses of the present invention, wherein the buffered solution of the monoclonal antibody has a pH in the range of about 4.0 to about 7.5, about 4.0 to about 7.2, or about 4.0 to about 5.5 when passed through the depth filter. [The present invention 1029] The buffer solution of the monoclonal antibody is supplied at a rate of about 1 L / min. * m 2 ~about 10L / min * m 2 , about 1.5L / min * m 2 ~ approx. 8L / min * m 2 or approximately 4.3 L / min * m 2 Any of the methods or uses of the present invention, wherein the water passes through the depth filter at a flow rate of [Brief explanation of the drawings]

[0036] [Figure 1A] Size exclusion chromatography (SEC) traces for the purification of a first trivalent bispecific antibody comprising two heavy chain polypeptides and three light chain polypeptides are shown with (gray line) and without (dashed black line) depth filtration. The reduction of impurities as a result of depth filtration is discussed in Example 1. [Figure 1B] LabChip (SDS-Page Equivalent) traces for the purification of the first trivalent bispecific antibody are shown with (gray line) and without (black) depth filtration. The reduction of impurities as a result of depth filtration is discussed in Example 1. The areas under the labeled peaks are shown in Table 2. [Figure 2] Figure 1 shows additional size exclusion chromatography (SEC) traces for the purification of the first trivalent bispecific antibody after depth filtration. Peaks are labeled with the possible corresponding NAPRIs (HMW 1, LMW B, and LMW 3) and other impurities (HMW 2, HMW 3), as discussed in Example 1. [Figure 3A]Figure 1 shows size exclusion chromatography (SEC) traces for the purification of a second trivalent bispecific antibody with (black line) and without (dashed black line) depth filtration. The reduction of impurities as a result of depth filtration is discussed in Example 2. [Figure 3B] LabChip (SDS-Page Equivalent) traces for the purification of the second trivalent bispecific antibody are shown with (gray) and without (black) depth filtration. The reduction of impurities as a result of depth filtration is discussed in Example 2. The areas under the labeled peaks are shown in Table 4. [Figure 4] 1 shows size exclusion chromatography (SEC) traces for the purification of a first antibody fusion protein with (black line) and without (gray line) depth filtration. The reduction of impurities as a result of depth filtration is discussed in Example 3. DETAILED DESCRIPTION OF THE INVENTION

[0037] Detailed Description Antibody production and purification Depth filters can be used at various stages of monoclonal antibody production / purification. The method comprises the following steps: Harvesting: Cells and cell debris are separated from the protein-containing supernatant. The harvesting step is typically carried out using centrifugation and / or filtration; Fc-binding / Protein A affinity chromatography: This step captures mAb molecules by preferentially binding to the Fc region at neutral pH, allowing the remaining supernatant to be removed. The mAb molecules are then eluted at low pH. Lambda light chain binding / Protein L affinity chromatography: This step captures mAb molecules by preferentially binding to the lambda light chain of the Fab region at neutral pH, allowing the remaining supernatant to be removed. The mAb molecules are then eluted at low pH. Kappa light chain binding / Protein L affinity chromatography: This step captures mAb molecules by preferentially binding to the kappa light chain of the Fab region at neutral pH, allowing the remaining supernatant to be removed. The mAb molecules are then eluted at low pH. Viral inactivation: Incubation of the Protein A / L elution pool at low pH can inactivate adventitious viruses; Cation exchange chromatography: this step can remove HCPs, mAb aggregates and antibody fragments and can include a bind-elute or flow-through step; Anion exchange chromatography: this step can remove DNA, leached protein A / L and other trace contaminants and can be performed on the flow-through; Viral filtration: single-pass (dead-end) filtration using membranes designed to remove viruses; and Ultrafiltration: In this step, the mAb molecules can be further concentrated by passing the sample through a semipermeable membrane (pore size can range from 0.1 to 0.01 μm). If this is the final purification step, the elution buffer can be exchanged for the final formulation buffer.

[0038] For example, depth filtration can be used prior to viral inactivation, cation exchange chromatography, viral filtration, and ultrafiltration to remove insoluble product-related impurities and process-related impurities as disclosed herein. Depth filtration can be used to reduce non-aggregated product-related impurities in a buffered solution of a monoclonal antibody (mAb). In some embodiments, depth filtration can be used to reduce non-aggregated product-related impurities that are polypeptides having a different amino acid sequence and / or a different antibody chain configuration than the mAb. In some embodiments, depth filtration can be used to reduce non-aggregated product-related impurities that contain two heavy chains that are identical to each other.

[0039] Depth filtration can also be used in further downstream stages of the purification process for secondary clarification and haze removal, as well as for further removal of product-related impurities as disclosed herein. In some embodiments, depth filtration can be used to reduce non-aggregated product-related impurities in a buffered solution of a monoclonal antibody (mAb). In some embodiments, depth filtration can be used to reduce non-aggregated product-related impurities that are polypeptides with a different amino acid sequence and / or a different antibody chain configuration than the mAb. In some embodiments, depth filtration can be used to reduce non-aggregated product-related impurities that contain two heavy chains that are identical to each other.

[0040] All methods disclosed herein can be performed in any suitable order unless otherwise indicated herein or clearly contradicted by context.

[0041] Other definitions For purposes of this specification and the appended claims, unless otherwise indicated, all numbers expressing quantities of ingredients, percentages or proportions of materials, reaction conditions, and other numerical values ​​used in the specification and claims, whether explicitly stated or not, shall be understood to be modified in all instances by the term "about." The term "about" generally refers to a range of numbers that are considered equivalent to the recited value (i.e., having the same function or result). In many instances, the term "about" can include numbers that are rounded to the nearest significant figure.

[0042] Accordingly, unless indicated to the contrary, the numerical parameters set forth in the following specification and attached claims are approximations that may vary depending upon the desired properties sought to be obtained by the present invention. At the very least, and not as an attempt to limit the application of the doctrine of equivalents to the scope of the claims, each numerical parameter should at least be construed in light of the number of reported significant digits and by applying ordinary rounding techniques.

[0043] Notwithstanding that the numerical ranges and parameters setting forth the broad scope of the invention are approximations, the numerical values ​​set forth in the specific examples are reported as precisely as possible. However, any numerical value inherently contains certain errors necessarily resulting from the standard deviation found in their respective testing measurements. Moreover, all ranges disclosed herein should be understood to encompass all subranges subsumed therein. For example, a range of "1 to 10" includes any and all subranges between (and including) the minimum value of 1 and the maximum value of 10, i.e., any and all subranges having a minimum value of 1 or more and a maximum value of 10 or less, such as 5.5 to 10.

[0044] Before describing the present invention in more detail, some terms will be defined. The use of these terms does not limit the scope of the present invention, but serves only to facilitate the description of the present invention.

[0045] As used herein, "polypeptide chain sequence" refers to the association of polypeptide chains within a mAb. A regular IgG antibody contains two identical heavy chains and two identical light chains, and to form an IgG molecule, the polypeptide chains are arranged such that the two heavy chains associate with each other and each of the light chains associates with one of the heavy chains.

[0046] As used herein, the phrase "cell culture" includes cells, cell debris and colloidal particles, biomolecules of interest, HCPs, and DNA.

[0047] As used herein, the term "chromatography" refers to any type of technique that separates an analyte of interest (e.g., a monoclonal antibody (mAb)) from other molecules (e.g., non-aggregated product-related impurities) present in a mixture. Typically, the analyte of interest is separated from other molecules as a result of differences in the rate at which individual molecules of the mixture migrate through a stationary medium under the influence of a mobile phase, or as a result of binding and elution processes.

[0048] The terms "chromatographic resin" or "chromatographic media" are used interchangeably herein and refer to any type of phase (e.g., solid phase) that separates an analyte of interest (e.g., a monoclonal antibody (mAb)) from other molecules present in a mixture (e.g., non-aggregated product-related impurities). Typically, the analyte of interest is separated from other molecules as a result of differences in the rate at which individual molecules of the mixture migrate through a stationary solid under the influence of a mobile phase, or as a result of binding and elution processes. Various chromatographic media include, for example, cation exchange resins, affinity resins, anion exchange resins, multimodal (mixed-mode) resins (e.g., resins functionalized with ligands capable of multiple modes of interaction, such as ion exchange, hydroxyapatite, affinity, size exclusion, and hydrophobic interaction), ion exchange membranes, hydrophobic interaction resins, ion exchange monoliths, and the like.

[0049] The terms "clarification step" or "clarification" are used interchangeably herein and generally refer to one or more steps initially used in the purification of biomolecules. A clarification step generally involves the removal of cells and / or cellular debris using one or more steps, including any of the following, alone or in various combinations: centrifugation and depth filtration, sedimentation, flocculation, and sedimentation. A clarification step generally involves the removal of one or more undesirable entities and typically occurs before a step involving the capture of a desired target molecule. Another aspect of clarification is the removal of soluble and insoluble components in a sample, which can later result in fouling of sterile filters in the purification process, thereby making the overall purification process more economical.

[0050] In some embodiments, the purification process additionally employs one or more "chromatographic steps." Typically, these steps may be performed, if necessary, after separating the target molecule from one or more undesired entities using a stimuli-responsive polymer according to the present invention. In some embodiments, the chromatographic step comprises affinity chromatography. In some embodiments, the affinity chromatography is Fc-binding / Protein A affinity chromatography. In some embodiments, the affinity chromatography is lambda light chain-binding / Protein L affinity chromatography. In some embodiments, the affinity chromatography is kappa light chain-binding / Protein L affinity chromatography. In some embodiments, a buffered solution of mAb may be subjected to affinity chromatography using, for example, Protein A resin, Protein L resin, Fc-selective resin, kappa light chain-selective resin, or lambda light chain-selective resin. In some embodiments, affinity chromatography is performed using a column in which the antibody-binding target is immobilized on the column, such that the antibody is purified by affinity for its target. As used herein, the terms "composition," "solution," or "sample" refer to a mixture of a target molecule or desired product (e.g., a monoclonal antibody (mAb)) described herein along with one or more undesired entities or impurities (e.g., non-aggregated product-related impurities). In some embodiments, the sample comprises a feedstock or cell culture medium into which the target molecule or desired product is secreted. In some embodiments, the sample comprises a target molecule along with one or more impurities (e.g., host cell proteins, DNA, RNA, lipids, cell culture additives, cells, and cell debris). In some embodiments, the sample comprises a target molecule (e.g., a monoclonal antibody (mAb)) along with non-aggregated product-related impurities.

[0051] The terms "Chinese hamster ovary cell protein" and "CHOP," used interchangeably herein, refer to a mixture of host cell proteins ("HCP") derived from Chinese hamster ovary ("CHO") cell culture. HCP or CHOP is generally present as an impurity in cell culture medium or lysate (e.g., harvested cell culture fluid containing a protein or polypeptide of interest (e.g., an antibody or immunoadhesin expressed in CHO cells). Generally, the amount of CHOP present in a mixture containing a protein of interest provides a measure of the purity of the protein of interest. Typically, the amount of CHOP in a protein mixture is expressed in parts per million relative to the amount of the protein of interest in the mixture. It can be quantified by measuring, for example, using ELISA or COBAS immunoassay.

[0052] The terms "contaminants," "impurities," and "debris" are used interchangeably herein and refer to any extraneous or undesired material, including non-aggregated product-associated impurities, biological macromolecules such as DNA, RNA, one or more host cell proteins (HCP or CHOP), endotoxins, viruses, lipids, and one or more additives, that may be present in a sample containing a protein or polypeptide of interest (e.g., an antibody) to be separated from one or more extraneous or undesired molecules using the methods described herein.

[0053] When the host cell is another mammalian cell type, E. coli, a yeast cell, an insect cell, or a plant cell, it is understood that HCP refers to proteins other than the target protein that are found in the lysate of the host cell.

[0054] As used herein, the term "depth filter" refers to a filter that achieves filtration within the depth of a filter material. A common class of such filters comprises a random matrix of bonded (or otherwise fixed) fibers, forming a labyrinth of complex, tortuous flow paths. Particle separation in these filters generally results from entrapment by or adsorption to the fiber matrix. Depth filter media most frequently used for bioprocessing of cell culture broth and other feedstocks consist of cellulose fibers, a filter aid such as diatomaceous earth (DE), and a positively charged resin binder. Depth filters used in the context of the present invention are depth filters comprising silica and polyacrylic fibers. In some embodiments, the depth filter is a synthetic filter. In some embodiments, the depth filter comprises silica filter aid and / or polyacrylic fibers. In some embodiments, the depth filter comprises silica filter aid, and / or polyacrylic fibers, and / or a nonwoven material. In some embodiments, the depth filter comprises silica and polyacrylic fibers as a nonwoven material. The depth filter may comprise nylon. In some embodiments, the depth filter does not comprise diatomaceous earth. In some embodiments, the depth filter does not contain cellulose. Unlike absolute filters, depth filter media retain particles throughout the porous media, allowing for the retention of both particles larger and smaller than the pore size. Particle retention is believed to involve both size exclusion and adsorption via hydrophobic, ionic, and other interactions. Fouling mechanisms may include pore blockage, cake formation, and / or pore narrowing. Depth filters are advantageous because they remove contaminants and are disposable, thereby eliminating validation issues. The depth filter may be a multi-layer depth filter containing multiple levels of depth filter media stacked in series. Preferably, the depth filter is a dual-layer depth filter. Using multiple depth filters ensures that more of the filtrate stream efficiently contacts the depth filter media, allowing for a better adsorption profile of the impurities (3).

[0055] In some embodiments, the depth filter is 23 cm 2 Over 0.11m 2 Over 0.55m 2 or more, or 1.1m 2 In some embodiments, the claimed buffer solution has a volume of 100-1000 mL, 50-500 L, 250-2500 L, or 500-5000 L.

[0056] In some embodiments, the depth filter is 23 cm 2 In some embodiments, the depth filter has a surface area of ​​0.11 m or greater, and the claimed buffer solution has a volume of 100 to 1000 mL. 2 and the claimed buffer solution has a volume of 50 to 500 L. In some embodiments, the depth filter has a surface area of ​​0.55 m 2 and the claimed buffer solution has a volume of 250 to 2500 L. In some embodiments, the depth filter has a surface area of ​​1.1 m 2 The claimed buffer solution has the above surface area and a volume of 500 to 5000 L.

[0057] In some embodiments, depth filtration is performed using a depth filter surface area of ​​1 m 2 The reaction is carried out with a buffer solution of 10 to 1000 L, 20 to 800 L, 30 to 600 L, 40 to 440 L, or 50 to 200 L per reaction.

[0058] As used herein, the term "synthetic," in the context of a "synthetic depth filter," means that, prior to use, the depth filter is free of, or substantially free of, naturally occurring materials (e.g., diatomaceous earth, cellulose, etc.). In other words, the depth filter consists of, or consists essentially of, synthetic materials (e.g., silica, polyacrylic, nylon, etc.).

[0059] The terms "isolating," "purifying," and "separating" are used interchangeably herein in the context of purifying a target molecule (e.g., a monoclonal antibody (mAb)) from a composition or sample comprising the target molecule and one or more impurities (e.g., non-aggregated product-related impurities) using the methods disclosed herein. In some embodiments, the purity of a target molecule in a sample is increased by removing (fully or partially) one or more impurities from the sample using the methods described herein.

[0060] As used herein, the term "monoclonal antibody" or "mAb" refers to an antibody from a population of substantially homogeneous antibodies, i.e., all of the individual antibodies comprising the population are identical and / or bind to the same epitope as each other, except for possible product-related impurities such as variant antibodies, e.g., antibodies containing naturally occurring mutations, or antibodies arising during production of a monoclonal antibody preparation, in which such variants are generally present in minor amounts. (Identical mAb molecules may be referred to herein as "products.") In contrast to polyclonal antibody preparations, which typically include different antibodies directed against different determinants (epitopes), each monoclonal antibody of a monoclonal antibody preparation typically is directed against the same determinant (or determinants, in the case of multispecific monoclonal antibodies) on an antigen as each other. Thus, the modifier "monoclonal" indicates the character of the antibody as being obtained from a substantially homogeneous population of antibodies and should not be construed as requiring production of the antibody by any particular method. As used herein, the term "mAb" includes antibodies, antibody fragments, and antibody fusion proteins. mAbs can be monospecific or multispecific (e.g., bispecific). Monoclonal antibodies are composed of different polypeptide chains. A regular IgG antibody contains two identical heavy chains and two identical light chains. More complex antibodies, especially multispecific antibodies, usually contain three or more different polypeptides, which poses the problem of possible mispairing or imperfections during recombinant expression. In one embodiment of the present invention, a "mAb" contains three or more different polypeptide chains.

[0061] "Antibody fragment" refers to a molecule other than an intact antibody that contains a portion of an intact antibody that binds to the antigen to which the intact antibody binds. Examples of antibody fragments include, but are not limited to, Fv, Fab, Fab', Fab'-SH, F(ab')2; diabodies; linear antibodies; single-chain antibody molecules (e.g., scFv and scFab); single-domain antibodies (dAbs); and multispecific antibodies formed from antibody fragments. For a review of specific antibody fragments, see Holliger and Hudson, Nature Biotechnology 23:1126-1136 (2005).

[0062] A "multispecific antibody" is a monoclonal antibody that has binding specificities for at least two different sites, i.e., different epitopes on different antigens or different epitopes on the same antigen. In certain embodiments, a multispecific antibody has three or more binding specificities. Techniques for producing multispecific antibodies include, but are not limited to, recombinant coexpression of two immunoglobulin heavy chain-light chain pairs with different specificities (see Milstein and Cuello, Nature 305:537 (1983)) and "knobs-in-holes" engineering (see, e.g., U.S. Pat. No. 5,731,168 and Atwell et al., J. Mol. Biol. 270:26 (1997)). Multispecific antibodies can also be produced by manipulating electrostatic steering effects to create antibody Fc heterodimeric molecules (see, e.g., WO 2009 / 089004); cross-linking two or more antibodies or fragments (see, e.g., U.S. Pat. No. 4,676,980, and Brennan et al., Science, 229:81 (1985)); producing bispecific antibodies using leucine zippers (see, e.g., Kostelny et al., J. Immunol., 148(5):1547-1553 (1992) and WO 2011 / 034605); using conventional light chain technology to circumvent light chain mispairing issues (see, e.g., WO 98 / 50431); using "diabody" technology to create bispecific antibody fragments (see, e.g., Hollinger et al., J. Immunol., 148(5):1547-1553 (1992) and WO 2011 / 034605). al., Proc. Natl. Acad. Sci. USA, 90:6444-6448 (1993)); and by the use of single-chain Fv (sFv) dimers (see, e.g., Gruber et al., J. Immunol., 152:5368 (1994)); and by the preparation of trispecific antibodies as described, for example, in Tutt et al. J. Immunol. 147:60 (1991).

[0063] Also included herein are engineered antibodies with three or more antigen-binding sites, including, for example, "Octopus antibodies," or DVD-Igs (see, e.g., WO 2001 / 77342 and WO 2008 / 024715). Other examples of multispecific antibodies with three or more antigen-binding sites can be found in WO 2010 / 115589, WO 2010 / 112193, WO 2010 / 136172, WO 2010 / 145792, and WO 2013 / 026831. Bispecific antibodies or antigen-binding fragments thereof also include "Dual Acting FAbs" or "DABs" that contain antigen-binding sites that bind to a first and a second different antigen or two different epitopes of the same antigen (see, e.g., U.S. Patent Application Publication No. 2008 / 0069820 and WO 2015 / 095539).

[0064] Multispecific antibodies can also be generated in an asymmetric form with domain crossover in one or more binding arms of the same antigen specificity, i.e., by exchanging VH / VL domains (see, e.g., WO 2009 / 080252 and WO 2015 / 150447), CH1 / CL domains (see, e.g., WO 2009 / 080253), or complete Fab arms (see, e.g., WO 2009 / 080251, WO 2016 / 016299; see also Schaefer et al., PNAS, 108 (2011) 1187-1191, and Klein at al., MAbs 8 (2016) 1010-20). In one embodiment, a multispecific antibody comprises a cross-Fab fragment. The terms "cross-Fab fragment" or "xFab fragment" or "crossover Fab fragment" refer to a Fab fragment in which either the variable or constant regions of the heavy and light chains have been exchanged. A cross-Fab fragment contains a polypeptide chain composed of a light chain variable region (VL) and a heavy chain constant region 1 (CH1), and a polypeptide chain composed of a heavy chain variable region (VH) and a light chain constant region (CL). Asymmetric Fab arms can also be engineered by introducing charged or uncharged amino acid mutations at the domain interface to direct correct Fab pairing. See, e.g., WO 2016 / 172485.

[0065] A variety of additional molecular formats of multispecific antibodies are known in the art and are included herein (see, e.g., Spiess et al., Mol Immunol 67 (2015) 95-106). The term "bispecific antibody" refers to an antibody that can specifically bind to two different epitopes (targets).

[0066] As used herein, "non-aggregation product-associated impurities" or "NAPRI" are by-products of a desired "mAb" and may consist of incompletely or incorrectly assembled polypeptide chains of the desired mAb. In some embodiments, a NAPRI is a polypeptide lacking one or more polypeptide chains of the mAb. In some embodiments, a NAPRI is a polypeptide comprising a different polypeptide chain sequence from the mAb. In some embodiments, the molecular weight of the NAPRI is lower than the molecular weight of the desired mAb. In one example, the desired mAb is a bispecific antibody comprising a first heavy chain and a first light chain derived from an antibody that specifically binds to a first antigen and a second heavy chain and a second light chain derived from an antibody that specifically binds to a second antigen, where the CH3 domains of the first and second light chains have been modified using knob-into-hole technology (Merchant AM et al. Nat Biotechnol. 1998 Jul;16(7):677-81.). In this example, a NAPRI with incompletely assembled polypeptide chains is, for example, an antibody lacking one or more light chains. Also, in this example, NAPRIs can arise with misassembled polypeptide chains, such as dimers of identical heavy chains (knob-knob or hole dimers) or fully bispecific antibodies, in which the light chain is paired with the wrong heavy chain, resulting in the formation of a non-functional binding site. NAPRIs of mAbs can be distinguished as high molecular weight ("HMW") and low molecular weight ("LMW") polypeptides. LMW polypeptides have a molecular weight lower than that of the mAb. HMW polypeptides have a molecular weight equal to or higher than that of the mAb (e.g., HMW1 in Figure 2). However, in the context of the present invention, by definition, NAPRIs explicitly exclude aggregates. Aggregates are defined as consisting of two or more copies of the desired mAb, e.g., associated with a light chain. Thus, aggregates include species having two or more copies of the desired mAb, e.g., dimers or multimers of the desired product. In one embodiment, the NAPRI is an LMW polypeptide. In one embodiment, the NAPRI is an HWM polypeptide.

[0067] The terms "parts per million" or "ppm" are used interchangeably herein and refer to a measure of purity of a desired target molecule (e.g., a monoclonal antibody (mAb)) purified using the methods disclosed herein. Thus, this measurement can be used to measure the amount of target molecule present after a purification process, or to measure the amount of an undesired entity. In some embodiments, the unit "ppm" is used herein to refer to the amount of impurities in a nanogram / milliliter solution of a protein of interest, e.g., HCP or CHOP, expressed in milligrams / milliliter (i.e., CHOP ppm = (CHOP ng / ml) / (protein of interest mg / ml). If the protein is dried (e.g., by lyophilization), ppm refers to (CHOP ng) / (protein of interest mg).

[0068] The terms "pI" or "isoelectric point" of a polypeptide, used interchangeably herein, refer to the pH at which the positive charge of the polypeptide is balanced by its negative charge. pI can be calculated from the net charges of the amino acid residues of the polypeptide's attached carbohydrates or sialic acid residues, or can be determined by isoelectric focusing.

[0069] As used herein, the terms "pore size" and "nominal pore size" refer to a pore size that retains the majority of particulates at 60-98% of the rated pore size.

[0070] In some embodiments, a "purification step" for isolating, separating, or purifying a desired target molecule (e.g., a monoclonal antibody (mAb)) using the methods disclosed herein may be part of an overall purification process that results in a "homogeneous" or "pure" composition or sample, which term is used herein to refer to a composition or sample that contains less than 100 ppm HCPs, or less than 90 ppm, 80 ppm, 70 ppm, 60 ppm, 50 ppm, 40 ppm, 30 ppm, 20 ppm, 10 ppm, 5 ppm, or 3 ppm HCPs in a composition that includes the desired target molecule.

[0071] The term "salt" as used herein refers to a compound formed by the interaction of an acid and a base. Various salts that can be used in the various buffers used in the methods described herein include, but are not limited to, acetates (e.g., sodium acetate), citrates (e.g., sodium citrate), chlorides (e.g., sodium chloride), sulfates (e.g., sodium sulfate), or potassium salts. The term "solvent" as used herein generally refers to a liquid substance that can dissolve or disperse one or more other substances to provide a solution. Solvents include aqueous solvents and organic solvents, and useful organic solvents include nonpolar solvents, ethanol, methanol, isopropanol, acetonitrile, hexylene glycol, propylene glycol, and 2,2-thiodiglycol.

[0072] The terms "target molecule," "target biomolecule," "desired target molecule," and "desired target biomolecule" are used interchangeably herein and generally refer to a monoclonal antibody (mAb) molecule that is desired to be purified or separated from one or more undesired entities, e.g., one or more impurities that may be present in a sample containing a polypeptide or product of interest. [Example]

[0073] The following examples are provided so as to provide those of ordinary skill in the art with a complete disclosure and description of how to make the compositions and practice the methods of the present invention, and are not intended to limit the scope of what the inventors regard as their invention. Efforts have been made to ensure accuracy of numbers used (e.g., amounts, temperatures, etc.), but some experimental error and deviation do exist. Unless otherwise specified, temperatures are in °C, and as indicated, chemical reactions were conducted at atmospheric or transmembrane pressure, and the term "ambient temperature" refers to approximately 25°C, and "ambient pressure" refers to atmospheric pressure. The present invention will be further clarified by the following examples, which are intended to be exemplary of the invention.

[0074] Example 1: Reduction of NAPRI when purifying a first trivalent bispecific antibody comprising two heavy chain polypeptides and three light chain polypeptides In this example, a reduction in NAPRI was observed when depth filtration was used to purify the first trivalent bispecific antibody.

[0075] material Millistak POD 1.1m 2 :MX0SP10FS1 Millistak POD Pilot Holder: MP0DPIL0T; Millistak+HC POD Millistak+(R) HC Pro X0SP 1.1m 2 Flat seal; MP0DADPTF Adapter Kit AktaAvant 150 peristaltic pump Fraction Container acetic acid Sodium acetate*3H2O 150 mM sodium acetate pH 5.0-6.0 filtration buffer (pH adjusted with TRIS)

[0076] method 1.1m 2 The depth filter was placed in a Millistak+HC POD (Process Scale Holder) holder. Disposable adapters (3 flow-through and 3 blind plug adapters) were attached to connect the POD to the chromatography system. The hydraulic valve was set to open, and the hydraulic pressure was increased to 1000 PSI, after which the hydraulic valve was closed again. The experiment was carried out over a temperature range of +15°C to +20°C.

[0077] The filter was flushed by connecting the pressure and flow connectors, opening the inlet and vent valves, and closing the outlet valve. Once liquid was coming out through the vent valve, the vent valve was closed and the outlet valve was opened.

[0078] The system was flushed with buffer (150 mM sodium acetate pH 5.0-6.0) at three times the filter hold-up volume until the pH and conductivity remained constant.

[0079] The Protein A pool containing the first trivalent bispecific antibody (in 150 mM sodium acetate pH 2.8) was adjusted to pH 5.0-6.0 using TRIS and then applied to the depth filter. The mass loading was 4.3 L / min. * m 2 Load flow rate: 887g / m 2 : was set.

[0080] The entire flow-through was collected and analyzed for HCP content, host cell DNA content, and product-related impurities using appropriate analytical techniques such as size exclusion chromatography (SEC), microfluidic capillary electrophoresis (Labchip), mass spectrometry, and cobas e 411 (COBAS) or ELISA immunoassay.

[0081] result Using the method described above, the first trivalent bispecific antibody was synthesized using the following: X0SP MX0SP10FS1 1.1m 2 : Purification was performed using a depth filter, and the reduction of NAPRI and other impurities was determined by size exclusion chromatography (Figure 1A and Table 1 below) and in-process control by LabChip (SDS-PAGE equivalent) compared to purification without depth filtration (MabSelect SuRe pH 5.0) (Figure 1B and Table 2 below).

[0082] (Table 1) TIFF0007801227000001.tif46128Table 1 - Peak areas of NAPRI and purified first trivalent bispecific antibody determined by SEC.

[0083] (Table 2) TIFF0007801227000002.tif73128Table 2-Peak areas of NAPRI and purified first trivalent bispecific antibody determined by LabChip.

[0084] As shown in Tables 1 and 2, an increase in product quality was observed, accompanied by a decrease in NAPRI (HMW1 and LMW) as measured by the area % of the peaks in the SEC and LabChip traces.

[0085] Figure 2 shows additional SEC traces, in which HMW1 from Table 1 was identified as the major product plus light chain, and HMW from Table 1 was identified as dimers and multimers (non-NAPRI). LMW from Table 1 was also identified as LMW B (hole-hole NAPRI) and LMW 3 (disaggregated monomer missing part of one component).

[0086] Example 2: Reduction of NAPRI when purifying a second trivalent bispecific antibody comprising two heavy chain polypeptides and three light chain polypeptides In this example, a reduction in NAPRI was observed when depth filtration was used to purify the second trivalent bispecific antibody.

[0087] material Millistak POD 1.1m 2 :MX0SP10FS1 Millistak POD Pilot Holder: MP0DPIL0T; Millistak+HC POD Millistak+(R) HC Pro X0SP 1.1m 2 Flat seal; MP0DADPTF Adapter Kit AktaAvant 150 peristaltic pump Fraction Container acetic acid Sodium acetate*3H2O 150 mM sodium acetate pH 5.0-6.0 filtration buffer (pH adjusted with TRIS)

[0088] method 1.1m 2A depth filter was placed in a Millistak+HC POD (Process Scale Holder) holder. Disposable adapters (3 flow-through and 3 blind plug adapters) were attached to connect the POD to the chromatography system. The hydraulic valve was set to open, and the hydraulic pressure was increased to 1000 PSI, after which the hydraulic valve was closed again. The experiment was carried out over a temperature range of +15°C to a maximum of +20°C. The mass load was 4.3 L / min. * m 2 Load flow rate of 897.6g / m 2 was set to.

[0089] The filter was flushed by connecting the pressure and flow connectors, opening the inlet and vent valves, and closing the outlet valve. Once liquid was coming out through the vent valve, the vent valve was closed and the outlet valve was opened.

[0090] The system was flushed with buffer (150 mM sodium acetate pH 5.0-6.0) at three times the filter hold-up volume until the pH and conductivity (cond) remained constant.

[0091] The Protein A pool containing the second trivalent bispecific antibody (in 150 mM sodium acetate pH 2.8) was adjusted to pH 5.0-6.0 using TRIS and then applied to the depth filter.

[0092] The entire flow-through was collected and analyzed for HCP content, host cell DNA content, and product-related impurities using appropriate analytical techniques such as size exclusion chromatography (SEC), microfluidic capillary electrophoresis (Labchip), mass spectrometry, and cobas e 411 or ELISA immunoassay.

[0093] result Using the method described above, the second trivalent bispecific antibody was synthesized using the following: X0SP MX0SP10FS1 1.1m 2Purification was performed using a depth filter, and the reduction of NAPRI and other impurities was determined by size exclusion chromatography (Figure 3A and Table 3 below) and in-process control by LabChip (SDS-PAGE equivalent) compared to purification without depth filtration (MabSelect SuRe pH 5.5) (Figure 3B and Table 4 below).

[0094] (Table 3) TIFF0007801227000003.tif64164Table 3 - Peak areas of NAPRI and purified second trivalent bispecific antibody determined by SEC. In total, HMW represents a 4.59% reduction in total area. In total, LMW represents a 10.59% reduction in total area.

[0095] (Table 4) TIFF0007801227000004.tif73128Table 4 - Peak areas of NAPRI and purified second trivalent bispecific antibody determined by LabChip.

[0096] HMW1 was identified as a knob / knob NAPRI, HMW2 as a non-NAPRI dimer, HMW3 as a mostly non-NAPRI aggregate, LMW1 as a hole / hole NAPRI, LMW2 as a hole NAPRI, and LMW3 as a light chain NAPRI.

[0097] An increase in product quality was observed, accompanied by a decrease in NAPRI (HMW1 and LMW1 / 2 / 3), as measured by the area % of the peaks in the SEC and LabChip traces, as shown in Tables 3 and 4. Compared to the first trivalent bispecific antibody, the product quality could be improved to an even greater extent.

[0098] Example 3: Reduction of NAPRI when purifying a first antibody fusion protein containing an antigen-binding site and an engineered cytokine variant In this example, a reduction in NAPRI was observed when the first antibody fusion protein was purified using depth filtration.

[0099] material Millistak® HC Pro X0 Series μPod 23cm 2 :MX0SP23CL3 AktaAvant 150 peristaltic pump Fraction Container acetic acid Sodium acetate*3H2O 150 mM sodium acetate pH 5.0-6.0 filtration buffer (pH adjusted with TRIS)

[0100] method 23cm 2 The depth filter was then filtered with 30 mL of 150 mM sodium acetate pH 5.0-6.0 buffer at a rate of 4.4 mL / min. * m 2 The Protein A pool containing the first antibody fusion protein (in 150 mM sodium acetate pH 2.8) was adjusted to pH 5.0-6.0 using TRIS and then pre-washed at a flow rate of 4.4 L / min. * m 2 The flow rate was applied to the depth filter. The experiment was carried out over a temperature range of +15°C up to +20°C. The mass loading was 1.9 L / min. * m 2 The load flow rate was set at 2173 g / m2.

[0101] Flow-through of fractions using appropriate fractionation scheme at 4.4 mL / min * m 2 The flow rate was 0.01 and the following time points were performed: 2, 4, 6, 8, 10, 15, 20, 30 and 40 min.

[0102] Analyses were performed for HCP content, host cell DNA content, and product-related impurities using appropriate analytical techniques such as size exclusion chromatography (SEC), microfluidic capillary electrophoresis (Labchip), mass spectrometry, and cobas 411 or ELISA immunoassays.

[0103] result Using the method described above, the first antibody fusion protein was purified using an XOSP MXOSP23CL3 23 cm depth filter, and the reduction of NAPRI, as well as other impurities, was determined by size exclusion chromatography and in-process control on LabChip (SDS-PAGE equivalent) compared to purification without depth filtration (MabSelect SuRe pH 5.5) (Figure 4 and Table 5 below).

[0104] (Table 5) TIFF0007801227000005.tif75131Table 5 - Peak areas of NAPRI and purified first antibody fusion proteins determined by SEC and LabChip.

[0105] An increase in product quality was observed, with a decrease in NAPRI (HMW and LMW) as measured by the area % of the peaks in the SEC and LabChip traces, as shown in Table 5. LMW is incorrect vs. hole. HMW is incorrect vs. knob-knob.

[0106] The difference in NAPRI reduction measured by LabChip and SEC may be due to the fact that the LabChip may have lower resolution under some conditions. This is because aggregates such as the main product plus light chains are mostly dissolved during sample preparation. Sample preparation is performed under very mild reducing conditions compared to fully reducing conditions such as SEC, making it easier to distinguish between light and heavy chain ratios.

[0107] Example 4: Reduction of NAPRI when purifying a first trivalent bispecific antibody after multimodal chromatography In this example, a reduction in NAPRI was observed when the first trivalent bispecific antibody was purified using depth filtration, and the antibody was also purified using multimodal chromatography.

[0108] material Millistak® HC Pro X0 Series μPod 23cm 2 :MX0SP23CL3 Capto Adhere ImpRes Chromatography Columns AktaAvant 150 peristaltic pump Fraction Container acetic acid Sodium acetate*3H2O 50mM Sodium Citrate pH 4.0 Filtered Buffer

[0109] method 23cm 2 The depth filter is filled with 30 mL of 150 mM sodium acetate pH 5.0-6.0 buffer at 10 mL / min (this is 4.3 L / min). * m 2 The method was performed over a temperature range of +15°C up to +20°C. The mass loading was 4.3 L / min. * m 2 The load flow rate was set at 759 g / m2.

[0110] Subsequently, two different purification process steps were carried out: (i) The Protein A pool containing the first trivalent bispecific antibody was then applied to a depth filter at a flow rate of 10 mL / min (filtration buffer 50 mM sodium citrate pH 4.0). The eluate was then passed through a Capto Adhere ImpRes multimodal anion exchange column (elution buffer 50 mM sodium citrate pH 6.0 to 50 mM sodium citrate pH 3.0; 25 CV gradient), and the subsequent eluate was applied to a depth filter at a flow rate of 10 mL / min (filtration buffer 50 mM sodium citrate pH 4.0); or (ii) The Protein A pool containing the first trivalent bispecific antibody was passed through a Capto Adhere ImpRes multimodal anion exchange column (elution buffer 50 mM sodium citrate pH 6.0 to 50 mM sodium citrate pH 3.0; gradient 25 CV), and the subsequent eluate was applied to a depth filter at a flow rate of 10 mL / min (filtration buffer 50 mM sodium citrate pH 4.0).

[0111] According to either method, flow-through fractions using the appropriate fractionation scheme were performed at a flow rate of 10 mL / min at the following time points: 2, 4, 6, 8, 10, 15, 20, 30 and 40 min.

[0112] Analyses were performed for HCP content, host cell DNA content, and product-related impurities using appropriate analytical techniques such as size exclusion chromatography (SEC), microfluidic capillary electrophoresis (Labchip), mass spectrometry, and cobas 411 or ELISA immunoassays.

[0113] result The first trivalent bispecific antibody was purified using an XOSP MXOSP23CL3 23 cm depth filter, performing Protein A chromatography followed by a multimodal anion exchange chromatography (Capto Adhere ImpRes) step, with filtration either after each step or after the multimodal anion exchange chromatography step.

[0114] The reduction of NAPRI as well as other impurities was determined by in-process control by size exclusion chromatography (Table 6 below).

[0115] (Table 6) TIFF0007801227000006.tif160153 Table 6 - Peak area changes (measured in percentage points) of NAPRI and purified first trivalent bispecific antibody determined by SEC (LMW is wrong hole-hole. HMW is wrong knob-knob).

[0116] An increase in product quality was observed, accompanied by a decrease in NAPRI (HMW and LMW) as measured by the area % of the peaks in the SEC trace, as shown in Table 6. Thus, depth filtration appears to reduce NAPRI when preceded by Protein A chromatography, multimodal chromatography, or a combination of the two.

[0117] Example 5: Reduction of NAPRI when purifying a third trivalent bispecific antibody comprising two heavy chain polypeptides and three light chain polypeptides In this example, two samples with different pH values ​​were examined: a reduction in NAPRI was observed when a third trivalent bispecific antibody was purified using depth filtration at pH 5.5 and pH 7.2.

[0118] material Millistak® HC Pro X0 Series μPod 23cm 2 :MX0SP23CL3 AktaAvant 150 peristaltic pump Fraction Container acetic acid Sodium acetate*3H2O 150 mM sodium acetate pH 5.0-6.0 filtration buffer (pH adjusted with TRIS) 25 mM Tris / Tris-HCl, 25 mM sodium chloride, pH 7.2

[0119] method 23cm 2 The depth filter was pre-washed with 30 mL of 150 mM sodium acetate pH 5.0-6.0 buffer at a flow rate of 10 mL / min.

[0120] The method was carried out over a temperature range of +15°C up to +20°C. The mass loading rate was 4.3 L / min. * m 2 The loading flow rates were set at 822 g / m2 at pH 5.5 and 853 g / m2 at pH 7.2.

[0121] The Protein A pool containing the third trivalent antibody protein (in 150 mM sodium acetate pH 2.8) was adjusted to pH 5.5 or pH 7.2 using TRIS and then applied to the depth filter at a flow rate of 10 mL / min.

[0122] Flow-through fractions using the appropriate fractionation scheme were performed at a flow rate of 10 mL / min at the following time points: 2, 4, 6, 8, 10, 15, 20, 30 and 40 min.

[0123] Analyses were performed for HCP content, host cell DNA content, and product-related impurities using appropriate analytical techniques such as size exclusion chromatography (SEC).

[0124] result Using the method described above, a third trivalent antibody protein was purified using an XOSP MXOSP23CL3 23 cm depth filter and the reduction of NAPRI and other impurities was determined by in-process control by size exclusion chromatography (Table 6) compared to purification without depth filtration (MabSelect SuRe pH).

[0125] (Table 6) TIFF0007801227000007.tif129128Table 6 - Peak areas of NAPRI and purified third trivalent antibody protein determined by SEC.

[0126] As shown in Table 6, an increase in product quality was observed, accompanied by a decrease in NAPRI (HMW and LMW) as measured by the area % of the peaks in the SEC trace. HMW NAPRI were identified as non-covalently bound knob-knob species. LMW NAPRI were identified as light chain dimers and free light chains.

[0127] Example 6: Reduction of NAPRI when purifying a fourth trivalent bispecific antibody comprising two heavy chain polypeptides and three light chain polypeptides In this example, two samples with different pH values ​​were examined: a reduction in NAPRI was observed when the fourth trivalent bispecific antibody was purified using depth filtration at pH 5.5 and 7.2.

[0128] material Millistak® HC Pro X0 Series μPod 23cm 2 :MX0SP23CL3 AktaAvant 150 peristaltic pump Fraction Container acetic acid Sodium acetate*3H2O 150 mM sodium acetate pH 5.0-6.0 filtration buffer (pH adjusted with TRIS) 25 mM Tris / Tris-HCl, 25 mM sodium chloride, pH 7.2

[0129] method 23cm 2 The depth filter was pre-washed with 30 mL of 150 mM sodium acetate pH 5.0-6.0 buffer at a flow rate of 10 mL / min.

[0130] The experiment was carried out over a temperature range of +15°C up to +20°C. The mass loading was 4.3 L / min. * m 2 The loading flow rates were set at 848 g / m2 at pH 5.5 and 838 g / m2 at pH 7.2.

[0131] The Protein A pool containing the fourth trivalent antibody protein (in 150 mM sodium acetate pH 2.8) was adjusted to pH 5.5 or 7.2 using TRIS and then applied to the depth filter at a flow rate of 10 mL / min.

[0132] Flow-through fractions using the appropriate fractionation scheme were performed at a flow rate of 10 mL / min at the following time points: 2, 4, 6, 8, 10, 15, 20, 30 and 40 min.

[0133] Analyses were performed for HCP content, host cell DNA content, and product-related impurities using appropriate analytical techniques such as size exclusion chromatography (SEC).

[0134] result Using the method described above, a fourth trivalent antibody protein was purified using an XOSP MXOSP23CL3 23 cm depth filter and the reduction of NAPRI and other impurities was determined by in-process control by size exclusion chromatography (Table 7) compared to purification without depth filtration (MabSelect SuRe pH).

[0135] (Table 7) TIFF0007801227000008.tif142128Table 7-Peak areas of NAPRI and purified fourth trivalent antibody protein determined by SEC.

[0136] As shown in Table 7, an increase in product quality was observed, accompanied by a decrease in NAPRI (HMW and LMW) as measured by the area % of the peaks in the SEC trace. HMW NAPRI were identified as knob-knob species. LMW NAPRI were identified as light chain dimers and free light chain species.

[0137] Numbered paragraphs: 1. A method for reducing the amount of NAPRI in a buffered solution of a monoclonal antibody (mAb), said method comprising passing the buffered solution of the monoclonal antibody (mAb) through a synthetic depth filter comprising silica and polyacrylic fibers to remove a portion of the non-aggregated product-related impurities (NAPRI) from the buffered solution.

[0138] 2. A method for producing a buffered solution of a monoclonal antibody (mAb) having a reduced amount of non-aggregated product-related impurities (NAPRI), comprising passing the buffered solution of a monoclonal antibody (mAb) through a synthetic depth filter comprising silica and polyacrylic fibers to produce a buffered solution of a monoclonal antibody (mAb) having a reduced amount of non-aggregated product-related impurities (NAPRI).

[0139] 3. Use of a synthetic depth filter containing silica and polyacrylic fibers to reduce the amount of non-aggregated product-related impurities (NAPRIs) in a buffered solution of a monoclonal antibody (mAb).

[0140] 4. The method according to any one of paragraphs 1 to 3, or the use according to paragraph 3, wherein the mAb is a multispecific antibody.

[0141] 5. The method according to any one of paragraphs 1 to 4, or the use according to any one of paragraphs 1 to 4, wherein the mAb is an antibody fusion protein comprising an antibody or antibody fragment and another biologically active polypeptide.

[0142] 6. The method of any one of paragraphs 1 to 5, or the use of any one of paragraphs 1 to 5, wherein the NAPRI is a polypeptide composed of incompletely or misassembled polypeptide chains of the mAb.

[0143] 7. The method of any one of paragraphs 1 to 6, or the use of any one of paragraphs 1 to 6, wherein the NAPRI is a polypeptide lacking one or more polypeptide chains of the mAb.

[0144] 8. The method of any one of paragraphs 1 to 7, or the use of any one of paragraphs 1 to 7, wherein the NAPRI is a polypeptide comprising a different arrangement of polypeptide chains than the mAb.

[0145] 9. The method of any one of paragraphs 1 to 6, or the use of any one of paragraphs 3 to 6, wherein the NAPRI comprises two heavy chains having the same amino acid sequence.

[0146] 10. The method according to any one of paragraphs 1 to 9, or the use according to any one of paragraphs 1 to 9, wherein the buffered solution of mAb has been subjected to affinity chromatography.

[0147] 11. The method of any one of paragraphs 1 to 10, or the use of any one of paragraphs 1 to 10, wherein the depth filter is a multi-layer depth filter comprising multiple levels of depth filtration media.

[0148] 12. The method of any one of paragraphs 1 to 11, or the use of any one of paragraphs 1 to 11, wherein the depth filter does not comprise diatomaceous earth.

[0149] 13. The method of any one of paragraphs 1 to 12, or the use of any one of paragraphs 1 to 12, further comprising measuring the NAPRI concentration in the buffered solution of mAb after it has passed through the depth filter.

[0150] 14. A buffered solution of a monoclonal antibody (mAb) in which the amount of non-aggregated product-related impurities (NAPRI) is reduced relative to the amount of the mAb, produced by carrying out the method of any one of the preceding claims or by the use of any one of the preceding claims.

[0151] 15. A method for producing a mAb, comprising: (a) culturing a host cell containing nucleic acid encoding said mAb, whereby said mAb is produced together with NAPRI; (b) forming a buffered solution of the mAb and NAPRI; (c) reducing the amount of NAPRI by carrying out the method according to any one of the preceding claims on said buffered solution of mAb and NAPRI or by the use according to any one of the preceding claims; and (d) isolating the mAb from the buffer solution. A method comprising:

[0152] References: TIFF0007801227000009.tif138158

Claims

1. 1. A method for reducing the amount of non-aggregated product-related impurities (NAPRI) in a buffered solution of a monoclonal antibody (mAb) by passing the mAb through a synthetic depth filter comprising silica and polyacrylic fibers to remove a portion of the NAPRI from the buffered solution, comprising: The method wherein said NAPRI is an incompletely or misassembled mAb polypeptide.

2. 1. Use of a synthetic depth filter comprising silica and polyacrylic fibers to reduce the amount of non-aggregated product-related impurities (NAPRI) in a buffered solution of a monoclonal antibody (mAb), comprising: The use wherein said NAPRI is an incompletely or misassembled mAb polypeptide.

3. 3. The method of claim 1 or the use of claim 2, wherein the mAb is a multispecific antibody.

4. 4. The method of claim 1 or 3, or the use of claim 2 or 3, wherein the mAb is an antibody fusion protein comprising an antibody or antibody fragment and another biologically active polypeptide.

5. The method of any one of claims 1, 3 and 4 or the use of any one of claims 2 to 4, wherein the buffered solution of monoclonal antibody is passed through the depth filter at a temperature below ambient temperature.

6. The method of any one of claims 1 and 3 to 5, or the use of any one of claims 2 to 5, wherein said NAPRI is a polypeptide lacking one or more polypeptide chains of said mAb.

7. The method of any one of claims 1 and 3 to 6, or the use of any one of claims 2 to 6, wherein the NAPRI is a polypeptide comprising a different arrangement of polypeptide chains than the mAb.

8. The method according to any one of claims 1 and 3 to 5, or the use according to any one of claims 2 to 5, wherein said NAPRI comprises two heavy chains having the same amino acid sequence.

9. The method according to any one of claims 1 and 3 to 8, or the use according to any one of claims 2 to 8, wherein the buffered solution of the mAb has been subjected to affinity chromatography.

10. 10. The method of any one of claims 1 and 3 to 9, or the use of any one of claims 2 to 9, wherein the depth filter is a multi-layer depth filter comprising multiple levels of depth filtration media.

11. The method of any one of claims 1 and 3 to 10, or the use of any one of claims 2 to 10, wherein the depth filter does not comprise diatomaceous earth.

12. 12. The method of any one of claims 1 and 3 to 11, or the use of any one of claims 2 to 11, further comprising measuring the NAPRI concentration in the buffered solution of the mAb after passing through the depth filter.

13. 13. The method of any one of claims 1 and 3 to 12, or the use of any one of claims 2 to 12, wherein the buffered solution of the mAb has been subjected to chromatography before passing through the synthetic depth filter.

14. 14. The method or use according to claim 13, wherein the chromatography is affinity chromatography, anion exchange chromatography, cation exchange chromatography, or multimodal (mixed mode) chromatography.

15. 15. The method or use of claim 14, wherein the chromatography is affinity chromatography using a Protein A resin, a Protein L resin, an Fc-selective resin, a kappa light chain-selective resin, or a lambda light chain-selective resin.

16. The method or use according to any one of claims 13 to 15, wherein the chromatography is ion exchange chromatography.

17. 17. The method or use of claim 16, wherein the ion exchange chromatography uses an anion exchange column, a cation exchange column, or multimodal (mixed mode) chromatography.

18. 1. A method for producing a mAb, comprising: (a) culturing a host cell containing nucleic acid encoding the mAb, whereby the mAb is produced together with NAPRI; (b) forming a buffered solution of the mAb and NAPRI; (c) reducing the amount of NAPRI by carrying out the method according to any one of claims 1 and 3 to 17 on the buffered solution of mAb and NAPRI, or by the use according to any one of claims 2 to 17; and (d) isolating the mAb from the buffer solution. A method comprising:

19. 19. The method of claim 18, wherein the buffered solution of the mAb is subjected to chromatography before passing through the synthetic depth filter.

20. 20. The method of claim 19, wherein the chromatography is affinity chromatography, anion exchange chromatography, cation exchange chromatography, or multimodal (mixed mode) chromatography.

21. 21. The method of claim 20, wherein the chromatography is affinity chromatography using a Protein A resin, a Protein L resin, an Fc-selective resin, a kappa light chain-selective resin, or a lambda light chain-selective resin.

22. The method according to any one of claims 19 to 21, wherein the chromatography is ion exchange chromatography.

23. 23. The method of claim 22, wherein the ion exchange chromatography uses an anion exchange column, a cation exchange column, or multimodal (mixed mode) chromatography.

24. 24. The method or use of any one of claims 1 to 23, wherein the buffered solution of monoclonal antibody is passed through the depth filter at a temperature of from 10°C to 21°C, or from 15°C to 20°C.

25. The buffer solution of the monoclonal antibody is 100 g / m 2 ~2500g / m 2 , 300 g / m 2 ~2000g / m 2 , or 500 g / m 2 ~1500g / m 2 25. The method or use of any one of claims 1 to 24, wherein the depth filter is passed through at a mass load in the range of

26. 26. The method or use of any one of claims 1 to 25, wherein the buffered solution of monoclonal antibody has a pH in the range of 4.0 to 7.5, 4.0 to 7.2, or 4.0 to 5.5 when passed through the depth filter.

27. The buffer solution of the monoclonal antibody is supplied at a flow rate of 1 L / min. * m 2 ~10L / min * m 2 , 1.5L / min * m 2 Up to 8 L / min * m 2 or 4.3 L / min * m 2 27. The method or use of any one of claims 1 to 26, wherein the water passes through the depth filter at a flow rate of

Citation Information

Patent Citations

  • High capacity composite depth filter media with low extractables content

    JP2016530993A

  • Method for purifying a recombinant protein

    JP2018503620A

  • Protein Purification Methods

    JP2019512255A

  • Multispecific antibody purification

    JP2019521986A

  • Methods of antibody production that minimize disulfide bond reduction

    WO2018200430A1