Method for preparing glycans and method for analyzing glycans
The method of using a sugar chain releasing enzyme and labeling reagents on immobilized glycoproteins addresses the inefficiencies of existing glycan preparation and analysis methods, enabling rapid and efficient glycan preparation and analysis, especially for O-linked glycans.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- SUMITOMO BAKELITE CO LTD
- Filing Date
- 2024-09-30
- Publication Date
- 2026-05-19
AI Technical Summary
Existing methods for preparing and analyzing glycans from glycoproteins are time-consuming and require multiple steps, including visualization and labeling, and there is a lack of methods for analyzing O-linked glycans using capillary electrophoresis.
A method involving the use of a sugar chain releasing enzyme on a glycoprotein immobilized on a solid phase, followed by a labeling reaction with specific reagents, and subsequent analysis by capillary electrophoresis, allowing for rapid preparation and analysis of labeled glycans.
Enables rapid preparation and analysis of glycans, particularly O-linked glycans, through a streamlined process that reduces the number of steps and time required, facilitating high-throughput glycan analysis.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for preparing glycans and a method for analyzing glycans. This application claims priority based on Japanese Patent Application No. 2023-169184 filed on September 29, 2023, Japanese Patent Application No. 2024-072974 filed on April 26, 2024, Japanese Patent Application No. 2024-113192 filed on July 16, 2024, Japanese Patent Application No. 2023-168984 filed on September 29, 2023, Japanese Patent Application No. 2024-072852 filed on April 26, 2024, and Japanese Patent Application No. 2024-113238 filed on July 16, 2024, and incorporates the contents thereof hereby. [Background technology]
[0002] Many proteins that make up living organisms undergo glycosylation and exist as glycoproteins with attached sugar chains. The structure and distribution of sugar chains in glycoproteins are involved in the expression of protein function, and it is known that sugar chain structure changes with the onset and progression of numerous diseases.
[0003] Therefore, structural analysis of glycoproteins is expected to play an important role in various technological fields such as life sciences, medicine, and drug discovery, including elucidating the mechanisms of disease onset involving changes in sugar chain structure, and developing disease treatment and diagnostic technologies. Generally, analysis of sugar chains bound to glycoproteins is performed on the free sugar chains obtained after releasing the sugar chains from the glycoprotein.
[0004] To prepare free glycans from glycoproteins, a method is known in which the glycans released from the glycoprotein are captured and recovered by a carrier that specifically binds to the glycans (see, for example, Patent Document 1). The method described in Patent Document 1 includes releasing glycans from glycoproteins held in an electrophoresis gel, capturing the released glycans with a capture carrier, and then re-releasing the glycans bound to the capture carrier. In this method, the re-releasing of the glycans is performed by an exchange reaction with a labeling reagent.
[0005] Furthermore, the present inventors have proposed a method for releasing O-linked glycans from proteins using a basic catalyst in an aqueous solution in the presence of hydroxylamine to prepare free glycans, using safe and inexpensive chemicals and without the need for a special system, in a short processing time (see, for example, Patent Document 2). Patent Document 1 also describes a method for further labeling the obtained free glycans. [Prior art documents] [Patent Documents]
[0006] [Patent Document 1] Japanese Patent Publication No. 2009-156587 [Patent Document 2] International Publication No. 2018 / 062167 [Overview of the project] [Problems that the invention aims to solve]
[0007] When using electrophoresis as described in Patent Document 1, in order to detect the glycoproteins separated by electrophoresis, it is necessary to visualize the glycoprotein bands on the gel by isotope labeling or staining, or to visualize them after transferring them to a membrane by antigen-antibody reaction or staining. Furthermore, obtaining the sugar chain requires separating the components used for the visualization described above. Furthermore, when analyzing the obtained sugar chains, a labeling step is required to modify the sugar chains with labeling groups suitable for analysis.
[0008] Thus, analyzing glycans obtained from glycoproteins requires many steps and a considerable amount of time.
[0009] Furthermore, while solid phases capable of binding and immobilizing glycoproteins are known (for example, protein A Sepharose, which specifically captures antibodies), such solid phases are primarily used for the purification of glycoproteins. In other words, these solid phases are used to capture glycoproteins and separate them from impurities, and then to release the captured glycoproteins back from the solid phase. The process of releasing glycans from glycoproteins is performed on glycoproteins purified in this way, so obtaining glycans still takes time.
[0010] On the other hand, there is a constant need for faster preparation of glycans from glycoproteins.
[0011] Furthermore, until now, there have been no methods to analyze O-linked glycans using capillary electrophoresis or similar techniques.
[0012] This invention has been made in view of the above circumstances, and aims to provide a method for rapidly preparing labeled glycans from glycoproteins. It also aims to provide a method for preparing glycans that allows for the analysis of O-linked glycans by capillary electrophoresis or the like. Furthermore, it aims to provide a method for analyzing glycans contained in the prepared sample. [Means for solving the problem]
[0013] To solve the above problems, one aspect of the present invention includes the following aspects.
[0014] [1] In a container, a sugar chain releasing enzyme is allowed to act on a glycoprotein immobilized on a solid phase to obtain a free product containing a sugar chain (freeing step); and a labeling reaction reagent is added to the free product in the container to obtain a labeled product containing a labeled form of the sugar chain (labeling step). The glycoprotein is an antibody, the solid phase has a ligand selected from the group consisting of Protein A, Protein G, Protein L, Protein H, Protein D, and Protein Arp on its surface, and the labeling reaction reagent contains at least one selected from the group consisting of 8-aminopyrene-1,3,6-trisulfonic acid, the sodium salt of 8-aminopyrene-1,3,6-trisulfonic acid, and 9-aminopyrene-1,4,6-trisulfonic acid, a reducing agent, and a solution. A method for preparing a sugar chain.
[0015] [2] In a container, a sugar chain releasing enzyme is allowed to act on a glycoprotein immobilized on a solid phase to obtain a free product containing a sugar chain (freeing step); and a labeling reaction reagent is added to the free product in the container to obtain a labeled product containing a labeled form of the sugar chain (labeling step). The glycoprotein is an antibody, the solid phase has a ligand selected from the group consisting of Protein A, Protein G, Protein L, Protein H, Protein D, and Protein Arp on its surface, and the labeling reaction reagent contains at least one selected from the group consisting of 2-aminobenzoic acid and 3-aminobenzoic acid, a reducing agent, and a solution. A method for preparing a sugar chain.
[0016] [3] The method for preparing a sugar chain according to [1] or [2], wherein the reducing agent is picolinoborane.
[0017] [4] The method for preparing a sugar chain according to any one of [1] to [3], wherein the freeing step is carried out under open system and heating conditions.
[0018] [5] The method for preparing a sugar chain according to any one of [1] to [4], wherein the solution contains an organic acid.
[0019] [6] The method for preparing a sugar chain according to [5], wherein the solution further contains a polar solvent different from the organic acid.
[0020] [7] The method for preparing a sugar chain according to any one of [1] to [6], further comprising a separation step of obtaining a separation liquid containing the free product by solid-liquid separation after the free step.
[0021] [8] The method for preparing a sugar chain according to any one of [1] to [6], further comprising a separation step of obtaining a separation liquid containing the labeled sugar chain by solid-liquid separation after the labeling step.
[0022] [9] The method for preparing a sugar chain according to [8], further comprising a purification step of passing the separation liquid through a purification solid phase to capture the labeled substance on the purification solid phase, washing the purification solid phase with a mixed solvent, and then re-eluting the captured labeled substance. The mixed solvent contains an organic solvent and water.
[0023]
[10] The method for preparing a sugar chain according to [9], wherein the mixing ratio of the mixed solvent is acetonitrile: alcohol: water = 20 to 98: 0 to 60: 2 to 15 (total 100% by volume) in terms of volume ratio.
[0024]
[11] In the purification step, the labeled product generated by removing the solvent from the separation liquid is dissolved in an ionic aqueous solution to re-prepare the separation liquid, and the re-prepared separation liquid is passed through the purification solid phase. The method for preparing a sugar chain according to [9] or
[10] .
[0025]
[12] The method for preparing a sugar chain according to any one of [1] to
[11] , wherein the free step is performed in the presence of a deglycosylation promoter containing an acid-derived anionic surfactant.
[0026]
[13] A sugar chain analysis method having an analysis step of analyzing a sample prepared by the method for preparing a sugar chain according to any one of [1] to
[12] .
[0027]
[14] The sugar chain analysis method according to
[13] , wherein the analysis step includes the following steps (1) to (3). (1) After filling the capillary used for separation with the sample, the process of filling the capillary with the preceding electrolyte solution from the downstream end of the capillary. (2) With both ends of the capillary immersed in the electrophoresis solution, a voltage is applied with the downstream side of the capillary being positive and the upstream side being negative, thereby concentrating the multiple labeled substances contained in the sample on the upstream side of the capillary. (3) A step of separating each of the concentrated labeled substances by capillary electrophoresis.
[0028]
[15] The glycan analysis method according to
[14] , wherein the labeled product is analyzed by laser excitation fluorescence in the analysis step.
[0029]
[16] The electrophoretic rate of the electrolyte contained in the preceding electrolyte solution is faster than the electrophoretic rate of the labeled substance. The glycan analysis method according to any one of
[12] to
[14] .
[0030] Furthermore, one aspect of the present invention also includes the following aspects.
[0031]
[17] The process includes: a release step in which a sample containing glycoprotein is reacted with a glycan-releasing reagent to obtain a free product containing glycans; an adsorption step in which a purifying agent is brought into contact with a mixture containing the free product to adsorb the glycans onto the purifying agent; an elution step in which the glycans are eluted from the purifying agent; and a labeling step in which the obtained eluate is reacted with a labeling reaction reagent to obtain a labeled product containing a labeled form of the glycan, wherein the labeling reaction reagent is 8-aminopyrene-1,3,6-trisulfonic acid, the sodium salt of 8-aminopyrene-1,3,6-trisulfonic acid, and 9-aminopyrene-1,4,6-trisulfonic acid A method for preparing a sugar chain comprising: a first reagent containing at least one selected from the group consisting of acids and an aqueous solution of an organic acid; a second reagent containing a reducing agent and a solvent; the labeling step comprising: a first step of adding the first reagent and heating after drying the eluate; and a second step of adding the second reagent and heating the reaction solution obtained in the first step.
[0032]
[18] A method for preparing glycans, comprising: a liberation step of reacting a sample containing glycoprotein with a glycan liberation reagent to obtain a liberated product containing glycans; an adsorption step of contacting a mixture containing the liberated product with a purifying agent to adsorb the glycans onto the purifying agent; an elution step of eluting the glycans from the purifying agent; and a labeling step of reacting the obtained eluate with a labeling reaction reagent to obtain a labeled product containing a labeled glycan, wherein the labeling reaction reagent comprises at least one selected from the group consisting of 2-aminobenzoic acid and 3-aminobenzoic acid, a reducing agent, and a solution, the solution being a mixed solution of alcohol, an organic acid, and ultrapure water, and the concentration of the reducing agent in the labeling reaction reagent being 0.1 mmol / L or more and 20 mmol / L or less.
[0033]
[19] The method for preparing a sugar chain according to
[17] or
[18] , wherein the content of the organic acid in the solution of the labeling reaction reagent is 10% by volume or less.
[0034]
[20] The method for preparing a glycan according to any one of the following:
[17] to
[19] , wherein the purifying agent is at least one of a polymer having a betaine structure or a composite having the polymer and a support on which the polymer is supported.
[0035]
[21] The method for preparing glycans according to any one of the claims
[17] to
[20] , wherein the glycan-releasing reagent comprises a hydroxylamine compound and a basic reagent, the hydroxylamine compound is at least one selected from the group consisting of hydroxylamine, a salt of hydroxylamine, O-substituted hydroxylamine and a salt of O-substituted hydroxylamine, and the basic reagent is at least one selected from the group consisting of alkali metal hydroxides, weak alkali metal salts, alkaline earth metal hydroxides, alkaline earth metal salts dissolved in aqueous ammonia solution and organic bases.
[0036]
[22] A method for preparing a sugar chain according to any one of
[17] to
[21] , further comprising a purification step of passing the separated liquid through a purifying solid phase to capture the labeled substance on the purifying solid phase, washing the purifying solid phase with a mixed solvent and then re-eluting the captured labeled substance, wherein the mixed solvent comprises an organic solvent and water.
[0037]
[23] The method for preparing glycans according to
[22] , wherein the mixing ratio of the mixed solvent is acetonitrile:alcohol:water = 20-98:0-60:2-15 (total 100 vol%) by volume.
[0038]
[24] The method for preparing a sugar chain according to
[22] or
[23] , wherein in the purification step, the solvent is removed from the sample solution and the labeling product obtained is dissolved in an ionic aqueous solution to repreparate the sample solution, and the reprepared sample solution is passed through the solid phase for purification.
[0039] A glycan analysis method comprising an analytical step of analyzing a sample prepared by any one of the glycan preparation methods described in
[25] ,
[17] , to
[24] .
[0040]
[26] The glycan analysis method according to
[25] , wherein the analysis step comprises the following steps (1) to (3). (1) After filling the capillary used for separation with the sample, the process of filling the capillary with the preceding electrolyte solution from the downstream end of the capillary. (2) With both ends of the capillary immersed in the electrophoresis solution, a voltage is applied with the downstream side of the capillary being positive and the upstream side being negative, thereby concentrating the multiple labeled substances contained in the sample on the upstream side of the capillary. (3) A step of separating each of the concentrated labeled substances by capillary electrophoresis.
[0041]
[27] The glycan analysis method according to
[26] , wherein the labeled product is analyzed by laser excitation fluorescence in the analysis step.
[0042]
[28] The electrophoretic rate of the electrolyte contained in the preceding electrolyte solution is faster than the electrophoretic rate of the labeled substance.
[26] or
[27] The glycan analysis method according to the present invention. [Effects of the Invention]
[0043] According to the present invention, a method for rapidly preparing labeled glycans from glycoproteins can be provided. Furthermore, a method for preparing glycans that allows for the analysis of O-linked glycans by capillary electrophoresis or the like can be provided. Additionally, a method for analyzing glycans contained in the prepared sample can also be provided. [Brief explanation of the drawing]
[0044] [Figure 1] Figure 1 is a schematic diagram illustrating an example of an apparatus for carrying out the glycan preparation method of the first embodiment. [Figure 2] Figure 2 is a schematic diagram showing an example of a purifying agent used in the purification method of the second embodiment. [Figure 3] Figure 3 is an LC chart showing the results of the HPLC analysis of Example 1-1. [Figure 4] Figure 4 shows the chart obtained by capillary electrophoresis analysis of Examples 1-2. [Figure 5] Figure 5 shows the charts obtained by capillary electrophoresis analysis of Examples 1-3. [Figure 6] Figure 6 shows the charts obtained by capillary electrophoresis analysis of Examples 1-4. [Figure 7] Figure 7 is a chart obtained by capillary electrophoresis analysis in Reference Example 1-1. [Figure 8] Figure 8 shows the charts obtained by capillary electrophoresis analysis of Examples 1-5. [Figure 9] Figure 9 shows the chart obtained by capillary electrophoresis analysis in Reference Example 1-2. [Figure 10] Figure 10 is a graph showing the area values of the unreacted labeled compounds detected in Examples 1-7 and Reference Examples 1-3. [Figure 11]Figure 11 is a graph showing the area values of the glycosylated compounds detected in Examples 1-7 and Reference Examples 1-3. [Figure 12] Figure 12 is a graph showing the area values of the unreacted labeled compounds detected in Examples 1-7, 1-8, 1-9, 1-10, 1-11, 1-12 and Reference Example 1-3. [Figure 13] Figure 13 is an LC chart showing the results of HPLC analysis for Example 2-1 and Comparative Example 2-1. [Figure 14] Figure 14 is a graph showing the total peak area values of the major O-linked glycans of fetuin, obtained from the LC chart. [Figure 15] Figure 15 is an LC chart showing the results of HPLC analysis for Example 2-2 and Comparative Examples 2-2 and 2-3. [Figure 16] Figure 16 is a graph showing the total peak area values of the major O-linked glycans of fetuin, obtained from the LC chart. [Figure 17] Figure 17 shows the chart obtained by capillary electrophoresis analysis of Examples 2-3. [Figure 18] Figure 18 is a chart obtained by capillary electrophoresis analysis in Reference Example 2-1. [Figure 19] Figure 19 shows the chart obtained by capillary electrophoresis analysis of Examples 2-4. [Figure 20] Figure 20 is a chart obtained by capillary electrophoresis analysis in Reference Example 2-2. [Modes for carrying out the invention]
[0045] [First Embodiment] Method for preparing glycans The method for preparing glycans according to this embodiment includes a release step in which a glycan-releasing enzyme is reacted with a glycoprotein immobilized on a solid phase in a container to obtain a free product containing glycans, and a labeling step in which a labeling reaction reagent is added to the free product in the container to obtain a labeled product containing a labeled glycan.
[0046] According to the method of this embodiment, labeled glycans can be prepared from glycoproteins very quickly by releasing glycans on the solid phase without eluting the glycoprotein immobilized on the solid phase, and by adding a labeling reaction reagent on top of the released product without separating it.
[0047] In this embodiment, the glycoprotein subjected to the liberation step is immobilized on a solid phase. The forms of immobilization in this case include non-covalent bonds (hydrogen bonds and ionic bonds) due to specific binding, as well as covalent bonds, and do not include forms that merely retain the glycoprotein by, for example, applying it to an electrophoretic gel or transferring it to a blotting membrane. The following explains the process step by step.
[0048] [Release process] In the liberation step, a glycosylation enzyme is applied to a glycoprotein immobilized on a solid phase to release the glycans and obtain the liberated product. Preferably, the glycosylation enzyme is applied in the presence of a deglycosylation accelerator. This step substantially does not involve a protein fragmentation step by chemical or enzymatic fragmentation.
[0049] (Glycoproteins immobilized on a solid phase) Glycoproteins In the first embodiment, the glycoprotein is any protein that contains at least an N-linked glycan (N-bonded glycan) as a complex component. That is, the glycoprotein is composed of a "glycan portion" containing an N-linked glycan and a "protein portion".
[0050] In the first embodiment, "glycoprotein" refers to a protein in which at least one N-linked glycan is attached to the amino acid sequence of the protein. The glycoprotein targeted in the method for preparing glycans from glycoproteins is not particularly limited and may be of natural origin or synthesized.
[0051] In the first embodiment, "glycans" include N-linked glycans, and any N-linked glycan can be prepared from glycoproteins. N-linked glycans refer to glycans that are attached to the nitrogen atom of the amide group of the side chain of the asparagine residue of a protein. N-linked glycans include those that form branches with mannose as the starting point, such as two-branched, three-branched, and four-branched glycans. Furthermore, N-linked glycans can be classified into basic type, high-mannose type, hybrid type, complex type, etc., according to their structure.
[0052] Note that "glycans" include monosaccharides.
[0053] (Structure of glycoproteins, examples) In glycoproteins, the sugar chain portion may have a natural structure or may be artificially modified. Furthermore, the sugar chain portion may be a neutral sugar chain or an acidic sugar chain.
[0054] The protein portion of the glycoprotein may be folded in a way that incorporates the sugar chain portion into its interior before denaturation. The molecular weight of such a protein portion may be, for example, 1 kDa or more, or 10 kDa or more. There is no particular upper limit to the molecular weight range of the protein portion, and it may be, for example, 1000 kDa.
[0055] Furthermore, the site where the sugar chain is attached (sugar chain binding site) in the protein portion of the glycoprotein may be the same as that in the natural product, or it may be a site where sugar chains are not attached in the natural product.
[0056] Specific examples of glycoproteins include physiologically active substances selected from the group consisting of antibodies, hormones, enzymes, and complexes containing these. Here, complexes include antigen-antibody complexes, hormone-receptor complexes, enzyme-substrate complexes, etc. Since these glycoproteins are physiologically active substances prepared by cell culture engineering, the resulting glycan portions are heterogeneous, making it particularly important to shorten the time required for glycan analysis.
[0057] Furthermore, when glycoproteins contain antibodies, glycan analysis is particularly important. In this case, glycans that affect antibody activity can be rapidly released.
[0058] As for antibodies, Immunoglobulins such as IgG, IgM, IgA, IgD, and IgE; Small molecule antibodies such as Fab, F(ab'), F(ab')2, single-chain antibodies (scFv), and bispecific antibodies (diabody); Fc-containing molecules such as Fc fusion proteins or peptides, which are formed by the fusion of an Fc region with other functional proteins or peptides; Examples include radioactive isotope-coordinating chelates and chemically modified antibodies to which chemical modification groups such as polyethylene glycol have been added. Furthermore, the antibody may be a monoclonal antibody or a polyclonal antibody.
[0059] Furthermore, the antibody may be an antibody drug candidate or an antibody drug. Antibody drug candidates are substances in the development stage of antibody drugs and are used for evaluation of their activity and safety as antibody drugs. Releasing glycans from antibody drug candidates can accelerate antibody drug development, and releasing glycans from antibody drugs can accelerate quality control of antibody drugs.
[0060] 《Solid phase》 In the method of this embodiment, glycoproteins are immobilized on a solid phase. The forms of immobilization include non-covalent bonds (hydrogen bonds and ionic bonds) due to specific bonding, as well as covalent bonds, and do not include forms where the immobilization is merely maintained by, for example, applying to an electrophoretic gel or transferring to a blotting membrane. In the case of immobilization by non-covalent bonding, the bonding rate constant ka (unit: M) is used. -1 s -1 ) but for example 10 3 For example, 10 4 For example, 10 3 ~10 5 For example, 104 ~10 5 It is preferable that it has affinity.
[0061] The solid phase immobilizing the glycoprotein is not particularly limited as long as it is a carrier having a linker on its surface that can be linked non-covalently or covalently to the protein portion of the glycoprotein.
[0062] Linker Examples of linkers on the surface of a support include ligands capable of capturing the protein portion of a glycoprotein. (i) molecules that have affinity for the protein portion of glycoproteins (hereinafter sometimes simply referred to as molecules that have affinity for glycoproteins), (ii) ion exchange groups, and (iii) hydrophobic groups.
[0063] (i) Molecules with affinity for glycoproteins The molecules that have affinity for glycoproteins are not particularly limited and can be easily determined by those skilled in the art depending on the glycoprotein to be captured. Examples include peptidic or proteinogenic ligands, aptamers (synthetic DNA, synthetic RNA, or peptides that can specifically bind to glycoproteins), and chemically synthesized ligands (such as thiazole derivatives).
[0064] For example, if the glycoprotein is an antibody, the molecule with affinity for the glycoprotein may be one that specifically binds to the antibody or to the Fc-containing molecule which is the constant region of the antibody.
[0065] More specifically, as peptide or proteinogenic ligands, microbial ligands such as protein A, protein G, protein L, protein H, protein D, and protein Arp; Functional variants (related substances) obtained by recombinant expression of those ligands; Examples include recombinant proteins such as antibody Fc receptors. This enables high-throughput preparation and analysis of glycosylation samples, particularly for antibodies where glycosylation analysis is especially important. Among these, microbial-derived ligands are preferred.
[0066] (ii) Ion exchange group The ion exchange group is not particularly limited as long as it is a functional group that can capture glycoproteins by ion exchange function and can remove glycoproteins in an ionic strength-dependent manner by counterions. Preferably, it is a cation exchange group such as a carboxyl group (more specifically, a carboxymethyl group, etc.) or a sulfonic acid group (more specifically, a sulfoethyl group, a sulfopropyl group, etc.), and may also be an anion exchange group such as a quaternary amino group.
[0067] (iii) Hydrophobic group Examples of hydrophobic groups include alkyl or aryl groups having 2 to 8 carbon atoms. More specifically, examples include butyl groups, phenyl groups, octyl groups, etc., and these groups may be used individually or in combination of two or more.
[0068] In addition to the above, the linker on the surface of the support may also be a linking group covalently bonded to the C-terminus of a C-terminal amino acid residue, which is a component of the protein portion of a glycoprotein. Examples of such linking groups include those derived from amino group-containing compounds, which are solid-phase surface modification reagents used in peptide solid-phase synthesis.
[0069] Carrier The carrier is not particularly limited as long as it is a water-insoluble substrate capable of immobilizing the linker, and examples include organic carriers, inorganic carriers, and composite carriers thereof. Examples of organic carriers include synthetic polymers such as cross-linked polyvinyl alcohol, cross-linked polyacrylate, cross-linked polyacrylamide, and cross-linked polystyrene; and carriers made of polysaccharides such as cross-linked Sepharose, crystalline cellulose, cross-linked cellulose, cross-linked amylose, cross-linked agarose, and cross-linked dextran. These may be used individually or in combination of two or more types.
[0070] Examples of inorganic supports include glass beads, silica gel, and monolithic silica.
[0071] Organic supports readily absorb water, while inorganic supports do not. In the method of this embodiment, since various reactions are carried out on a solid phase, it is preferable to use an inorganic support that does not readily absorb water. This is preferable because the enzymes and / or reagents used in the treatment are not diluted by water seeping from the solid phase, and the effectiveness of the enzymes and reagents is not reduced. Preventing dilution of the effectiveness of enzymes and / or reagents contributes to preventing the detection of unwanted signals in the analysis.
[0072] Furthermore, if the support is an inorganic support, for example, no part of the support will be released by a glycosylation enzyme, and the elution of sugars that remain in the resin from the beginning, as would occur when using a sugar-derived resin, will not occur. Therefore, it is easier to suppress the appearance of unwanted signals in the analysis of released sugar chains.
[0073] The shape of the carrier is not particularly limited and may be particulate or non-particulate. In the case of a particulate carrier (beads), it may be a porous carrier. In the case of a particulate carrier, the average particle size may be, for example, 1 to 100 μm. It is preferable for the average particle size to be above the lower limit in terms of liquid permeability, and it is preferable for it to be below the upper limit in terms of preventing a decrease in the theoretical coefficient.
[0074] Examples of non-particulate carriers include monolithic silica gel and membranes. Monolithic silica gel is a bulk body of silica gel having three-dimensional network pores (macropores) in the micrometer size range and pores (mesopores) in the nanometer size range. The diameter of the macropores may be, for example, 1 to 100 μm, 1 to 50 μm, 1 to 30 μm, or 1 to 20 μm. It is preferable that the macropores have a diameter of at least the above lower limit value in terms of liquid permeability, and it is preferable that the macropores have a diameter of at most the above upper limit value in terms of preventing a decrease in the theoretical plate number. The diameter of the mesopores may be, for example, 1 to 100 nm or 1 to 50 nm. Thereby, sugars can be efficiently captured.
[0075] The volume of the carrier used (in the case of particulate carriers, including the volume of the carrier itself and the volume of voids during packing; in the case of non-particulate carriers, including the volume of the carrier itself, the volume of mesopores, and the volume of macropores) may be, for example, 0.001 to 0.1 cm 3 and may also be, for example, 0.001 to 0.01 cm. 3 It is preferable that the volume is at least the above lower limit value in terms of preventing a decrease in the theoretical plate number, and it is preferable that the volume is at most the above upper limit value in terms of liquid permeability. Also, with the above volume, it is easy to obtain the separated liquid after elution at a concentration suitable for HPLC analysis.
[0076] The solid phase may be used in a state where it is packed in a container such as a column, each well of a multi-well plate, each well of a filter plate, or a microtube.
[0077] (Preparation of glycoprotein immobilized on solid phase) By contacting a sample containing a glycoprotein (hereinafter sometimes abbreviated as "sample") with the above solid phase, the glycoprotein contained in the sample can be captured (immobilized) on the solid phase.
[0078] Samples containing glycoproteins to be brought into contact with the solid phase may not have undergone glycoprotein purification (separation of glycoproteins from impurities) from the viewpoint of rapid glycosylation preparation. Examples of such samples include body fluids such as blood (e.g., serum, plasma), lymph, peritoneal exudate, interstitial fluid, cerebrospinal fluid, and ascites; culture supernatants of antibody-producing cells such as B cells, hybridomas, and CHO cells; and ascites from animals transplanted with antibody-producing cells. The sample may also be a mixture of glycoprotein variations in which the protein portion is homogeneous and the glycosylation portion is heterogeneous, such as in cell culture engineering preparations of glycoproteins such as culture supernatants.
[0079] The solid phase on which the glycoprotein is immobilized may be a complex in which the glycoprotein is captured on the solid phase, or it may be a product obtained by solid-phase synthesis of glycoproteins, that is, a complex in which the glycoprotein obtained by solid-phase synthesis is bound to the solid phase used for solid-phase synthesis.
[0080] In a sample containing glycoprotein, the concentration of glycoprotein is not particularly limited and may be, for example, 0.1 μg / mL to 50 mg / mL. A concentration above the lower limit is preferable from the standpoint of detection, and a concentration below the upper limit is preferable from the standpoint of quantitative accuracy.
[0081] The amount of glycoprotein to be brought into contact with the solid phase may be 0.001 μg to 100 mg per container, or 0.001 μg to 5 mg. It is preferable for the amount of glycoprotein to be above the lower limit for detection purposes. Because the method of this embodiment involves few steps and very little sample loss, it is particularly useful when the glycoprotein is on a small scale (especially 0.001 to 500 μg). It is preferable for the amount of glycoprotein to be below the upper limit for quantitative purposes.
[0082] The glycoprotein immobilized on the solid phase may be prepared in a state where the glycoprotein immobilized on the solid phase is dispersed in a liquid component, or the liquid component may be prepared in a state where it is separated.
[0083] Furthermore, it is thought that impurities adhere to the solid phase on which the glycoprotein is immobilized at the time the sample is brought into contact with the solid phase and the capture of the glycoprotein is completed, or at the time the solid-phase synthesis is completed. Examples of impurities include components that were present in the sample before it was immobilized on the solid phase, and reagents used in the solid-phase synthesis of the glycoprotein. More specifically, examples of impurities include salts, low molecular weight compounds, proteins (proteins that do not have the ability to bind to the solid phase), and other biomolecules.
[0084] Therefore, the solid phase on which the glycoprotein is immobilized may be washed after the capture of the glycoprotein is complete or after the solid-phase synthesis is complete. This allows for the removal of impurities while the glycoprotein remains immobilized on the solid phase. Washing can be performed by passing a washing solution through the solid phase. Methods of passing the solution include gravity, suction, pressurization, and centrifugation.
[0085] As a washing solution, one with properties and composition that does not cleave the bond between the protein portion of the glycoprotein and the linker on the solid phase surface can be appropriately selected by those skilled in the art. Specifically, it may be a buffer solution, other aqueous solutions, or water. When using an aqueous solution, a pH of 5 to 10 is preferred. If the pH of the aqueous solution is within this range, it is easier to maintain the activity of the glycosylation-releasing enzyme used in a later step. Also, if the glycoprotein is fixed to the solid phase by non-covalent bonds, it is easier to prevent the release of the glycoprotein.
[0086] When using a buffer solution as a washing solution, examples of buffering agents include ammonium salts such as ammonium carbonate, ammonium bicarbonate, ammonium chloride, diammonium hydrogen citrate, and ammonium carbamate; Tris buffers such as trishydroxymethylammonium; and phosphates.
[0087] (container) The solid phase on which the glycoprotein is immobilized is prepared in a container. It is efficient and preferable to prepare the solid phase on which the glycoprotein is immobilized in the container. The container is not particularly limited as long as it is capable of holding the liquid and the solid phase and separating (passing through) the liquid while the solid phase is held in place. Examples include columns, each well of a multi-well plate, each well of a filter plate, and microtubes.
[0088] (Glycan-releasing enzymes) Examples of glycosylation enzymes that act on glycoproteins immobilized on a solid phase include peptide N-glycanases (PNGase F, PNGase A) and endo-β-N-acetylglucosaminidases (Endo-H, Endo-F, Endo-A, Endo-M).
[0089] The glycosylation-releasing enzyme may be prepared in a dispersed state in water or a buffer solution. When using a buffer solution, examples of buffering agents include ammonium carbonate, ammonium bicarbonate, ammonium chloride, diammonium hydrogen citrate, and ammonium carbamate. The buffer solution is preferably pH 5 to 10. Maintaining the activity of the glycosylation-releasing enzyme is easier when the pH of the buffer solution is within this range. The water or buffer solution may contain components such as metal salts and protein stabilizers such as glycerol.
[0090] (Deglycosylation accelerator) The liberation process may be carried out in the presence of a deglycosylation accelerator. This promotes the liberation of glycans from glycoproteins and improves the glycan recovery rate.
[0091] The deglycosylation accelerator preferably contains an acid-derived anionic surfactant. The acid-derived anionic surfactant denatures the protein portion of the glycoprotein, changing its tertiary structure and making it easier for the glycosylation-releasing enzyme to act on the degradation target site (e.g., the glycosylation-binding site). As a result, the degradation target site is easily broken down, and the glycosylation is released.
[0092] Acid-derived anionic surfactants are anionic surfactants derived from organic acids. Examples include carboxylic acid-type anionic surfactants, sulfonic acid-type anionic surfactants, sulfate ester-type anionic surfactants, and phosphate ester-type anionic surfactants. Among these, carboxylic acid-type anionic surfactants are preferred. When the acid-derived anionic surfactant is a carboxylic acid-type anionic surfactant, it denatures the protein portion of glycoproteins, but tends to denature glycosylation-releasing enzymes less easily.
[0093] As a deglycosylation accelerator, it is used together with a glycosylation-releasing enzyme, and known compounds can be used as appropriate as surfactants that promote the release of glycosylation chains.
[0094] Composition of Deglycosylation Promoters The deglycosylation accelerator may be prepared in which an acid-derived anionic surfactant is dissolved or dispersed in water or a buffer solution.
[0095] The buffering agent included in the buffer solution can be the same compound used as the buffering agent in the washing solution described above. The buffer solution is preferably pH 5 to 10. A pH within this range helps maintain the activity of the glycosylation-releasing enzyme.
[0096] In deglycosylation accelerators, components other than acid-derived anionic surfactants contained in water or buffer solutions include salts such as metal salts other than surfactants.
[0097] (Operation and reaction conditions for the liberation process) In the release step, a release reaction solution containing glycoproteins and glycosylation-releasing enzymes should be prepared under optimal conditions (temperature and pH) for the glycosylation-releasing enzymes.
[0098] When using a deglycosylation accelerator, it is sufficient to prepare a free reaction solution containing glycoprotein, an acid-derived anionic surfactant, and a glycosyltransferase, provided that the optimal conditions (temperature and pH) for the glycosyltransferase are met. Therefore, when using a deglycosylation accelerator, the solid phase on which the glycoprotein is immobilized, the deglycosylation accelerator, and the glycosyltransferase may be mixed using any operational procedure.
[0099] For example, a free reaction solution may be prepared by mixing a solid phase on which glycoproteins are immobilized, a deglycosylation accelerator, and a glycosylation-releasing enzyme at the same time. Alternatively, the free reaction solution may be prepared by adding the deglycosylation accelerator first, followed by the glycosylation-releasing enzyme. Furthermore, if the glycoprotein immobilized on the solid phase is obtained through a pretreatment described later, and the deglycosylation accelerator and the surfactant used in the pretreatment are the same substance, then during the pretreatment, an amount of surfactant equivalent to the deglycosylation accelerator may be added in addition to an amount of surfactant equivalent to the pretreatment agent, and then only the glycosylation-releasing enzyme may be added in the subsequent free reaction step (since the deglycosylation accelerator is already present).
[0100] Specifically, a free reaction solution can be prepared by mixing all the components, and then the reaction to release sugar chains from glycoproteins can be carried out by setting the temperature to the optimal temperature. In this case, the reaction time may be, for example, 5 seconds to 24 hours.
[0101] When using a deglycosylation accelerator, the solid phase on which the glycoprotein is immobilized may be mixed first with an acid-derived anionic surfactant to denature the protein portion of the glycoprotein before being mixed with the glycosylation-releasing enzyme.
[0102] In this case, the denaturation time of the protein portion may be, for example, 5 seconds to 24 hours. Furthermore, the reaction time between the glycosylation-releasing enzyme and the glycoprotein may be, for example, 5 seconds to 24 hours.
[0103] In the free reaction solution, the concentration of glycoprotein may be, for example, 0.1 μg / mL to 100 mg / mL, or for example, 1 μg / mL to 10 mg / mL. It is preferable for the concentration of glycoprotein in the free reaction solution to be above the lower limit in terms of detectability, and it is preferable for it to be below the upper limit in terms of quantitative accuracy.
[0104] When a deglycosylation accelerator is used, the concentration of the acid-derived anionic surfactant in the free reaction solution may be, for example, 0.01 to 30% by mass, for example, 0.2 to 1.0% by mass, for example, 0.2 to 0.3% by mass, or for example, 0.22 to 0.27% by mass. Alternatively, the acid-derived anionic surfactant may be used in an amount of 0.001 μg to 100 mg or less per 1 μg of glycoprotein.
[0105] By setting the amount of acid-derived anionic surfactant used within the above range, the process is favorable in terms of maintaining the activity of the glycosylation-releasing enzyme and recovering the amount of released glycans (hereinafter referred to as "free glycans"), as well as ensuring stability of the recovered amount. Furthermore, it is also preferable in that it prevents redundant drying time when, for example, the purification of free glycans is carried out using a solid support.
[0106] In the free reaction solution, the concentration of the glycosylation-releasing enzyme may be, for example, 0.001 μU / mL to 1000 mU / mL, or for example, 0.01 μU / mL to 100 mU / mL. Alternatively, the glycosylation-releasing enzyme may be used in an amount of 0.001 μU to 1000 mU per 1 μg of glycoprotein. By setting the amount of glycosylation-releasing enzyme used within the above range, efficient glycosylation becomes possible.
[0107] The reaction pH should be adjusted to the optimal pH of the glycosylation enzyme, but it may also be, for example, 5 to 10. The reaction temperature should also be adjusted to the optimal temperature of the glycosylation enzyme, but it may also be, for example, 4 to 90°C.
[0108] The liberation step is preferably carried out in an open reaction system under heating conditions so that the solvent in the solution evaporates. The heating temperature may be, for example, 40°C or higher, or for example, 45°C or higher. This allows the solvent in the solution to evaporate during the liberation step, gradually increasing the concentration of the reaction solution, making it easy to bring the solution to a concentration at which glycan liberation proceeds efficiently, regardless of the scale of the glycoprotein used in the method of this embodiment. Furthermore, since the solvent in the solution is removed simultaneously with the liberation reaction, the time required for a separate solvent removal step is shortened or eliminated, enabling even faster glycan preparation. The upper limit within the heating temperature range may be, for example, 80°C, from the viewpoint of preventing denaturation of the glycan-releasing enzyme.
[0109] (free product) The free product obtained by the free process includes free glycans and proteins bound to the solid phase. The free glycans correspond to the glycan portion of the glycoprotein, and the proteins bound to the solid phase correspond to the protein portion of the glycoprotein.
[0110] In proteins bound to a solid phase, the peptide bonds between amino acid residues in the protein portion that constituted the glycoprotein remain unbroken. The free product may be obtained in a state containing an organic solvent, or, especially when the free process is performed under open-system and heating conditions, it may be obtained in a state of evaporated dryness after the organic solvent has completely evaporated.
[0111] [Separation process 1] In the method of this embodiment, the sugar chains are released while the protein portion remains fixed to the solid phase; therefore, the protein portion can be removed simply by separating the solid phase. For this reason, the method may include a separation step (separation step 1) after the release step, in which the solid phase is separated by solid-liquid separation to obtain a separated liquid containing the released product (free sugar chains).
[0112] The separated liquid obtained by separating the solid phase is a mixture containing free glycans along with the surfactant used in the pretreatment step (described later) and the deglycosylation accelerator used in the liberation step. Depending on the glycan analysis method, the mixture containing the glycans and the aforementioned surfactant may be used for analysis. However, when analyzing by mass spectrometry, for example, it is preferable to purify the glycans from the mixture before analysis.
[0113] When purifying glycans, for example, a polymer having a hydrazide group can be used as a solid support for purification, and the separation liquid can be brought into contact with the solid support. In the separation liquid, the free glycans exist in equilibrium between cyclic hemiacetal and acyclic aldehyde forms. When the separation liquid is brought into contact with the solid support, the aldehyde group -CHO of the free glycans and the hydrazide group -NH-NH2 of the solid support react specifically to form a stable bond -C=N-NH-. This allows the solid support to capture the free glycans.
[0114] The sugar chains captured on the purification solid support may be re-liberated. Methods for re-liberation include contacting the solid support with a mixed solvent of acid and organic solvent, or a mixed solvent of acid, water, and organic solvent, and allowing the reaction to occur. The acidity of the mixed solvent may be, for example, pH 2-9, pH 2-7, or pH 2-6. Reacting in a weakly acidic to near-neutral pH is preferable because it suppresses hydrolysis of the sugar chains, such as the elimination of sialic acid residues. However, even lower pH conditions with strong acidity are also acceptable.
[0115] As described later, free glycans can be modified with low-molecular-weight compounds (labeled compounds). The low-molecular-weight compounds can be appropriately selected depending on the analytical method. Note that low-molecular-weight compounds are distinct from the high-molecular-weight compounds that constitute the solid support, and are preferably compounds that are soluble in water, buffer solutions, or organic solvents.
[0116] If separation step 1 is performed, separation step 2, which will be described later, becomes unnecessary.
[0117] [Pre-treatment process] In the method of this embodiment, a pretreatment step may be further included before the release step. This facilitates the release of glycans from glycoproteins without degrading the protein portion. As a result, the time required for the glycan release process can be significantly reduced.
[0118] In the pretreatment step, a pretreatment agent containing a surfactant is brought into contact with the glycoprotein immobilized on the solid phase. The pretreatment step may be performed after the sample has been brought into contact with the solid phase and the capture of the glycoprotein is complete, or after the solid-phase synthesis is complete or after further washing, but before contact with the glycosylation enzyme. By performing the pretreatment step, the surfactant denatures the protein portion of the glycoprotein, changing its tertiary structure. This makes it easier for the glycosylation enzyme to act on the degradation target site (e.g., the glycan-binding site), and thus facilitates the action of the glycosylation enzyme on the glycoprotein during the release process.
[0119] The surfactant contained in the pretreatment agent may be an anionic surfactant, a cationic surfactant, an amphoteric surfactant, or a nonionic surfactant.
[0120] The anionic surfactant is not particularly limited and includes fatty acid salts such as soap, alkylbenzene sulfonates, higher alcohol sulfate salts, polyoxyethylene alkyl ether sulfates, α-sulfo fatty acid esters, α-olefin sulfonates, monoalkyl phosphate salts, alkyl sulfonates, etc. However, it is preferable that the anionic surfactant used as a deglycosylation accelerator in the liberation step described above is an anionic surfactant (in this specification, an anionic surfactant that can also be used as a deglycosylation accelerator is particularly referred to as an acid-derived anionic surfactant). When an acid-derived anionic surfactant is used in the pretreatment step, it may be the same surfactant as the surfactant listed as the deglycosylation accelerator used in the liberation step, or it may be a different surfactant.
[0121] Cationic surfactants are not particularly limited and include alkyltrimethylammonium salts, dialkyldimethylammonium salts, alkyldimethylbenzylammonium salts, amine salts, etc. Amphoteric surfactants are not particularly limited and include alkylamino fatty acid salts, alkylbetaines, alkylamine oxides, etc. Nonionic surfactants are not particularly limited and include polyoxyethylene alkyl ethers, polyoxyethylene alkylphenyl ethers, alkyl glucosides, polyoxyethylene fatty acid esters, sucrose fatty acid esters, sorbitan fatty acid esters, polyoxyethylene sorbitan fatty acid esters, fatty acid alkanolamides, polyoxyethylene-polyoxypropylene block copolymers, etc.
[0122] The pretreatment agent may be used in which the surfactant is dissolved in water or a buffer solution. As the buffer solution, a buffer solution similar to the one that the deglycosylation accelerator described above may contain can be used.
[0123] The concentration of the surfactant in the pretreatment agent may be, for example, 0.01 to 30% by mass, 0.2 to 1.0% by mass, 0.2 to 0.3% by mass, or 0.22 to 0.27% by mass. By having the concentration be above the lower limit and below the upper limit, the sugar chains released in the liberation step described above can be obtained with a good recovery rate.
[0124] After contact with the solid phase, the pretreatment agent is separated from the glycoprotein immobilized on the solid phase. Separation may be performed all at once after placing the entire predetermined amount in the container, or it may be performed after adding a portion of the predetermined amount in several batches. Separation of the pretreatment agent can be carried out by reduced pressure or centrifugation.
[0125] After the pretreatment step, the solid phase on which the glycoprotein is immobilized can be subjected to the subsequent liberation step without washing, for the sake of rapid preparation. Alternatively, the solid phase on which the glycoprotein is immobilized may be washed after the pretreatment step and before the liberation step. The washing solution described above can be used for washing.
[0126] [Labeling process] In the labeling step, a labeling reaction reagent (labeling reaction solution) containing the labeling compound is added to the free product in the container from the liberation step to obtain a labeled product containing a labeled sugar chain (hereinafter sometimes referred to as a sugar chain labeled product).
[0127] (labeled compound) A labeled compound has a reactive group for the sugar chain and a modifying group to be attached to the sugar chain. In this embodiment, all labeled compounds have an amino group as the reactive group and an aromatic group as the modifying group. When a labeled compound having an amino group and an aromatic group is used, modification of the sugar chain is performed by reductive amination.
[0128] In modification by reductive amination, the amino group reacts with the aldehyde group formed at the reducing end of the sugar chain to form a Schiff base. The formed Schiff base is then reduced by a separately added reducing agent to form a peptide bond at the reducing end of the sugar chain. As a result, the labeled compound can efficiently label the sugar chain by introducing a modifying group via the reactive amino group.
[0129] Aromatic groups are preferable because they have ultraviolet-visible absorption properties or fluorescence properties, which improves detection sensitivity in UV detection or fluorescence detection.
[0130] Specifically, the labeled compounds used in this embodiment include at least one selected from the group consisting of 8-aminopyrene-1,3,6-trisulfonic acid, the sodium salt of 8-aminopyrene-1,3,6-trisulfonic acid, and 9-aminopyrene-1,4,6-trisulfonic acid. The sodium salt is preferably the trisodium salt (8-Aminopyrene-1,3,6-trisulfonic acid trisodium, APTS). These labeled compounds contain a sulfate group (sulfonic acid group).
[0131] Alternatively, the labeling compound may be at least one selected from the group consisting of 2-aminobenzoic acid (2-AA) and 3-aminobenzoic acid (3-AA). These labeling compounds contain a carboxyl group.
[0132] (Labeling reaction reagent) The labeling reaction reagent includes the labeled compound, a solution for dissolving the labeled compound, and a reducing agent.
[0133] Water, buffer solutions, and / or organic solvents can be used as the solution. Examples of buffer solutions include aqueous solutions of buffers similar to those used in the liberation process described above.
[0134] Examples of organic solvents include aprotic polar organic solvents such as dimethyl sulfoxide (DMSO), dimethylformamide (DMF), and N-methylpyrrolidone (NMP); protic polar organic solvents such as organic acids (formic acid, acetic acid, propionic acid, butyric acid, etc.) and alcohols (methanol, ethanol, propanol, etc.); and aprotic nonpolar solvents such as hexane. These solvents may be used individually or in combination of two or more.
[0135] Examples of reducing agents include sodium cyanoborohydride, sodium triacetoxyborohydride, methylamine borane, dimethylamine borane, trimethylamine borane, picoline borane, and pyridine borane.
[0136] In particular, picolineborane (2-picolineborane) is preferred from the viewpoint of both safety and reactivity.
[0137] (Operation and reaction conditions for the labeling process) In the labeling step, the labeling reagent is added to the free product. The container used in the dissolution step is used continuously in the labeling step, but no washing or other measures that alter the relative composition (ratio of components other than the solvent) of the free product are performed when adding the labeling reagent. However, it is permissible to dissolve or dilute the free product by adding water, buffer solution, and / or organic solvent.
[0138] The labeling reaction system is constructed using water, buffer solution, and / or organic solvent as a solution, with the labeling reaction reagent containing the sugar chain and labeling compound mixed with the residue from the liberation step in the solvent. If the separation step 1 described above has not been performed, the labeling reaction system contains a protein immobilized on a solid phase.
[0139] In the labeling step, the labeling reagent may be used in an amount that is, for example, 0.1 to 10 times the volume of the carrier used, or for example, 0.5 to 5 times the volume. The concentration of the labeled compound in the labeling reagent may be, for example, 0.1 to 5.0 mol / L, or for example, 0.1 to 1.0 mol / L. It is preferable that the amount of the labeled compound be above the lower limit so that labeling can be performed quantitatively, and it is preferable that it be below the upper limit so that excess reagent can be easily removed.
[0140] The concentration of the reducing agent in the labeling reaction reagent may be, for example, 0.1 to 5.0 mol / L, or for example, 0.1 to 1.5 mol / L. It is preferable that the amount of reducing agent be above the lower limit so that labeling can be performed quantitatively, and it is preferable that it be below the upper limit so that excess reagent can be easily removed.
[0141] The amount of solution in the labeling reaction reagent may be 0.5 to 10 times the volume of the support used, or for example, 1 to 5 times the volume. It is preferable for the amount of solvent to be above the lower limit in terms of solubility, and it is preferable for the amount to be below the upper limit in terms of quantitative labeling.
[0142] The reaction temperature of the labeling reagent may be, for example, 4 to 80°C, or for example, 25 to 70°C. A reaction temperature above the lower limit is preferable in that it shortens the reaction time, and a reaction temperature below the upper limit is preferable in that it suppresses partial degradation of the sugar chain due to high temperature. The reaction time of the labeling reagent may be, for example, 5 to 600 minutes, or for example, 30 to 300 minutes. A reaction time above the lower limit is preferable in that it allows for quantitative labeling, and a reaction time below the upper limit is preferable in that it suppresses partial degradation of the sugar chain.
[0143] Since the labeling reaction proceeds rapidly at room temperature, the labeled compound acts upon the addition of the labeling reagent to generate the glycosylated product. Therefore, the separation step described later can be performed at any time after adding the labeling reagent, regardless of whether the reaction is complete or not.
[0144] The following describes the case where picoline borane is used as the reducing agent. When picoline borane is used as the reducing agent, it is preferable that the labeling reaction reagent contains an organic acid as a solution. This allows the labeled compound and picoline borane to be dissolved at a high concentration, thus shortening the time required for the labeling process.
[0145] From the viewpoint of more favorably obtaining the effect of shortening the time required for the labeling process, the organic acid is preferably formic acid, acetic acid, propionic acid, butyric acid, etc. Furthermore, it is preferable that the organic acid is a liquid in the labeling reaction system. Among these, from the viewpoint of ease of operation, the organic acid is preferably citric acid. If the organic acid is a solid at room temperature, it may be used as an aqueous solution.
[0146] The concentration of the organic acid in the solvent may be, for example, 40 to 100% by volume. This allows for good labeling efficiency. From the viewpoint of obtaining even better labeling efficiency, the concentration of the organic acid in the solution may be 50 to 100% by volume or less, or 75 to 100% by volume.
[0147] In addition to the organic acid mentioned above, a different polar solvent may be used in combination. This can improve the solubility of the reducing agent. As a result, the glycosylated product can be obtained in a good yield.
[0148] Examples of the polar solvents mentioned above include alcohols such as methanol and dimethyl sulfoxide.
[0149] When a polar solvent is used in combination, the amount of the polar solvent may be 4% or more but less than 100% by volume of the organic acid, or 4 to 70% by volume. It is preferable that the amount of polar solvent be above the lower limit of the above value because it is easier to slow down the volatilization rate of the organic acid, and it is preferable that it be below the upper limit of the above value because it is easier to obtain the effect of the organic acid (the effect of improving the solubility and reactivity of the labeled compound and reducing agent).
[0150] When picoline borane is used as a reducing agent, it is most preferable to use a mixed solution of citric acid aqueous solution and methanol, or a mixed solution of acetic acid, methanol, and water as the solvent.
[0151] When picoline borane is used as a reducing agent, the concentration of the labeled compound in the labeling reaction reagent may be 0.1 to 5.0 mol / L or 0.1 to 1.5 mol / L. A concentration of the labeled compound above the lower limit is preferable in terms of shortening the labeling process time, and a concentration below the upper limit is preferable in terms of facilitating the removal of excess reagent.
[0152] The amount of picoline borane in the labeling reaction reagent may be, for example, 0.05 to 2.5 mol / L, or for example, 0.05 to 0.75 mol / L. It is preferable for the amount of picoline borane to be above the lower limit in terms of shortening the labeling process time, and it is preferable for it to be below the upper limit in terms of facilitating the removal of excess reagent.
[0153] When picoline borane is used as a reducing agent, the amount of solvent may be 0.1 to 10 times the volume of the support used, or 0.5 to 5 times the volume. It is preferable for the amount of solvent to be above the lower limit in terms of solubility, and it is preferable for the amount of solvent to be below the upper limit in terms of shortening the labeling process time.
[0154] The reaction temperature of the labeling reagent may be, for example, 4 to 80°C, or for example, 25 to 70°C. A reaction temperature above the lower limit is preferable in that it shortens the reaction time, and a reaction temperature below the upper limit is preferable in that it suppresses partial degradation of the sugar chain due to high temperature. The reaction time of the labeling reagent may be, for example, 30 to 600 minutes, or for example, 90 to 300 minutes. A reaction time above the lower limit is preferable in that it allows for quantitative labeling, and a reaction time below the upper limit is preferable in that it suppresses partial degradation of the sugar chain.
[0155] (labeled product) After the labeling step, the container contains the glycosylated product. Furthermore, if the separation step 1 described above is not performed, the container after the labeling step contains the protein bound to the solid phase. Therefore, the labeled product obtained by the labeling step can also be said to contain both the glycosylated product and the protein bound to the solid phase. In the protein bound to the solid phase, the peptide bonds between amino acid residues in the protein portion that constituted the glycoprotein remain unbroken. The labeled product may be contained in water, a buffer solution, and / or an organic solvent.
[0156] [Separation process 2] (Elution of glycosylated compounds) If separation step 1 described above is not performed, a separation step (separation step 2) may be performed after the labeling step to obtain a separation solution containing the glycan-labeled material from the labeled product by solid-liquid separation. This allows for easy separation of the glycan-labeled material. For example, the glycan-labeled material can be eluted by passing an eluent through the labeled product. The eluent used in this case may be an aqueous solution such as water, an aqueous solution, or a colloidal solution. The eluent may be selected to have the property of being able to cleave the bond between the solid phase and the protein portion (for example, when analyzing the glycan-labeled material by chromatography), or it may be selected not to have such a property (for example, when analyzing the glycan-labeled material by mass spectrometry). This yields a separation solution containing the glycan-labeled material.
[0157] The separated liquid contains not only the glycosylated product, but also excess labeled compound used in the labeling step, and unwanted substances such as acid-derived anionic surfactants if a deglycosylation accelerator was used in the liberation step. If an eluent with the ability to cleave the bond between the solid phase and the protein is selected, protein will also be mixed into the separated liquid. If an eluent without the ability to cleave the bond between the solid phase and the protein is selected, the separated liquid will contain virtually no protein.
[0158] (purification process) Depending on the analytical method for glycans, the glycan-labeled product may be purified by removing unwanted substances from the separation solution. Unwanted substances may be removed by passing the separation solution through a purification solid phase to capture the glycan-labeled product, and then re-eluting the captured glycan-labeled product.
[0159] (Solid phase for purification) An example of a solid phase for purification is a solid phase that captures glycosylated compounds by non-covalent bonds. Specifically, silica gel columns, amino acid columns, and other normal-phase solid phases can be used.
[0160] As a solid phase for purification, the cleanup column included with a commercially available antibody-glycan analysis kit (Sumitomo Bakelite, product number: BS-X4410) can be used.
[0161] Another example of a solid phase for purification is a solid phase that captures glycosylated substances by covalent bonding. This improves the purity of the glycan-labeled product, especially when proteins are present. Specifically, a polymer having a hydrazide group can be used as the solid support for purification. In the separation solution, the free glycans are in equilibrium between the cyclic hemiacetal form and the acyclic aldehyde form. The aldehyde group -CHO and the hydrazide group -NH-NH2 react specifically to form a stable bond -C=N-NH-. This allows the free glycans to be captured by the solid support for purification.
[0162] (Preparation of separated liquid) When capturing the glycosylated compound in the purification solid phase, the separated solution may be re-prepared by adding an ionic aqueous solution to the mixture containing the glycosylated compound and excess labeled compound. This operation promotes the removal of excess labeled compound from the separated solution.
[0163] The pH of an ionic aqueous solution can be, for example, between pH 1 and pH 13. Examples of ionic aqueous solutions include ammonium chloride aqueous solution (pH approximately 5), sodium chloride aqueous solution (pH approximately 7), ammonium bicarbonate aqueous solution (pH approximately 8), ammonia aqueous solution (pH approximately 11), sodium carbonate aqueous solution (pH approximately 11), and sodium hydroxide aqueous solution (pH approximately 13).
[0164] When a pH of 6.5 to 7.5 is defined as neutral, an ionic aqueous solution may be acidic (pH 1 to 6.5), neutral (pH 6.5 to 7.5), or basic (pH 7.5 to 13). If the ionic aqueous solution is basic, the pH may be 12 or less, 11 or less, or 10 or less.
[0165] When using an aqueous solution of ammonium bicarbonate as the ionic aqueous solution, the concentration of the solution is preferably 50 mmol / L or higher, more preferably 150 mmol / L or higher, and even more preferably 200 mmol / L or higher. Furthermore, a concentration of 500 mmol / L or lower provides sufficient effect, and may be 400 mmol / L or lower. The upper and lower limits of the aqueous solution concentration can be arbitrarily combined.
[0166] When using an aqueous solution of ammonium bicarbonate as the ionic aqueous solution, the concentration can be, for example, between 200 mmol / L and 400 mmol / L.
[0167] The inventors compared a separation solution containing excess APTS under two conditions: one without ionic compounds (Condition 1) and one with ionic compounds (Condition 2). They confirmed that the amount of impurities (APTS) after the purification process was significantly reduced under Condition 2 compared to Condition 1.
[0168] Furthermore, the inventors have confirmed that when a separation solution containing excess APTS, without any ionic compounds, is passed through a purification solid phase, a yellow solid precipitate forms on the upper surface of the solid phase. On the other hand, when a separation solution containing ionic compounds is passed through a purification solid phase, the precipitation of the above-mentioned yellow solid is not observed. This solid is presumed to be excess APTS.
[0169] As described above, the labeled compounds used in this embodiment have acidic groups (sulfonic acid groups, carboxyl groups). When a mixture containing such labeled compounds is dissolved in an ionic aqueous solution, it is thought that the labeled compounds are likely to remain dissolved in the solution. Therefore, when the separated solution to which the ionic aqueous solution has been added is passed through the purification solid phase, the labeled compounds pass through the purification solid phase, while the glycan-labeled substances, which are the target of capture, are captured by the solid phase. This makes it possible to efficiently separate (purify) the labeled compounds and the glycan-labeled substances.
[0170] (Washing) In the above purification process, the glycosylated product is captured on a purification solid support, and then the purification solid support is washed with a solvent. The solvent used is preferably a mixed solvent containing an organic solvent and water, and more preferably a mixed solvent of acetonitrile, water, and alcohol. As the alcohol, methanol, ethanol, or both can be used.
[0171] For purification, it is preferable to wash with a mixed solvent prepared by mixing the three solvents with different hydrophobic properties in a volume ratio of acetonitrile:alcohol:water = 20-98:0-60:2-15 (total 100 vol%).
[0172] In the mixed solvent, acetonitrile is preferably present in an amount of 30% to 70% by volume, and more preferably in an amount of 40% to 65% by volume.
[0173] In the mixed solvent, the alcohol is preferably present in an amount of 30% to 60% by volume, and more preferably 30% to 55% by volume. Ethanol is preferred as the alcohol used.
[0174] In the mixed solvent, water is preferably present in an amount of 3% to 15% by volume, and more preferably in an amount of 2% to 10% by volume.
[0175] As an example of a mixed solvent, one can cite a mixture of acetonitrile, alcohol, and water in a ratio of 50:40:10 (totaling 100% by volume).
[0176] The solid phase support for purification should be washed by passing the mixed solvent through it and then centrifuging it to remove the solvent. This washing operation removes unreacted labeled compounds as well as the aforementioned unwanted substances. The washing operation may be performed only once or two or more times. Repeating the washing operation removes unwanted substances, but it also washes away the glycosylated product attached to the solid phase support for purification, raising concerns about a decrease in the yield of the glycosylated product. Therefore, it is preferable to limit the washing operation to three times or less.
[0177] In re-liberation, the reaction can be carried out by contacting the solid support with a mixed solvent of acid and organic solvent, or a mixed solvent of acid, water, and organic solvent. The acidity of the mixed solvent may be, for example, pH 2 to 9, pH 2 to 7, or pH 2 to 6. It is preferable to carry out the reaction in a weakly acidic to near-neutral pH because it can suppress hydrolysis of the sugar chain, such as the elimination of sialic acid residues. However, even lower pH conditions with strong acidity are also acceptable.
[0178] 《Methods for analyzing glycans》 The glycan-labeled compounds prepared by the method of this embodiment can be analyzed qualitatively and / or quantitatively by known methods such as mass spectrometry (e.g., MALDI-TOF MS), chromatography (e.g., high-performance liquid chromatography or HPAE-PAD chromatography), and electrophoresis (e.g., capillary electrophoresis). Various databases (e.g., GlycoMod, Glycosuite, SimGlycan®, etc.) can be used for glycan analysis. The glycan-labeled compounds prepared by the method of this embodiment are particularly suitable for capillary electrophoresis.
[0179] Such glycoprotein glycan analysis enables rapid analysis of glycosylation modifications of antibody drugs during research and development, manufacturing, and quality assurance; analysis of glycoproteins in serum and other samples during research on glycosylation biomarkers; glycan analysis of stem cells; glycan analysis of electrophoretic gel bands; and glycan analysis of plant tissues.
[0180] If the amount of glycosylated product obtained by the method described above is small, the analytical step should be performed in order using a known capillary electrophoresis apparatus, following steps (1) to (3) below. (1) After filling the capillary to be used for separation with the sample, the process of filling the capillary with the preceding electrolyte solution from the downstream end of the capillary. (2) With both ends of the capillary immersed in the electrophoresis solution, a voltage is applied with the downstream side of the capillary being positive and the upstream side being negative, thereby concentrating multiple glycan-labeled compounds contained in the sample on the upstream side of the capillary. (3) A step of separating each of the concentrated glycosylated products by capillary electrophoresis.
[0181] In other words, in the analytical process, the glycosylated compounds contained in the sample are concentrated in steps (1) and (2), and then separated in step (3).
[0182] (Process (1)) The pre-electrolyte solution contains electrolytes. The electrophoretic rate of the electrolytes in the pre-electrolyte solution is faster than the electrophoretic rate of the glycosylated product when compared under the same application conditions. As such a pre-electrolyte solution, Cl - An electrolyte solution containing ions is preferred. For example, an aqueous sodium chloride solution is preferred as the preceding electrolyte solution.
[0183] The concentration of the preceding electrolyte solution may be 0.5 mmol / L or more and 300 mmol / L or less, or 5 mmol / L or more and 100 mmol / L or less.
[0184] In other words, a sodium chloride aqueous solution with a concentration of 0.5 mmol / L to 300 mmol / L is preferred as the preceding electrolyte solution.
[0185] The sample and pre-electrolyte solution are filled into the capillary by injecting each liquid under pressure from the end of the capillary. The pre-electrolyte solution is filled by controlling the pressure and pressurization time during filling of the capillary. Preferably, the amount of pre-electrolyte solution filled is between 0.05% and 20% of the total length of the capillary.
[0186] (Process (2)) In step (2), for example, both ends of the capillary are immersed in a vial filled with electrophoresis solution, and a voltage is applied to the capillary. This causes the pre-electrolyte solution filled on the downstream side of the capillary to move to the upstream side, and the glycan-labeled material in the sample also moves to the upstream side of the capillary and is concentrated.
[0187] (Step (3)) In step (3), the glycan-labeled product is separated by a known capillary electrophoresis method.
[0188] Subsequently, the separated glycan-labeled compounds are detected. In the analytical step, any detection method used in the technical field of the present invention and capable of detecting the target substance can be employed. Examples of applicable detection methods include laser-induced fluorescence detection and mass spectrometry. In particular, in this embodiment, it is preferable to detect the glycan-labeled compounds by laser-induced fluorescence detection.
[0189] Using the analytical method described above, glycosylated compounds can be suitably detected from low-concentration samples.
[0190] [kit] In this embodiment, a kit for preparing glycoprotein glycans is provided, comprising a solid phase for immobilizing glycoproteins, a container for holding the solid phase and releasing and labeling glycans, and a glycan-releasing enzyme.
[0191] The kit of this embodiment is for carrying out the method for preparing the glycoprotein glycans described above. The kit of this embodiment may include protocol information for using the kit. The protocol information for using the kit may be a printed document showing the method for preparing the glycoprotein glycans of the present invention described above, or it may be access information that enables access to web information showing the method.
[0192] Furthermore, the kit of this embodiment may further comprise one or all of the following: a pretreatment agent containing a surfactant, a deglycosylation accelerator containing an acid-derived anionic surfactant, a labeling reaction reagent, a cleanup solid phase, and a container for filling the cleanup solid phase.
[0193] Here, the surfactant contained in the pretreatment agent and the acid-derived anionic surfactant contained in the deglycosylation accelerator may be the same compound. In this case, the pretreatment agent and the deglycosylation accelerator may be contained in the same container without distinction.
[0194] A container for holding a solid phase for immobilizing glycoproteins and for releasing and labeling glycans, or a container for filling with a cleanup solid phase, may be a column, multiwell plate, filter plate, microtube, etc., but is preferably a spin column. The spin column may further include a collection tube for recovering the separation solution separated by centrifugation. The container may be included in the kit with the solid phase already filled, or it may be included as a separate item from the solid phase.
[0195] The solid phase for immobilizing glycoproteins is a solid phase having binding functional groups on its surface, such as non-covalent groups (hydrogen-bonding groups and ionic-bonding groups) and covalent groups, that have specific binding properties capable of binding to glycoproteins. Examples of solid phases include cation exchange carriers, hydrophobic interaction carriers, and inorganic carriers, but do not include solid phases that merely hold glycoproteins, such as electrophoretic gels or transfer membranes.
[0196] The solid phase may be an inorganic support. When the support is inorganic, for example, a portion of the support will not be released by a glycosylation enzyme. Therefore, it is easier to suppress the appearance of unwanted signals in the analysis of released glycans.
[0197] When the antibody is a glycoprotein, the solid phase may have a ligand selected from the group consisting of protein A, protein G, protein L, protein H, protein D, and protein Arp on its surface. This enables high-throughput preparation and analysis of glycosylation samples, especially for antibodies where glycosylation analysis is of particular importance.
[0198] Furthermore, the labeling reaction reagent may contain a labeled compound, a reducing agent, and a solvent. Alternatively, the labeled compound, reducing agent, and solvent may be contained in separate containers and mixed at the time of use.
[0199] The kit of this embodiment enables the release of glycans from glycoproteins without the need for protein degradation. Therefore, the time required for glycan release can be significantly reduced. Furthermore, it facilitates the action of glycan-releasing enzymes during the glycan release process.
[0200] Furthermore, if the kit includes a labeling reagent, the labeling reagent can be added on top of the free product without separating the free product, allowing for extremely rapid preparation of glycans from glycoproteins as analytical samples (in a labeled form).
[0201] [Device] Figure 1 is a schematic diagram illustrating an example of an apparatus for carrying out the glycosylation method of this embodiment. The apparatus 100 includes a holding section 20 for holding a container 15 containing glycoproteins immobilized on a solid phase 10, and an introduction section 30 for introducing reagents into the container 15.
[0202] The holding portion 20 is for holding a container 15 that is to contain glycoproteins fixed to the solid phase 10. The manner in which the holding portion 20 holds the container 15 is not particularly limited, and one example is to hold the container by fitting most of it into the holding hole or holding hole of the holding portion 20. Other examples include to hold the container by engaging the engaging recess (engaging protrusion) of the container with the engaging projection (engaging recess) of the holding portion, and to hold the container by clamping the holding portion of the holding portion.
[0203] The introduction section 30 is for introducing liquids into the container 15 held by the holding section 20. In the example shown in Figure 1, the introduction section 30 includes a tank 34 containing a glycosylation release enzyme 31, a labeling reaction reagent 32, and a pretreatment agent / deglycosylation accelerator 33, a liquid delivery pipe 35a for delivering each reagent contained in the tank 34, valves (36, 37, 38) for controlling the delivery of each reagent, and a nozzle 35 for introducing each reagent into the container 15.
[0204] The introduction section 30 includes at least a glycosylation enzyme introduction section for introducing the glycosylation enzyme 31 used in the liberation step, and a labeling reaction reagent introduction section for introducing the labeling reaction reagent 32 used in the labeling step.
[0205] The introduction unit 30 adds the glycosylation enzyme 31 and the labeling reaction reagent 32 into the same container 15. The manner in which the introduction unit 30 introduces the liquid into the container 15 is not particularly limited. For example, the liquid to be delivered is delivered from a tank 34 in which the liquid to be delivered is stored into the container 15 via a tubular member. Other examples include injecting the liquid collected in a tubular member into the container.
[0206] In the introduction section 30, the glycosylation enzyme introduction section and the labeling reaction reagent introduction section may be configured as separate and independent components. In this case, the glycosylation enzyme 31 and the labeling reaction reagent 32 may be introduced sequentially in this order, or they may be introduced at the same time. The labeling reaction reagent introduction section may be automatically controlled, and when both reagents are introduced sequentially, the timing of the operation of the labeling reaction reagent introduction section may be controlled based on the reaction time required for the release process, etc.
[0207] Alternatively, in the introduction section 30, the glycosylation enzyme introduction section and the labeling reaction reagent introduction section may be configured as the same component. In this case, the glycosylation enzyme 31 and the labeling reaction reagent 32 may be introduced in a mixed state, or they may be introduced sequentially in that order. When both reagents are introduced sequentially, the timing at which the labeling reaction reagent is delivered, that is, the timing at which the introduction section 30 functions as a labeling reaction reagent introduction section, may be controlled based on the reaction time required for the release process, etc.
[0208] The apparatus 100 may further include a separation unit 40 for separating the contents of the container 15 into solid and liquid. If the apparatus 100 includes a separation unit 40, the separation unit 40 separates the solid from the liquid from the contents contained in the container 15. The solid is what remains in the container 15 and is substantially the solid phase 10 and the substances fixed thereto. In this case, the container 15 may be one equipped with a filter capable of solid-liquid separation (e.g., a spin column, a filtered microplate, etc.). Furthermore, the container 15 may be used with a recovery container 16 (e.g., a collection tube, a collection plate, etc.) attached to it. In this case, the holding unit 20 may also include a recovery holding unit for holding the recovery container 16 attached to the container 15. In the example in Figure 1, the recovery holding unit and the holding unit 20 are made of the same material.
[0209] The specific separation method of the separation unit 40 is not particularly limited and may be centrifugal filtration, vacuum filtration, or pressure filtration. In the example shown in Figure 1, the separation method of the separation unit 40 is centrifugal filtration. The separation unit 40 includes a rack 41 for holding the container 15 (or 16), a drive shaft 42, and a motor 43.
[0210] As shown in the example in Figure 1, the separation unit 40 may be configured as a component independent of the holding unit 20 in which the release process and the labeling process are performed. In this case, the apparatus 100 may include a transfer unit 50 that automatically transfers the containers 15 (and 16) from the holding unit 20 to the separation unit 40.
[0211] The transfer unit 50 may be configured to transfer only the container 15 (and 16), or it may be configured to transfer the container 15 with the collection container 16 attached. The transfer unit 50 may include an arm that operates to directly or indirectly (i.e., via the collection container 16) grasp, release, and move the container 15, and an arm control unit that controls the operation of the arm.
[0212] By operating the separation unit 40, the liquid is collected in the recovery container 16. Therefore, for example, by introducing the glycosylation-releasing enzyme 31 and the labeling reaction reagent 32, the reaction product in the reaction vessel (i.e., the contents of the reaction vessel after the reaction) can be collected in the recovery container 16 by vacuum filtration, pressure filtration, centrifugation, etc. Also, for example, when preparing a glycoprotein immobilized on a solid phase 10, the glycoprotein immobilized on the solid phase 10 can be left in the container 15 from the preparation obtained by contacting the sample with the solid phase, while the remainder after removing the glycoprotein from the sample can be discarded into the recovery container 16.
[0213] Furthermore, if the device 100 has a separation unit 40, the introduction unit 30 described above may be configured to allow the cleaning solution to be introduced into the container 15. This allows the cleaning solution to be passed through the container 15.
[0214] The apparatus 100 may further include a temperature control unit 60 for adjusting the temperature of the contents of the container 15. If the apparatus 100 includes a temperature control unit 60, the temperature control unit 60 only needs to have at least a heater function. The temperature control unit 60 heats the container 15 to the temperature required for the release process and the labeling process, respectively.
[0215] Furthermore, the apparatus 100 may be configured to have an open space that communicates with the space inside the reaction vessel. This allows the solvent in the container 15 to evaporate when the liberation step is performed in an open system, making it easy to apply the solution to a concentration at which glycan liberation proceeds efficiently, regardless of the amount of glycoprotein. Moreover, since solvent removal is performed simultaneously with the liberation reaction, there is no need to take time for a separate solvent removal step, enabling even faster glycan preparation.
[0216] The apparatus 100 may include a liquid transfer unit (not shown) that automatically transfers the separated liquid containing the glycan-labeled material recovered in the recovery container by solid-liquid separation after the labeling process to a purification column containing a purification solid phase. The purification column may be installed and used in the separation unit 40 described above.
[0217] The apparatus 100 may have at least one, preferably all, of its operable components (e.g., the introduction unit 30, the separation unit 40, the transfer unit 50, the temperature control unit 60, and the liquid transfer unit) automatically controlled. This allows for faster preparation of glycoprotein sugar chains.
[0218] With the above configuration, it is possible to provide a method for rapidly preparing labeled glycans from glycoproteins.
[0219] Furthermore, the above-described glycan analysis method allows for suitable analysis even when the amount of glycan used for analysis is small.
[0220] [Second Embodiment] Method for preparing glycans The method for preparing glycans according to this embodiment includes a liberation step of reacting a sample containing glycoprotein with a glycan liberation reagent to obtain a liberated product containing glycans; an adsorption step of contacting a mixture containing the liberated product with a purifying agent to adsorb the glycans onto the purifying agent; an elution step of eluting the glycans from the purifying agent; and a labeling step of reacting the obtained eluate with a labeling reaction reagent to obtain a labeled product containing a labeled form of the glycan.
[0221] As will be described in more detail later, in this embodiment, the labeling reaction reagent used to label the sugar chain is a reagent containing at least one labeling compound selected from the group consisting of 8-aminopyrene-1,3,6-trisulfonic acid, the sodium salt of 8-aminopyrene-1,3,6-trisulfonic acid, and 9-aminopyrene-1,4,6-trisulfonic acid.
[0222] According to the method of this embodiment, a method for rapidly preparing labeled glycans from glycoproteins can be provided. The following explains the process step by step.
[0223] [Release process] In the liberation step, a sample containing glycoproteins (hereinafter sometimes simply referred to as the sample) is treated with a glycosylation-releasing enzyme to release the glycans and obtain the liberated product. This step substantially does not involve protein fragmentation steps by chemical or enzymatic fragmentation.
[0224] Glycoproteins In the second embodiment, the glycoprotein is any protein that contains at least an O-linked glycan (O-bonded glycan) as a complex component. That is, the glycoprotein is composed of a "glycan portion" containing an O-linked glycan and a "protein portion".
[0225] In the second embodiment, "glycoprotein" refers to a protein in which at least one O-linked glycan is attached to the amino acid sequence of the protein. The glycoprotein targeted in the method for preparing glycans from glycoproteins is not particularly limited and may be of natural origin or synthesized.
[0226] Furthermore, in the second embodiment, "glycans" include O-type glycans, and any O-type glycan can be prepared from glycoproteins. An O-type glycan is a structure in which a glycan is attached to a serine (Ser) or threonine (Thr) amino acid residue of a protein via the -OH group contained in each amino acid side chain. O-type glycans are further classified into 1 to 8 types based on their core structure.
[0227] Note that "glycans" include monosaccharides.
[0228] Regarding the glycoprotein of the second embodiment, the structure and examples of glycoproteins are the same as those shown in (Structure and examples of glycoproteins) of the first embodiment.
[0229] Glycan-releasing reagents Glycan-releasing reagents act on glycan-binding sites in glycoproteins, releasing glycans from the glycoproteins. These reagents contain a hydroxylamine compound and a basic reagent.
[0230] The glycan-releasing reagent should ultimately be in contact with the glycoprotein, hydroxylamines, and basic reagent. For example, any of the following (i) to (iii) is acceptable. (i) is preferred in order to suppress the degradation (peeling) of O-linked glycans. (i) Hydroxylamines are added to the glycoprotein, followed by the addition of a basic reagent. (ii) After adding a basic reagent to the glycoprotein, hydroxylamines are added. (iii) Mix the hydroxylamines with a basic reagent and add it to the glycoprotein.
[0231] • Hydroxylamines Examples of hydroxylamines include at least one selected from the group consisting of hydroxylamine, a salt of hydroxylamine, an oxygen-substituted hydroxylamine, and an oxygen-substituted hydroxylamine salt.
[0232] Specifically, an aqueous solution of hydroxylamine; Hydroxylamine hydrochloride, hydroxylamine sulfate, hydroxylamine phosphate; O-(tetrahydro-2H-pyran-2-yl)hydroxylamine, O-tert-butyldimethylsilylhydroxylamine, O-trimethylsilylhydroxylamine; O-methylhydroxylamine hydrochloride, O-ethylhydroxylamine hydrochloride, nitrobenzylhydroxylamine hydrochloride; At least one compound selected from the group consisting of the following can be listed.
[0233] As for hydroxylamines, aqueous solutions of hydroxylamines are preferred.
[0234] The final concentration of hydroxylamines in the mixture (reaction solution) obtained by mixing glycoproteins and glycosylation release reagents may be 2% to 70% by volume, 5% to 70% by volume, or 10% to 60% by volume. However, the concentration range is not limited to the above ranges, and those skilled in the art can adjust it as appropriate depending on the type of glycoprotein, other components (amines, basic reagents, other additives), contact conditions (time, temperature, etc.), etc.
[0235] Basic reagents Examples of basic reagents include at least one compound selected from the group consisting of alkali metal hydroxides, weak alkali metal salts, alkaline earth metal hydroxides, alkaline earth metal salts dissolved in ammonia water, and organic bases.
[0236] Examples of alkali metal hydroxides include, but are not limited to, lithium hydroxide, sodium hydroxide, and potassium hydroxide.
[0237] Furthermore, examples of weak alkali metal salts include, but are not limited to, sodium bicarbonate and sodium carbonate.
[0238] Furthermore, examples of alkaline earth metal hydroxides include, but are not limited to, calcium hydroxide, barium hydroxide, and strontium hydroxide.
[0239] Furthermore, examples of alkaline earth metal salts dissolved in ammonia water include, but are not limited to, calcium acetate, calcium chloride, barium acetate, and magnesium acetate.
[0240] Among these, lithium hydroxide is particularly preferred.
[0241] Organic bases are not limited to the following, but for example, DBU:1,8-diazabicyclo[5.4.0]undec-7-ene TBD: 1,5,7-Triazabicyclo[4.4.0]dec-5-ene MTBD: 7-Methyl-1,5,7-triazabicyclo[4.4.0]dec-5-ene TMG: 1,1,3,3-Tetramethylguanidine t-BuTMG: 2-tert-butyl-1,1,3,3-tetramethylguanidine DBN: 1,5-diazabicyclo[4.3.0]non-5-ene CTAH: Cetyltrimethylammonium hydroxide Examples include:
[0242] The compounds listed as organic bases may be used individually or in combination of two or more.
[0243] Organic bases that are strong organic bases (pKa 12 or higher) are preferred, and specific examples include DBU, TBD, MTBD, TMG, and CTAH. Using DBU, TMG, TBD, MTBD, or CTAH as the organic base is preferable because it makes it easier to remove the base after the reaction by washing with an organic solvent after the liberation step.
[0244] The final concentration of the basic reagent in the reaction solution can be, for example, in the concentration range of 2 mmol / L or more and 10 mol / L or less. However, it is not limited to the above-mentioned concentration range, and those skilled in the art can appropriately adjust it according to the type of target glycoprotein, other components in the reaction solution (hydroxylamines, other additives), reaction conditions (time, temperature, etc.), and the like. For example, when using lithium hydroxide as the basic reagent, it can be 6 mmol / L or more and 8 mol / L or less.
[0245] By setting the concentration of the basic reagent to be not less than the above lower limit value, the reaction time can be shortened. Also, by setting the concentration of the basic reagent to be not more than the above upper limit value, the influence of the remaining basic reagent on the next step can be suppressed.
[0246] The molar ratio of hydroxylamines to the basic reagent is preferably 1:2 or more and 300:1 or less, and more preferably 1:1 or more and 100:1 or less. By setting the molar ratio of hydroxylamines to the basic reagent within the above range, the decomposition (peeling) reaction of the released sugar chains can be suppressed, and the yield of the sugar chains can be improved.
[0247] Conditions such as the temperature (reaction temperature) and time (reaction time) for contacting the glycoprotein with the sugar chain release reagent are not particularly limited as long as the sugar chain can be released from the target protein, and those skilled in the art can appropriately set them according to conditions such as the type and concentration of the target glycoprotein, hydroxylamines, and basic reagent.
[0248] The reaction temperature can be, for example, room temperature or higher and 80°C or lower. By lowering the reaction temperature, the sugar chain decomposition (peeling) rate can be suppressed. In particular, N-glycolyl groups and the like are easily decomposed when reacted at high temperatures. Therefore, when targeting glycoproteins with unknown sugar chains, it is preferably 50°C or lower, and can be, for example, about 37°C.
[0249] The reaction time can be, for example, about 5 minutes to 16 hours.
[0250] • Amines Amines may be further added to the sugar chain liberation reagent. Examples of amines are not limited to those listed below, but include at least one compound selected from the group consisting of aqueous ammonia, aqueous methylamine solution, aqueous dimethylamine solution, ethylamine, diethylamine, ethanolamine, ethylenediamine, butylamine, morpholine, DABCO, and anthranilic acid.
[0251] Preferred amines are aqueous ammonia, morpholine, DABCO, and anthranilic acid. Using aqueous ammonia, morpholine, DABCO, anthranilic acid, etc., as amines suppresses peeling, isomerization, and amide decomposition.
[0252] The final concentration of amines in the reaction solution can be, for example, in the range of 40 mmol / L to 15 mol / L. However, it is not limited to the above concentration range, and those skilled in the art can adjust it as appropriate depending on the type of glycoprotein being targeted, other components in the reaction solution (hydroxylamines, basic reagents, other additives), reaction conditions (time, temperature, etc.), etc.
[0253] When aqueous ammonia is used as the amine, the final concentration of ammonia in the reaction solution can be between 2% and 25% by volume, preferably between 10% and 20% by volume. More preferably, it is 20% by volume.
[0254] (Process for removing hydroxylamines) As mentioned above, when liberating O-linked glycans in particular, it is preferable that the final concentration of hydroxylamines be as high as possible. However, if the mixture of glycoprotein and reaction solution contains a high concentration of hydroxylamines, unreacted hydroxylamines may remain in the mixture after the glycans have been liberated. Unreacted hydroxylamines inhibit the labeling reaction when labeling and analyzing glycans, so it is preferable to remove them.
[0255] Therefore, the liberation step may further include a step of removing unreacted hydroxylamines after liberating the sugar chains from the glycoprotein. In the removal step, a ketone, aldehyde, or acid anhydride is added to the reaction solution from which the sugar chains have been liberated.
[0256] By adding a ketone to the reaction solution, hydroxylamines can be reacted with the ketone to convert them into ketoximes. Suitable ketones include acetone, methyl ethyl ketone, methyl isobutyl ketone, and 4-hydroxybutanone.
[0257] By adding an aldehyde to the reaction solution, hydroxylamines can be reacted with the aldehyde to convert them into aldoximes. Examples of aldehydes that can be used include salicylaldehyde, benzaldehyde, and 4-hydroxybenzaldehyde.
[0258] By adding an acid anhydride to the reaction solution, hydroxylamines can be reacted with the acid anhydride to convert them into amides. Examples of acid anhydrides that can be used include acetic anhydride and succinic anhydride.
[0259] (free product) The free product obtained by the free process is a mixture containing free glycans corresponding to the glycan portion of the glycoprotein and proteins corresponding to the protein portion of the glycoprotein.
[0260] [Adsorption process] In the adsorption process, a purifying agent is brought into contact with a mixture containing the free product, and the sugar chains (free sugar chains) are adsorbed onto the purifying agent.
[0261] Purifying agent The purifying agent is a "solid phase that has affinity for sugar chains." By coming into contact with the mixture, the purifying agent can adsorb the sugar chains contained in the mixture.
[0262] Such purifying agents include, for example, hydrophilic carriers such as graphite carbon, crystalline cellulose, silica, and monolithic silica. Monolithic silica is a filter-like porous continuous silica with a three-dimensional network structure, and has advantages such as good liquid permeability and less dead volume compared with conventional particulate silica. Monolithic silica may be fixed in a columnar container, or may be fixed, for example, in a multi-well plate.
[0263] The pore size of the monolithic silica preferably has a through-pore diameter of 1 to 100 μm, more preferably 1 to 50 μm, still more preferably 1 to 30 μm, and particularly preferably 1 to 20 μm, where the through-pores are continuous with each other.
[0264] Also, the purifying agent is preferably at least one of the following (A) and (B). (A) A polymer having a betaine structure (B) A composite having a polymer having a betaine structure and a support carrying the polymer
[0265] The "betaine structure" means a molecular structure satisfying the following requirements (a) to (c). (a) Having a positive charge and a negative charge at non-adjacent positions within the same molecular structure. (b) The atom having a positive charge is not bonded to a dissociable hydrogen. (c) The entire molecular structure has no charge.
[0266] Specifically, the betaine structure is either the structure of the following formula (1) or formula (2). A compound having either the structure of the following formula (1) or formula (2) in the molecule has a betaine structure at the molecular terminal. -Z-L-A …(1) -A-L-Z …(2) [In formulas (1) and (2), Z represents a cationic group selected from the group consisting of a secondary amino group, a tertiary amino group, a quaternary ammonium group, an imino group, and an iminium group. L represents an alkylene group having 1 to 10 carbon atoms. A represents an anionic group selected from the group consisting of phosphate, carboxyl, phosphonic, phosphinic, sulfonic, sulfen, hydroxyl, thiol, and boronic groups.
[0267] In other words, the betaine structure in the purifying agent has an anionic group, a cationic group, and a linker that connects the anionic group and the cationic group.
[0268] Cationic groups include secondary amino groups (-NHR), tertiary amino groups (-NR2), and quaternary ammonium groups (-N + R3), imino group (-C(=NR)-) and iminium group (-C(=N + R2)-) are examples, but the list is not limited to these.
[0269] The R in the cationic group is either an alkyl group or an aryl group, with alkyl groups being preferred. Alkyl groups may be linear or branched. If a cationic group has multiple R groups, the multiple R groups may be different or the same. R groups are preferably alkyl groups having 1 to 3 carbon atoms.
[0270] A quaternary ammonium group is preferred as the cationic group. In formula (2) above, a trimethylammonium group is more preferred as the cationic group.
[0271] The cationic group may ionically bond with anions to form a salt. Even such a cationic group will function as a cationic group in the mixed solution after the anion is released. Examples of anions that ionically bond with cationic groups include fluoride ions, chloride ions, bromide ions, iodide ions, hydrochloride ions, acetate ions, sulfate ions, hydrofluoric acid ions, and carbonate ions.
[0272] In formulas (1) and (2), the group represented by L is a linker that connects the cationic group and the anionic group. The alkylene group, which is the linker, may be linear, cyclic, or have a branched structure, but a linear structure is preferred. The alkylene group preferably has 2 to 5 carbon atoms.
[0273] Examples of anionic groups include, but are not limited to, phosphate groups (-OP(=O)(OH)2), carboxyl groups (-COOH), phosphonic acid groups (-P(=O)(OH)2), phosphinic acid groups (-P(=O)R(OH)), sulfonic acid groups (-SO3H), sulfinic acid groups (-S(=O)OH), sulfenic acid groups (-SOH), hydroxyl groups (-OH), thiol groups (-SH), and boronic acid groups (-B(OH)2).
[0274] Preferred anionic groups include phosphate groups, phosphonic acid groups, sulfonic acid groups, and carboxyl groups, with phosphate groups and carboxyl groups being more preferred.
[0275] The anionic group may form a salt by ionic bonding with a cation. Even such an anionic group will function as an anionic group in a mixed solution after the cation is removed. Examples of cations that form ionic bonds with the anionic group include alkali metal ions such as sodium ions and potassium ions, and alkaline earth metal ions such as calcium ions.
[0276] In the betaine structure of the purifying agent, there are no particular restrictions on the combination of cationic and anionic groups. A preferred combination is one in which the anionic group is selected from the group consisting of phosphate, phosphonic acid, carboxyl, and sulfonic acid groups, the cationic group is a quaternary ammonium group, and the linker is an alkylene group having 1 to 4 carbon atoms.
[0277] Furthermore, in the betaine structure of the purifying agent, a phosphate group is more preferable as the anionic group. Furthermore, in the betaine structure of the purifying agent, it is preferable that the portion exhibiting the betaine structure is a phosphorylcholine group.
[0278] ((A) Polymers having a betaine structure) The purifying agent may be a polymer (macromolecule) having a betaine structure represented by formula (1) or (2) above. In the following description, a "polymer having a betaine structure" may be referred to as "polymer A".
[0279] Polymer A may be linear or may have a branched structure.
[0280] If polymer A has a branched structure, the main chain may have a betaine structure, or the side chains may have a betaine structure. If the side chains have a betaine structure, polymer A may have all side chains with a betaine structure, or some of the side chains may have a betaine structure. Side chains that do not have a betaine structure may or may not have an electric charge.
[0281] There are no particular restrictions on the main chain of polymer A. The main chain preferably contains repeating units derived from a (meth)acrylic compound, and more preferably contains repeating units derived from a (meth)acrylic acid ester or a derivative of a (meth)acrylic acid ester.
[0282] Furthermore, the main chain may also contain repeating units copolymerizable with the above-mentioned repeating units. Examples of such copolymerizable repeating units include those derived from vinyl groups, allyl groups, α-alkoxymethylacryloyl groups, maleic acid residues, fumaric acid residues, itaconic acid residues, crotonic acid residues, isocrotonic acid residues, and citraconic acid residues.
[0283] Polymer A is preferably a polymer of a polymerizable monomer having a betaine structure. Known monomers can be used as the polymerizable monomer having a betaine structure. For example, (i) phosphobetaine monomers having a phosphobetaine group, (ii) carboxybetaine monomers having a carboxybetaine group, and (iii) sulfobetaine monomers having a sulfobetaine group.
[0284] (i) As the phosphobetaine monomer, polymerizable monomers having a phosphorylcholine group are preferred. For example, 2-(meth)acryloyloxyethyl phosphorylcholine, 2-(meth)acryloyloxyethoxyethyl phosphorylcholine, 6-(meth)acryloyloxyhexylphosphorylcholine, 10-(meth)acryloyloxyethoxynonylphosphorylcholine, 2-(meth)acryloyloxypropylphosphorylcholine, 2-(meth)acryloyloxybutylphosphorylcholine is an example. The above monomers have a betaine structure in which A is a phosphate group, Z is a quaternary ammonium group, and L is an ethylene group in formula (2).
[0285] In particular, 2-(meth)acryloyloxyethyl phosphorylcholine is preferred as the phosphobetaine monomer due to its easy availability, and 2-methacryloyloxyethyl phosphorylcholine (MPC) is more preferred.
[0286] Furthermore, as a phosphobetaine monomer, a monomer having a betaine structure represented by the above formula (1) can also be used. For example, • Dimethyl(2-methacryloyloxyethyl)(phosphonatomethyl)aminium, Dimethyl(2-acryloyloxyethyl)(phosphonatomethyl)aminium (In formula (1) above, A is a phosphonic acid group, Z is a quaternary ammonium group, and L is a methylene group) • Dimethyl(2-methacryloyloxyethyl)(2-phosphonatoethyl)aminium, Dimethyl(2-acryloyloxyethyl)(2-phosphonatoethyl)aminium (In formula (1) above, A is a phosphonic acid group, Z is a quaternary ammonium group, and L is an ethylene group) • Dimethyl(2-methacryloyloxyethyl)(3-phosphonatopropyl)aminium, Dimethyl(2-acryloyloxyethyl)(3-phosphonatopropyl)aminium (In formula (1) above, A is a phosphonic acid group, Z is a quaternary ammonium group, and L is a propylene group) • Dimethyl(2-methacryloyloxyethyl)(4-phosphonatobutyl)aminium, Dimethyl(2-acryloyloxyethyl)(4-phosphonatobutyl)aminium (In formula (1) above, A is a phosphonic acid group, Z is a quaternary ammonium group, and L is a butylene group) These are some examples.
[0287] As the carboxybetaine monomer, a monomer having a betaine structure represented by the above formula (1) can be used. For example, • Dimethyl(2-methacryloyloxyethyl)(carboxylatomethyl)aminium, Dimethyl(2-acryloyloxyethyl)(carboxylatomethyl)aminium (In formula (1) above, A is a carboxyl group, Z is a quaternary ammonium group, and L is a methylene group) • Dimethyl(2-methacryloyloxyethyl)(2-carboxylatoethyl)aminium, Dimethyl(2-acryloyloxyethyl)(2-carboxylatoethyl)aminium (In formula (1) above, A is a carboxyl group, Z is a quaternary ammonium group, and L is an ethylene group) • Dimethyl(2-methacryloyloxyethyl)(3-carboxylatopropyl)aminium, Dimethyl(2-acryloyloxyethyl)(3-carboxylatopropyl)aminium (In formula (1) above, A is a carboxyl group, Z is a quaternary ammonium group, and L is a propylene group) • Dimethyl(2-methacryloyloxyethyl)(4-carboxylatobutyl)aminium, Dimethyl(2-acryloyloxyethyl)(4-carboxylatobutyl)aminium (In formula (1) above, A is a carboxyl group, Z is a quaternary ammonium group, and L is a butylene group) These are some examples.
[0288] As the sulfobetaine monomer, a monomer having a betaine structure represented by the above formula (1) can be used. For example, • Dimethyl(2-methacryloyloxyethyl)(sulfonatomethyl)aminium, Dimethyl(2-acryloyloxyethyl)(sulfonatomethyl)aminium (In formula (1) above, A is a sulfonic acid group, Z is a quaternary ammonium group, and L is a methylene group) • Dimethyl(2-methacryloyloxyethyl)(2-sulfonatoethyl)aminium, Dimethyl(2-acryloyloxyethyl)(2-sulfonatoethyl)aminium (In formula (1) above, A is a sulfonic acid group, Z is a quaternary ammonium group, and L is an ethylene group) • Dimethyl(2-methacryloyloxyethyl)(3-sulfonatopropyl)aminium, Dimethyl(2-acryloyloxyethyl)(3-sulfonatopropyl)aminium (In formula (1) above, A is a sulfonic acid group, Z is a quaternary ammonium group, and L is a propylene group) • Dimethyl(2-methacryloyloxyethyl)(4-sulfonatobutyl)aminium, Dimethyl(2-acryloyloxyethyl)(4-sulfonatobutyl)aminium (In formula (1) above, A is a sulfonic acid group, Z is a quaternary ammonium group, and L is a butylene group) These are some examples.
[0289] As polymerizable monomers having a betaine structure, phosphobetaine monomers are preferred, and phosphobetaine monomers having a phosphorylcholine group are more preferred.
[0290] ((B) A composite comprising a polymer having a betaine structure and a support for the polymer.) As a purification agent, polymer A may be used alone, or polymer A may be used as a composite supported on an insoluble support. The composite supported on an insoluble support of polymer A is preferred because it is easy to separate from the mixture after adsorption of sugar chains, simplifying the purification process.
[0291] Figure 2 is a schematic diagram showing an example of a purifying agent used in the purification method of this embodiment. As shown in Figure 2, the purifying agent 1 is a composite having a polymer having a betaine structure (polymer A) and a support 2 that supports the polymer. In the purifying agent 1 shown in Figure 2, the support 2 is spherical (particulate), and the polymer having a betaine structure is provided in layers on the surface of the support 2. In Figure 2, the layers of polymer provided in layers are indicated by reference numeral 3, and the polymer having a betaine structure that constitutes layer 3 is indicated by reference numeral 3a.
[0292] (Support) In Figure 2, the support 2 is shown as being spherical, but it is not limited to this. For example, the shape of the support may be plate-like, such as a substrate or multiwell plate; film-like, such as a sheet or film or membrane; or fibrous.
[0293] When the support 2 is spherical and the purifying agent 1 is spherical, the average particle size of the purifying agent 1 is preferably 0.5 μm or more and 100 μm or less, more preferably 1 μm or more and 50 μm or less, even more preferably 1 μm or more and 10 μm or less, and particularly preferably 3 μm or more and 10 μm or less. It is preferable that the average particle size of the purifying agent 1 is above the lower limit above because it makes handling easier. It is also preferable that the average particle size of the purifying agent 1 is below the upper limit above because it allows the sugar chain and the purifying agent 1 to come into good contact in the mixed solution prepared in the liberation step, making it easier to adsorb the sugar chain onto the purifying agent 1.
[0294] The average particle size of the purifying agent 1 can be measured, for example, using a particle size analyzer.
[0295] Purifying agent 1 may be used in a state where it is packed inside a container such as a filter cup for a spin column, each well of a multiwell plate, each well of a filter plate, or a microtube.
[0296] Furthermore, although Figure 2 shows the polymer 3a covering the entire surface of the support 2, the polymer is not limited to this, and the surface of the support 2 may be exposed.
[0297] The material of support 2 is a substrate insoluble in organic solvents and water used in the sugar chain purification process, and can support the polymer having the betaine structure described above (polymer A). Such a material for support 2 may be an inorganic material, an organic material, or a composite material of an inorganic material and an organic material.
[0298] Inorganic materials include glass, iron oxides (ferrite, magnetite, etc.), silica, alumina, titania, zirconia and other oxides, metals and their alloys such as iron, copper, gold, silver, platinum, cobalt, aluminum, palladium, iridium, and rhodium, and carbon materials such as graphite. These materials may be used individually or in combination of two or more.
[0299] Examples of organic materials include synthetic polymers such as cross-linked polyvinyl alcohol, cross-linked polyacrylate, cross-linked polyacrylamide, and cross-linked polystyrene, as well as polysaccharides such as cross-linked Sepharose, crystalline cellulose, cross-linked cellulose, cross-linked amylose, cross-linked agarose, and cross-linked dextran. These materials may be used individually or in combination of two or more.
[0300] It is preferable to use an inorganic material as the support 2. Organic materials that can serve as support 2 have a specific gravity of around 1, resulting in a small difference in specific gravity between them and the mixed solution used in purification. Therefore, if an organic material is used as the material for support 2, solid-liquid separation may become complicated. On the other hand, if an inorganic material is used as the material for support 2, solid-liquid separation of the mixed solution and the purification agent can be performed easily and simply. This contributes to improving work efficiency. Silica is particularly preferred as the material for support 2.
[0301] The support 2 may be a porous material. By using a porous support 2, the amount of polymer A having a betaine structure fixed to the surface of the support 2 can be increased. This can contribute to improving work efficiency.
[0302] Furthermore, the specific gravity of the entire purified agent can be adjusted by using a support with voids and a support without voids in combination, or by adjusting the amount of voids in a porous support.
[0303] The method for supporting polymer A on the surface of the support may be either physical adsorption or chemical bonding. Since polymer A is difficult to release from the support during the sugar chain purification process, chemical bonding is preferred as the method of support.
[0304] For example, the polymer can be bonded and supported on the surface of a support by polymerizing the polymerizable monomer described above in the presence of a support having reaction sites such as hydroxyl groups on its surface. Alternatively, polymer A can be supported on the surface of a support by known methods described in WO2019 / 088167.
[0305] In such a purifying agent 1, the weight of polymer A bound to the support 2 is equal to the unit surface area (m²) of the support 2. 2 The amount per unit surface area is preferably 0.5 mg to 1.5 mg, more preferably 0.6 mg to 1.3 mg, and even more preferably 0.7 mg to 1.2 mg. When the polymer weight per unit surface area is within the above range, polymer A is easily grown from the support 2 during polymerization, and handling during polymer synthesis is improved. In addition, the purifying agent 1 facilitates contact between polymer A and the sugar chain, and allows for efficient adsorption of the sugar chain.
[0306] The weight of polymer A bonded to support 2 can be determined from the weight loss rate obtained by thermogravimetric analysis of the purifying agent and the BET specific surface area of support 2 obtained by nitrogen adsorption.
[0307] The specific gravity of such a purifying agent is preferably 1.05 to 3.00, more preferably 1.1 to 2.7, and even more preferably 1.5 to 2.5. A specific gravity of the purifying agent above the lower limit facilitates sedimentation and simplifies solid-liquid separation. Furthermore, a specific gravity of the purifying agent below the upper limit facilitates dispersion of the purifying agent in the mixture prepared during the liberation process. This facilitates contact between the purifying agent and the sugar chain in the mixture prepared during the liberation process, and facilitates adsorption of the sugar chain onto the purifying agent.
[0308] Such a purifying agent is brought into contact with a mixture containing the free product. The mixture may have been treated by a known method, such as desalting. The purifying agent adsorbs the sugar chains contained in the mixture. Proteins, peptide fragments, etc., present in the mixture do not adsorb to the purifying agent and remain in a free state.
[0309] As the solvent for the mixture, an organic solvent or a mixed solvent of an organic solvent and water can be used. The solvent can be appropriately selected depending on the type of sugar chain to be concentrated. As for the organic solvent, there are no particular restrictions as long as it can dissolve the sugar chain, but examples include acetonitrile, tetrahydrofuran, acetone, dioxane, pyridine, methanol, ethanol, 1-propanol, 2-propanol, and 1-butanol. Preferably, organic solvents such as 1-butanol and ethanol are used. Various buffer solutions can be used to adjust the pH. When a mixed solvent of an organic solvent and water is used, the mixing ratio of the organic solvent to water is, for example, 3:1 or more and 1000:1 or less by volume.
[0310] If necessary, the purified agent on which the sugar chains have been adsorbed can be washed. Washing can remove impurities other than sugar chains adsorbed to the purified agent, such as proteins, peptide fragments, lipids, salts, etc.
[0311] As a washing solution, for example, the solvents mentioned above can be used. Using acetonitrile as the solvent is preferable because it is possible to dissolve impurities while suppressing the dissolution of sugar chains.
[0312] [Elution process] In the elution step, the sugar chains are eluted from the purifying agent on which they have been adsorbed. The eluent used to elute the sugar chains from the purifying agent can be an organic solvent or a mixture of an organic solvent and water, and can be appropriately selected depending on the type of sugar chain to be eluted and the type of purifying agent.
[0313] As the organic solvent, the above-mentioned ones can be used.
[0314] In the elution process, using a solvent with increased hydrophilicity allows for efficient elution of sugar chains. For example, water alone can be used without an organic solvent, or a mixed solvent of an organic solvent and water can be used. When using a mixed solvent, the volume ratio of the organic solvent to water should be 3 times or less, but it is particularly preferable to use water alone without an organic solvent.
[0315] Ultrapure water is particularly preferred as the eluent for eluting sugar chains from the purifying agent. "Urpure water" refers to, for example, ultrapure water produced using an ultrapure water production system (model number: MilliQ EQ7000, manufactured by Merck), or water of equivalent quality.
[0316] In this embodiment, the adsorption step and the elution step can be carried out by a batch method, a spin column method, or the like for some or all of the steps. The batch method and the spin column method are described in detail below, but the reagents and reaction conditions are as described above.
[0317] (Batch method) In the batch method, first, the free product obtained in the liberation step and the above-mentioned purifying agent are brought into contact in a suitable container (e.g., a microtube, centrifuge tube, microplate, etc.) to adsorb the sugar chain onto the purifying agent (adsorption step).
[0318] The purifying agent is preferably immobilized on an insoluble support.
[0319] Next, the purified agent with adsorbed sugar chains is subjected to solid-liquid separation to remove the liquid phase containing impurities such as proteins, peptide fragments, lipids, and salts, while recovering the purified agent with adsorbed sugar chains. Solid-liquid separation can be performed using known methods such as gravity-induced sedimentation, centrifugation, filtration, or magnetic force (if the support material of the purified agent is a magnetic material).
[0320] Next, the purified agent on which the sugar chains have been adsorbed is washed. Washing removes impurities other than the sugar chains adsorbed to the purified agent, such as proteins and peptide fragments. Washing can be performed by immersing the purified agent with the adsorbed sugar chains in a washing solution in a suitable container and repeatedly changing the washing solution.
[0321] After washing, the sugar chains are eluted from the purifying agent on which they were adsorbed (elution step).
[0322] The elution of glycans can be performed by immersing a purifying agent on which glycans have been adsorbed in an eluate. For example, after thoroughly removing the washing solution, an appropriate amount of eluate is added to the carrier on which the glycans have been adsorbed and shaken or stirred. Subsequently, the carrier is recovered by solid-liquid separation, and the eluate is collected in a new, suitable container (e.g., a collection tube or collection plate). The glycans can be concentrated by distilling off the eluate as needed.
[0323] (Spin column method) In the case of the spin column method, a container with a built-in filter, such as a filter cup, can be used. As a filter cup, for example, one that has openings at the top and bottom, with the bottom opening covered by a filter, can be used.
[0324] When using a filter cup, first, the free product obtained in the liberation step is placed in a filter cup filled with the purifying agent and passed through it to bring the purifying agent and the free product into contact (adsorption step).
[0325] The purifying agent is preferably immobilized on an insoluble support.
[0326] The liquid may be passed through by gravity, by centrifugation, or under reduced or increased pressure. After passing the liquid, the wastewater containing free proteins, peptide fragments, lipids, salts, etc. that have passed through the purifying agent is removed.
[0327] Next, the purified agent on which the sugar chains have been adsorbed is washed. Washing can be performed by passing a washing solution through the purified agent in the filter cup, allowing for continuous washing from the adsorption of sugar chains.
[0328] After washing, the sugar chains are eluted from the purifying agent that has adsorbed them (elution step).
[0329] The elution of glycans can be performed by passing the eluate through a purifying agent in a filter cup, and this process can be carried out continuously from glycan adsorption to washing. The eluate after passing the purifying agent is collected in a suitable container (e.g., a collection tube or collection plate). If necessary, the glycans can be concentrated by removing the eluate by distillation.
[0330] [Labeling process] In the labeling step, the eluate obtained in the elution step is reacted with a labeling reaction reagent containing the label compound to obtain a labeled product containing a sugar chain label (hereinafter sometimes referred to as the sugar chain label).
[0331] (labeled compound) A labeled compound has a reactive group for the sugar chain and a modifying group to be attached to the sugar chain. In this embodiment, all labeled compounds have an amino group as the reactive group and an aromatic group as the modifying group. When a labeled compound having an amino group and an aromatic group is used, modification of the sugar chain is performed by reductive amination.
[0332] In modification by reductive amination, the amino group reacts with the aldehyde group formed at the reducing end of the sugar chain to form a Schiff base. The formed Schiff base is then reduced by a separately added reducing agent to form a peptide bond at the reducing end of the sugar chain. As a result, the labeled compound can efficiently label the sugar chain by introducing a modifying group via the reactive amino group.
[0333] Aromatic groups are preferable because they have ultraviolet-visible absorption properties or fluorescence properties, which improves detection sensitivity in UV detection or fluorescence detection.
[0334] As described above, the labeled compound used in this embodiment is at least one selected from the group consisting of 8-aminopyrene-1,3,6-trisulfonic acid, the sodium salt of 8-aminopyrene-1,3,6-trisulfonic acid, and 9-aminopyrene-1,4,6-trisulfonic acid. The sodium salt is preferably the trisodium salt (8-Aminopyrene-1,3,6-trisulfonic acid trisodium, APTS). These labeled compounds contain a sulfate group (sulfonic acid group). In the following description, these labeled compounds will be referred to as "labeled compound 1".
[0335] (Labeling reaction reagent) The labeling reaction reagent used in this embodiment includes, in addition to the labeled compound 1, a solution for dissolving the labeled compound 1, and a reducing agent.
[0336] ·solution The solution used in the labeling reaction reagent is a mixture of alcohol, organic acid, and ultrapure water.
[0337] Examples of alcohols include methanol, ethanol, and propanol. These may be used individually or in combination of two or more.
[0338] Examples of organic acids include monocarboxylic acids such as formic acid, acetic acid, propionic acid, and butyric acid, as well as dicarboxylic acids such as oxalic acid, malonic acid, succinic acid, maleic acid, fumaric acid, and phthalic acid, and tricarboxylic acids such as citric acid. These may be used individually or in combination of two or more. Among these, the use of citric acid, which is a tricarboxylic acid, is preferred.
[0339] Examples of reducing agents include sodium cyanoborohydride, sodium triacetoxyborohydride, methylamine borane, dimethylamine borane, trimethylamine borane, picoline borane, and pyridine borane.
[0340] In particular, picolineborane (2-picolineborane) is preferred from the viewpoint of both safety and reactivity.
[0341] The labeling reaction reagent may contain a buffer. If a buffer is included, examples of buffers include ammonium carbonate, ammonium bicarbonate, ammonium chloride, diammonium hydrogen citrate, and ammonium carbamate. There are no particular restrictions on the pH of the buffer, but a pH of 5 to 10 is preferred.
[0342] In this embodiment, the labeling reaction reagent is divided into a first reagent containing labeled compound 1 and an aqueous solution of an organic acid, and a second reagent containing a reducing agent and a solvent. Specifically, the labeling process is divided into the first and second steps shown below, and the first reagent and the second reagent are added in each step.
[0343] ·1st process In the first step, the eluate obtained in the elution step is allowed to dry, and then the first reagent is added and heated.
[0344] A known method can be used to dry the eluate. Specifically, the solvent contained in the eluate is removed in one of the following environments: drying (low humidity), heating, reduced pressure, blowing air, or a combination thereof.
[0345] The concentration of labeled compound 1 in the first reagent can be, for example, 100 mmol / L or more and 500 mmol / L or less.
[0346] The concentration of the organic acid in the first reagent can be, for example, 100 mmol / L or more and 1000 mmol / L or less.
[0347] The first reagent may contain, in addition to labeled compound 1, an organic acid, and water, an alcohol.
[0348] The heating temperature in the first step can be, for example, 40°C to 80°C. Furthermore, the heating time in the first step can be, for example, 10 minutes or more and 24 hours or less.
[0349] ·Second process In the second step, the second reagent is added to the reaction solution obtained in the first step and heated.
[0350] The concentration of the reducing agent in the second reagent can be between 10 mmol / L and 500 mmol / L.
[0351] The solvent in the second reagent contains an alcohol.
[0352] The heating temperature in the second step can be, for example, 40°C to 80°C. Furthermore, the heating time in the second step can be, for example, between 1 hour and 24 hours.
[0353] When using labeled compound 1, following the first and second steps described above makes it easier to label the sugar chain compared to using a labeling reaction reagent in which the first and second reagents are mixed from the beginning. It is assumed that heating under acidic conditions in the first step facilitates the reaction between labeled compound 1 and the sugar chain, and as a result, the reduction reaction in the second step facilitates the progression of reductive amination. The above labeling step yields a reaction solution containing a glycosylated product.
[0354] (purification process) The resulting reaction solution contains not only the glycosylated product but also excess labeling compound 1 and other unwanted substances used in the labeling step. Therefore, the glycosylated product may be purified by removing these unwanted substances from the reaction solution (sample solution containing the labeled product). The removal of unwanted substances may be performed by passing the sample solution through a purification solid phase to capture the glycosylated product and then re-eluting the captured glycosylated product.
[0355] In the purification process of the second embodiment, the same purification solid phase as shown in (purification solid phase) of the first embodiment can be used as the purification solid phase.
[0356] In the purification step of the second embodiment, the sample solution may be re-prepared by adding an ionic aqueous solution in the same manner as shown in (re-preparation of the separated solution) of the first embodiment.
[0357] In the above purification process, the glycosylated product is captured on a purification solid support, and then the purification solid support is washed with a solvent. The solvent used is preferably a mixed solvent containing an organic solvent and water, and more preferably a mixed solvent of acetonitrile, water, and alcohol. As the alcohol, methanol, ethanol, or both can be used.
[0358] For purification, the mixture is used to wash with a mixed solvent prepared by combining the three solvents with different hydrophobic properties in a volume ratio of acetonitrile:alcohol:water = 20-98:0-60:2-15 (total 100 vol%).
[0359] In the mixed solvent, acetonitrile is preferably present in an amount of 45% to 98% by volume, and more preferably in an amount of 70% to 98% by volume.
[0360] In the mixed solvent, the alcohol is preferably present in an amount of 0% to 40% by volume, and more preferably in an amount of 0% to 20% by volume. When using alcohol, ethanol is preferred.
[0361] In the mixed solvent, water is preferably present in an amount of 3% to 15% by volume, and more preferably in an amount of 2% to 10% by volume.
[0362] As an example of a mixed solvent, one can cite a mixture of acetonitrile, alcohol, and water in a ratio of 50:40:10 (totaling 100% by volume).
[0363] The solid phase support for purification should be washed by passing the mixed solvent through it and then centrifuging it to remove the solvent. This washing operation removes unreacted labeled compounds as well as the aforementioned unwanted substances. The washing operation may be performed only once or two or more times. Repeating the washing operation removes unwanted substances, but it also washes away the glycosylated product attached to the solid phase support for purification, raising concerns about a decrease in the yield of the glycosylated product. Therefore, it is preferable to limit the washing operation to three times or less.
[0364] 《Methods for analyzing glycans》 The glycan-labeled compounds prepared by the method of this embodiment can be analyzed by the method described in the "Glycan Analysis Method" of the first embodiment. Therefore, glycan-labeled compounds can be suitably detected even from low-concentration samples.
[0365] According to the glycan preparation method described above, labeled glycans can be rapidly prepared from glycoproteins.
[0366] Furthermore, the above-described glycan analysis method allows for suitable analysis even when the amount of glycan used for analysis is small.
[0367] [Third Embodiment] The glycan preparation method of this embodiment shares the release and adsorption steps with the glycan preparation method of the second embodiment, but differs in the elution and labeling steps. Therefore, in the following description, operations common to the second embodiment will be omitted, and the differing operations will be described in detail.
[0368] [Elution process] In the elution step, the sugar chains are eluted from the purifying agent on which they have been adsorbed. The eluent used to elute the sugar chains from the purifying agent can be the aforementioned organic solvent or a mixed solution of organic solvent and water, and can be appropriately selected depending on the type of sugar chain to be eluted and the type of purifying agent.
[0369] In the elution step of this embodiment, the labeling reaction reagent used in the labeling step described later can be used as the eluent. By performing the elution step using the labeling reaction reagent, the operation is simplified compared to when a separate eluent is used for elution.
[0370] Furthermore, compared to the case where glycans are eluted using an eluent other than the labeling reagent and the labeling step is carried out by adding the labeling reagent to the resulting eluate, eluting the glycans using the labeling reagent allows for the labeling step to be carried out at a relatively higher concentration. Therefore, it becomes easier to induce a reaction between the free glycans and the labeling reagent.
[0371] Furthermore, compared to the case where the sugar chain is eluted using an eluent other than the labeling reaction reagent, and then the solvent is removed from the resulting eluate to concentrate the sugar chain before the labeling step is performed, eluting the sugar chain using the labeling reaction reagent simplifies the procedure.
[0372] [Labeling process] In the labeling step of this embodiment, at least one compound selected from the group consisting of 2-aminobenzoic acid (2-AA) and 3-aminobenzoic acid is used as the labeling compound included in the labeling reaction reagent. These labeling compounds contain a carboxyl group. In the following description, these labeling compounds will be referred to as "labeling compound 2".
[0373] The concentration of the reducing agent in the labeling reaction reagent is between 0.1 mmol / L and 20 mmol / L.
[0374] As an example, the labeling reagent solution can have an organic acid content of 1% to 15% by volume in the solvent of the labeling reagent. Preferably, the organic acid content in the labeling reagent solution is 10% by volume or less.
[0375] Methanol is preferred as the alcohol used, and picoline borane is preferred as the reducing agent.
[0376] Even with a glycan preparation method having the configuration described above, labeled glycans can be rapidly prepared from glycoproteins.
[0377] [kit] The purification kit according to this embodiment comprises a glycan release reagent for releasing glycans from glycoproteins, a purification agent for purifying the released glycans, and a labeling reaction reagent for labeling the glycans.
[0378] The glycan-releasing reagent and purification agent used are the same as those described in the embodiments described above.
[0379] In the kit for carrying out the glycan preparation method of the first embodiment, the first reagent and the second reagent described above are used as labeling reaction reagents.
[0380] In the kit for carrying out the carbohydrate preparation method of the third embodiment, a labeling reaction reagent containing labeled compound 2 is used as the labeling reaction reagent.
[0381] According to the kit of this embodiment, the above-described method for preparing glycans can be easily carried out, and glycan-labeled products can be rapidly prepared from glycoproteins.
[0382] Preferred embodiments of the present invention have been described above with reference to the attached drawings, but the present invention is not limited to these examples. The shapes and combinations of the constituent members shown in the above examples are merely examples, and can be modified in various ways based on design, specifications, etc., without departing from the spirit of the present invention. [Examples]
[0383] The present invention will be described below with reference to examples, but the present invention is not limited to these examples.
[0384] N-linked glycan analysis In the example relating to N-linked glycan analysis, a commercially available antibody glycan analysis kit (Sumitomo Bakelite, product number: BS-X4410) was used. The kit included the following components used in this example. Column 1: Antibody Capturing Column Reagent 2: Antibody Capturing Solution Reagent 3: Washing Buffer Reagent 4: Glycan Release Enhancer (Deglycation Enhancer) Reagent 5A: PNGase F solution (glycan-releasing enzyme) Reagent 5B: Diluting Buffer
[0385] Column 1, as described above, corresponds to the "solid phase" in the present invention. Column 1 has the ligand described in the above embodiment on its surface.
[0386] [Example 1-1: APTS labeling. Confirmation by HPLC analysis] (Release process) Column 1 was inserted into a 2.0 mL tube and centrifuged at 500 × g for 3 minutes. Next, 600 μL of reagent 2 was added to column 1 and centrifuged at 500 × g for 3 minutes.
[0387] 40 μg of antibody (human IgG (Sigma-Aldrich, catalog number: I4506)) was diluted with reagent 2 to prepare an antibody-containing solution of 40 μg / 600 μL. The obtained antibody-containing solution was added to column 1 and centrifuged at 500 × g for 3 minutes to capture the antibody on column 1. Further, reagent 3 was added to column 1 and washed by centrifugation at 500 × g for 3 minutes to prepare a "glycoprotein immobilized on the solid phase".
[0388] 100 μL of reagent 4 was added to column 1 and centrifuged at 3000 × g for 1 minute. Then, column 1 was inserted into a 1.5 mL tube and heated at 50°C for 30 minutes (pretreatment step).
[0389] Subsequently, 3 μL of a mixture of reagent 5A and reagent 5B (volume ratio 1:1) was impregnated into the heated column 1 support, and the column was heated at 50°C for 30 minutes (liberation step).
[0390] (labeling process) 8-Aminopyrene-1,3,6-trisulfonic acid trisodium (trisodium salt, APTS) (manufactured by BIOSYNTH, catalog number: FA45174) was mixed with a 500 mmol / L aqueous solution of citric acid to prepare a 400 mmol / L labeled compound solution 1. Citric acid corresponds to the "organic acid" in this invention.
[0391] Furthermore, 2-picolinborane (manufactured by Junsei Chemical Co., Ltd., catalog number: 59096-1610) was dissolved in methanol to prepare reducing agent solution 1 with a concentration of 600 mmol / L. Methanol falls under the category of "a polar solvent different from organic acids" in this invention.
[0392] After the liberation step, 10 μL of labeled compound solution 1 and 10 μL of reducing agent solution 1 were added to column 1 to prepare the labeling reaction reagent, and then centrifuged at 3000 × g for 1 minute.
[0393] The obtained solution was heated at 50°C for 3 hours with the tube cap open (open system) to obtain the labeled product.
[0394] A diluted sample solution was prepared by adding 40 μL of ultrapure water to the contents (dry) of the heated tube. The ultrapure water was produced using an ultrapure water production system (model: MilliQ EQ7000, manufactured by Merck).
[0395] The obtained sample solutions were used for HPLC analysis under the conditions shown in Table 1 below. Figure 3 is an LC chart showing the results of the HPLC analysis in Example 1-1.
[0396] [Table 1]
[0397] The evaluation confirmed that the peaks of major N-linked glycans in APTS-labeled human IgG could be detected.
[0398] [Examples 1-2: Confirmation by capillary electrophoresis analysis 1] APTS and a 500 mmol / L aqueous citric acid solution were mixed to prepare a 250 mmol / L labeled compound solution 2.
[0399] Reducing Reagent (manufactured by Sumitomo Bakelite, included with product code: BS-X4410) (Reagent 7) was dissolved in 800 μL of methanol to prepare reducing agent solution 2.
[0400] (Labeling process, separation process) After the above (liberation step), label compound solution 2 was added to column 1 and centrifuged at 3000 × g for 1 minute. Next, reducing agent solution 2 was added to column 1 and centrifuged at 3000 × g for 1 minute.
[0401] The resulting solution was heated at 50°C for 2 hours with the tube cap open (open system).
[0402] (purification process) After heating, 30 μL of ultrapure water was added to the sample, followed by 600 μL of acetonitrile. The entire resulting solution was added to a cleanup column (Sumitomo Bakelite, part number: BS-X4410) to capture the glycan-labeled product, and then the cleanup column was centrifuged at 500 × g for 1 minute to remove the solution. The cleanup column corresponds to the solid phase for purification in this invention.
[0403] Next, 600 μL of a 95% acetonitrile / water mixture was added, and the cleanup column was centrifuged at 500 × g for 1 minute to remove the solution. Then, another 600 μL of the 95% acetonitrile / water mixture was added, and the cleanup column was centrifuged at 3000 × g for 1 minute to remove the solution.
[0404] 50 μL of ultrapure water was added to the cleanup column to elute the glycosylated compounds that had been trapped in the cleanup column. After centrifugation, the aqueous solution containing the glycosylated compounds (sample solution) was collected in a microcentrifuge tube.
[0405] The obtained sample solution was diluted 2-fold with ultrapure water, and capillary electrophoresis (CE) analysis was performed under the following conditions. The CE analysis under the following conditions is capillary gel electrophoresis. (conditions) CE device: P / ACE MDQ Plus (AB Sciex Corporation) Capillary: N-CHO capillary (manufactured by AB Sciex, part number: 477601) Buffer solution: N-Linked Carbohydrate Separation Gel Buffer (Manufactured by AB Sciex. Part number: 477623) Fluorescence detection: Excitation wavelength 488 nm, fluorescence wavelength 520 nm
[0406] The sample was injected into a capillary at 0.5 psi (where 1 psi = 6894.76 Pa) for 3 seconds. Separation was performed over 13 minutes using a voltage of 30 kV.
[0407] [Examples 1-3: Confirmation by capillary electrophoresis analysis 2] The analysis was performed in the same manner as in Example 1-2, except that the buffer used for capillary electrophoresis was 50 mmol / L HEPES (pH 7.25), and the sample was injected into the capillary at 0.3 psi for 3 seconds. The CE analysis in Example 1-3 was capillary zone electrophoresis.
[0408] HEPES stands for 4-(2-hydroxyethyl)-1-piperazineethanesulfonic acid.
[0409] Figure 4 shows the chart obtained by capillary electrophoresis analysis of Example 1-2, and Figure 5 shows the chart obtained by capillary electrophoresis analysis of Example 1-3. As a result of the evaluation, it was confirmed that in all cases the peak of the major N-linked glycan of APTS-labeled human IgG could be detected.
[0410] The results from Examples 1-1 to 1-3 confirmed that APTS labeling of N-linked glycans is possible using the glycan preparation method of the present invention, and that the resulting labeled products can be suitably analyzed.
[0411] [Examples 1-4: Confirmation by capillary electrophoresis analysis 3] In Examples 1-4, model experiments were conducted using commercially available APTS-labeled products. The purchased NA2F Glycan, APTS Labeled (Ludger, catalog number: CAPTS-NA2F-01) was redissolved in pure water to prepare a 0.25 pmol / μL model sample.
[0412] Using the obtained model samples, capillary electrophoresis (CE) analysis was performed under the following conditions. (conditions) CE device: P / ACE MDQ Plus (AB Sciex Corporation) Capillary: N-CHO capillary (manufactured by AB Sciex, part number: 477601) Buffer: 50mmol / L HEPES (pH7.25) Pre-electrolyte solution: 12 mmol / L sodium chloride aqueous solution Fluorescence detection: Excitation wavelength 488 nm, fluorescence wavelength 520 nm
[0413] The sample was injected into the capillary at 20 psi for 30 seconds, and then the preceding electrolyte solution was injected from the downstream side of the capillary at 0.5 psi for 20 seconds. Subsequently, a voltage of 30kV was applied with the downstream side of the capillary positive and the upstream side negative, and the sample was concentrated for 22 minutes. Capillary electrophoresis was then performed for 18 minutes.
[0414] [Reference example 1-1] The model samples prepared in Examples 1-4 were subjected to capillary electrophoresis analysis under the conditions of Example 1-3.
[0415] Figure 6 shows the chart obtained by capillary electrophoresis analysis of Example 1-4, and Figure 7 shows the chart obtained by capillary electrophoresis analysis of Reference Example 1-1. As a result of the evaluation, the peak area value of NA2F Glycan in Example 1-4 improved by approximately 400 times compared to the results of Reference Example 1-1, confirming that highly sensitive analysis is possible under the conditions of Example 1-4.
[0416] Based on the results confirmed in Examples 1-4, it can be inferred that highly sensitive analysis is possible for both N-linked glycans and O-linked glycans.
[0417] [Examples 1-5: Confirmation by capillary electrophoresis analysis 4] (Labeling process, separation process) After the above (liberation step), label compound solution 2 was added to column 1 and centrifuged at 3000 × g for 1 minute. Next, reducing agent solution 2 was added to column 1 and centrifuged at 3000 × g for 1 minute.
[0418] The resulting solution was heated at 50°C for 2 hours with the tube cap open (open system).
[0419] (purification process) After heating, 60 μL of ultrapure water was added to the sample, followed by 600 μL of ethanol. The entire resulting solution was added to a cleanup column (Sumitomo Bakelite, part number: BS-X4410), and the cleanup column was centrifuged at 500 × g for 1 minute to remove the solution. Then, 600 μL of a 95% ethanol / water mixture was added, and the cleanup column was centrifuged at 500 × g for 1 minute to remove the solution. Finally, another 600 μL of a 95% ethanol / water mixture was added, and the cleanup column was centrifuged at 3000 × g for 1 minute to remove the solution.
[0420] 100 μL of ultrapure water was added to the cleanup column to elute the glycan-labeled compounds that had been trapped in the cleanup column. After centrifugation, the aqueous solution containing the glycan-labeled compounds (sample solution) was collected in a microcentrifuge tube.
[0421] The obtained sample solution was diluted 20-fold with ultrapure water, and capillary electrophoresis analysis was performed under the same conditions as in Examples 1-4, except that the leading electrolyte concentration was set to 10 mmol / L.
[0422] [Reference example 1-2] The model samples prepared in Examples 1-5 were subjected to capillary electrophoresis analysis under the conditions of Examples 1-3.
[0423] Figure 8 shows the chart obtained by capillary electrophoresis analysis of Examples 1-5, and Figure 9 shows the chart obtained by capillary electrophoresis analysis of Reference Example 1-2. As a result of the evaluation, the total peak area value of human IgG N-linked glycans in Example 1-5 improved by approximately 400 times compared to the results of Reference Example 1-2, confirming that highly sensitive analysis is possible under the conditions of Example 1-4.
[0424] [Examples 1-6: Confirmation of the effectiveness of washing with a mixed solvent] (Preparation of glycosylated products) Similar to Example 1-2, the labeled compound solution 2 was added to column 1 after the above (liberation step) and centrifuged at 3000 × g for 1 minute. Next, the reducing agent solution 2 was added to column 1 and centrifuged at 3000 × g for 1 minute. The obtained solution was heated at 50°C for 2 hours with the tube cap open (open system) to obtain a reaction mixture. The obtained reaction mixture contains the glycosylated product as well as the unreacted labeled compound.
[0425] (Purification process ~ Glycan analysis, preliminary experiments) To the above reaction mixture, 30 μL of ultrapure water was added, followed by 600 μL of ethanol. The entire resulting solution was added to a cleanup column (Sumitomo Bakelite, part number: BS-X4410), and the cleanup column was centrifuged at 500 × g for 1 minute to remove the solution. Then, 600 μL of a mixed solution containing organic solvent and water was added, and the cleanup column was centrifuged at 500 × g for 1 minute to remove the solution. The mixing ratios of the mixed solutions are shown in Table 2. Furthermore, another 600 μL of the mixed solution shown in Table 2 was added, and the cleanup column was centrifuged at 3000 × g for 1 minute to remove the solution.
[0426] 50 μL of ultrapure water was added to the cleanup column to elute the glycan-labeled compound that had been trapped in the cleanup column. After centrifugation, the aqueous solution containing the glycan-labeled compound was collected in a microcentrifuge tube. The obtained sample solution was subjected to capillary electrophoresis analysis in the same manner as in Example 1-2, and the amounts of unreacted labeled compound and glycan-labeled compound in the obtained sample solution were measured. The results are shown in Table 3.
[0427] [Table 2]
[0428] [Table 3]
[0429] In Table 3, the area values of the unreacted labeled compound in preliminary experiment 1 are approximate. In Table 3, the "residual rate" represents the percentage relative to the result of preliminary experiment 1 (a mixed solvent of acetonitrile and water), which is set to 100. As shown in Table 3, it was confirmed that changing the mixed solvent used during washing from a mixed solvent of acetonitrile and water to a mixed solvent of alcohol and water significantly reduced the amount of unreacted labeled compounds. On the other hand, it was confirmed that the amount of the target glycan-labeled product also decreased significantly. In order to enable the measurement of trace amounts of glycans, it is preferable to have washing conditions in the obtained sample solution that reduce the amount of unreacted labeled compounds while leaving a large amount of glycan-labeled product.
[0430] (Purification process ~ Glycan analysis) The sample solution was prepared in the same manner as in the preliminary experiment described above, except that 60 μL of ultrapure water was added to the reaction mixture obtained in the same manner as described above (preparation of glycosylated product), followed by the addition of 600 μL of ethanol, and that the washing was done using the mixed solvent listed in Table 4. Capillary electrophoresis analysis was then performed. The results are shown in Table 5. However, numbers 5, 6, and 12 are for reference only.
[0431] [Table 4]
[0432] [Table 5]
[0433] In Table 5, "Remaining Rate" indicates the percentage of unreacted labeled compounds or glycosylated products in the unpurified sample solution, with the amount (area value) set to 100.
[0434] The evaluation results showed that, under all conditions, washing the glycosylated compound with a mixed solvent of organic solvent and water in the purification process reduced the amount of unreacted labeled compound in the unpurified sample solution.
[0435] In particular, washing with the mixed solvents No. 1, 3, 4, 5, 6, 8, 9, 11, 12, 16, and 17 resulted in a high purification effect, with the remaining rate of unreacted labeled compounds being 17% or less and the remaining rate of glycosylated products being 75% or more. In each of the sample solutions No. 1, 3, 4, 5, 6, 8, 9, 11, 12, 16, and 17, the amount of unreacted labeled compounds was reduced and sufficient glycosylated products remained compared to the unpurified sample solution, indicating that accurate analysis is possible.
[0436] [Examples 1-7: Confirmation of purification effect by adding ionic aqueous solution] (Preparation of glycosylated products) Similar to Examples 1-2, the labeled compound solution 2 was added to column 1 after the above (liberation step) and centrifuged at 3000 × g for 1 minute. Next, the reducing agent solution 2 was added to column 1 and centrifuged at 3000 × g for 1 minute. The obtained solution was heated at 50°C for 2 hours with the tube cap open (open system) to obtain the reaction mixture. The obtained reaction mixture contains the glycosylated product as well as the unreacted labeled compound.
[0437] (purification process) 60 μL of ammonium bicarbonate aqueous solution (pH approximately 8) was added to the above reaction mixture, followed by the addition of 600 μL of acetonitrile. The entire resulting solution was added to a cleanup column (Sumitomo Bakelite, part number: BS-X4410), and the cleanup column was centrifuged at 500 × g for 1 minute to remove the solution. The "ammonium bicarbonate aqueous solution" corresponds to the ionic aqueous solution in this invention.
[0438] Aqueous solutions of ammonium bicarbonate at concentrations of 0, 10, 50, 100, 250, and 400 mmol / L were prepared to be added to the reaction mixture. The same procedure was performed for each solution, and the aqueous solutions containing the glycosylated product (sample solutions) were collected in microcentrifuge tubes.
[0439] After centrifugation, 600 μL of acetonitrile / ethanol / water = 50 / 40 / 10 (volume ratio) was added to the cleanup column, and the solution was removed by centrifugation at 500 × g for 1 minute. Then, another 600 μL of acetonitrile / ethanol / water = 50 / 40 / 10 (volume ratio) was added, and the solution was removed by centrifugation at 3000 × g for 1 minute.
[0440] 100 μL of ultrapure water was added to the cleanup column to elute the glycan-labeled compounds that had been trapped in the cleanup column. After centrifugation, the aqueous solution containing the glycan-labeled compounds (sample solution) was collected in a microcentrifuge tube.
[0441] Several solutions of ammonium bicarbonate aqueous solution, varying in concentration, were prepared for the reaction mixture. The same procedure was performed for each solution, and the sample solution was collected in a microcentrifuge tube.
[0442] [Examples 1-8] The sample solution was collected in a microtube in the same manner as in Examples 1-7, except that 60 μL of a 250 mmol / L aqueous ammonium chloride solution (pH approximately 5) was added to the above reaction mixture.
[0443] [Examples 1-9] The sample solution was collected in a microtube in the same manner as in Examples 1-7, except that 60 μL of a 250 mmol / L sodium chloride aqueous solution (pH approximately 7) was added to the above reaction mixture.
[0444] [Examples 1-10] The sample solution was collected in a microtube in the same manner as in Examples 1-7, except that 60 μL of a 250 mmol / L aqueous ammonia solution (pH approximately 11) was added to the above reaction mixture.
[0445] [Examples 1-11] The sample solution was collected in a microtube in the same manner as in Examples 1-7, except that 60 μL of a 250 mmol / L sodium carbonate aqueous solution (pH approximately 11) was added to the above reaction mixture.
[0446] [Examples 1-12] The sample solution was collected in a microtube in the same manner as in Examples 1-7, except that 60 μL of a 250 mmol / L sodium hydroxide aqueous solution (pH approximately 13) was added to the above reaction mixture.
[0447] [Reference example 1-3] The sample solution was collected in a microcentrifuge tube in the same manner as in Examples 1-7, except that 60 μL of pure water was added to the above reaction mixture.
[0448] Capillary electrophoresis analysis was performed on the sample solutions of Examples 1-7, 1-8, 1-9, 1-10, 1-11, 1-12 and Reference Example 1-3 in the same manner as in Example 1-2, and the amount of unreacted labeled compound and the amount of glycosylated product contained in the obtained sample solutions were measured.
[0449] Figure 10 is a graph showing the area values of the unreacted labeled compounds detected in Examples 1-7 and Reference Example 1-3. Figure 11 is a graph showing the area values of the glycosylated compounds detected in Examples 1-7 and Reference Example 1-3. In Figures 10 and 11, the horizontal axis represents the concentration of the ammonium bicarbonate aqueous solution, and the vertical axis represents the detected peak area value. The result for an ammonium bicarbonate concentration of 0 mmol / L corresponds to the result for Reference Example 1-3. Figure 12 is a graph showing the area values of the unreacted labeled compounds detected in Examples 1-7, 1-8, 1-9, 1-10, 1-11, 1-12 and Reference Example 1-3. In Figure 12, the vertical axis represents the detected peak area value.
[0450] As shown in Figures 10 and 12, compared to Reference Example 1-3, which used pure water in the purification process, Examples 1-7, 1-8, 1-9, 1-10, 1-11, and 1-12, which used an ionic aqueous solution, showed a significant reduction in the amount of unreacted labeled compound in the sample solution. Furthermore, as shown in Figure 11, in Example 1-7, despite the reduction in the amount of unreacted labeled compound in the sample solution, the amount of recovered glycosylated product was greater than in Reference Example 1-3.
[0451] In Examples 1-7, 1-8, 1-9, 1-10, 1-11, and 1-12, the effect of adding an ionic solution was confirmed in the separation and purification of the glycan-labeled product of N-linked glycans and the unreacted labeled compound (APTS). However, it is thought that the separation and removal of the unreacted labeled compound is not limited to the type of glycan. Therefore, based on the results confirmed in Example 1-7, it can be inferred that the same effect can be obtained in the separation and purification of the glycan-labeled product of O-linked glycans and the unreacted labeled compound.
[0452] O-type glycan analysis In the example relating to type O glycan analysis, a commercially available antibody glycan analysis kit (Sumitomo Bakelite, product number: BS-41601) was used. The kit contained the following components used in this example. Reagent 1: Glycan Reagent A (solution containing a 50% concentration of hydroxylamine solution) Reagent 2: Glycan Reagent B (solution containing diazabicycloundecene (organic base)) Purifying agent: Glycan Capturing Beads Column 1: Filter column Column 2: Cleanup Column Reagent 7: Reducing Reagent (Picolinborane)
[0453] The glycan-releasing reagent was prepared by mixing reagent 1 and reagent 2 in a 5:2 (volume ratio).
[0454] The purifying agent corresponds to the purifying agent described with reference to Figure 1 in the above embodiment.
[0455] Furthermore, the ultrapure water used in the examples was prepared using an ultrapure water production system (model number: MilliQ EQ7000, manufactured by Merck).
[0456] [Example 2-1: APTS labeling. Confirmation by HPLC analysis] (Release process) Fetal bovine fetuin (Sigma-Aldrich, catalog number: F3004) was dissolved in ultrapure water to prepare a 10 mg / mL fetuin solution. 10 μL of this solution was added to a 1.5 mL tube, and then 15 μL of a glycosylation release solution was added and mixed. The resulting mixture was heated at 37°C for 75 minutes.
[0457] (Adsorption process) After the liberation step, 1000 μL of acetonitrile (manufactured by Fujifilm Wako Pure Chemical Industries, product code: 018-19853, purity 99.9%) was added to the mixed solution and thoroughly mixed.
[0458] The resulting mixed solution was then suspended with the purifying agent, and the resulting suspension was added to a spin column (filter column). The filter column was then centrifuged at 3000 × g for 1 minute using a benchtop centrifuge to separate the purifying agent from the solution and remove the solution. The centrifugation conditions were the same throughout the following description.
[0459] Next, 200 μL of acetonitrile was added to the filter column, and the solution was removed by centrifugation. Then, another 200 μL of acetonitrile was added to the filter column, and the solution was removed by centrifugation.
[0460] (Elution process) 50 μL of ultrapure water was added to the solid (purifying agent) remaining in the column to elute the glycans from the purifying agent. The eluate (glycan solution) containing the eluted glycans was then collected in a PCR tube by centrifugation.
[0461] (labeling process) 8-Aminopyrene-1,3,6-trisulfonic acid trisodium (trisodium salt, APTS) (manufactured by BIOSYNTH, catalog number: FA45174) was mixed with a 500 mmol / L aqueous solution of citric acid to prepare the first reagent with a concentration of 250 mmol / L. Citric acid corresponds to the "organic acid" in this invention.
[0462] Furthermore, 1200 μL of methanol was added to reagent 7 (reducing agent) included in the kit to prepare a second reagent with a concentration of 330 mmol / L.
[0463] The eluate collected in the PCR tube during the elution process was frozen and then dried in a centrifugal dryer for 1 hour. Next, 5 μL of the first reagent was added to the PCR tube and heated at 50°C for 1 hour (first step).
[0464] After heating, 5 μL of the second reagent was added to the PCR tube and heated at 70°C for 3 hours to obtain the labeled product (second step). 40 μL of ultrapure water was added to the contents of the heated tube to prepare a diluted sample solution.
[0465] [Comparative Example 2-1] In the labeling step, the sample solution was prepared in the same manner as in Example 2-1, except that the first and second reagents were added to a PCR tube in which the eluate had been dried, mixed, and incubated at 70°C for 3 hours to obtain the labeled product.
[0466] The sample solutions prepared in Example 2-1 and Comparative Example 2-1 were subjected to HPLC analysis under the conditions shown in Table 6 below. Figure 13 is an LC chart showing the results of the HPLC analysis for Example 2-1 and Comparative Example 2-1.
[0467] [Table 6]
[0468] The evaluation results confirmed that the peak intensity of the major O-linked glycans in fetal bovine fetus was significantly stronger in Example 2-1 compared to Comparative Example 2-1.
[0469] Figure 14 is a graph showing the total peak area values of the major O-linked glycans of fetuin, obtained from the LC chart. The values shown in Figure 14 correspond to the glycan yield of each sample. As a result of the evaluation, it was confirmed that Example 2-1 had a higher yield of O-linked glycans compared to Comparative Example 2-1.
[0470] In other words, it was confirmed that APTS labeling of O-type glycans is possible with the glycan preparation method of the present invention, and that the obtained labeled product can be suitably analyzed. Furthermore, it was shown that the glycan yield can be significantly increased by dividing the labeling process into a first step and a second step and carrying out the reaction stepwise.
[0471] [Example 2-2: Labeled with 2AA. Confirmed by HPLC analysis.] Fetal bovine fetus (Sigma-Aldrich, catalog number: F3004) was dissolved in ultrapure water to prepare a 2 mg / mL fetuin solution. Using the prepared fetuin solution, the release and adsorption steps were carried out in the same manner as in Example 2-1.
[0472] (Elution process) Solution 1 with a concentration of 300 mmol / L was prepared by dissolving 2-Aminobenzoic Acid (2-AA) (manufactured by Tokyo Chemical Industry Co., Ltd., product code: A0497) in a mixed solution of methanol:acetic acid:ultrapure water = 49:2:49.
[0473] Subsequently, 1 mL of a mixed solution of methanol:acetic acid:ultrapure water = 49:2:49 was added to reagent 7 (reducing agent) included in the kit to prepare solution 2. 15 μL of solution 2 was dissolved in 1 mL of solution 1 to prepare the labeling reaction reagent. The concentration of the reducing agent in the labeling reaction reagent was 5 mmol / L.
[0474] 50 μL of the labeling reagent was added to the purified agent remaining in the filter column after the adsorption process, and the glycans were eluted into the labeling reagent. Subsequently, the solution (labeling reagent with eluted glycans) was collected in a microcentrifuge tube by centrifugation.
[0475] (labeling process) The solution collected in a microtube was heated at 50°C for 3 hours to obtain the labeled product. 1 mL of acetonitrile was added to the heated microtube and the mixture was stirred.
[0476] (purification process) The entire obtained solution was added to column 2 (cleanup column) to capture the glycans (glycan-labeled products) on the cleanup column, and then the solution was removed by centrifugation at 500 × g for 1 minute. Next, 600 μL of acetonitrile was added to the cleanup column, and the solution was removed by centrifugation at 500 × g for 1 minute. After that, another 600 μL of acetonitrile was added to the cleanup column, and the solution was removed by centrifugation at 3000 × g for 1 minute. The cleanup column corresponds to the solid phase for purification in this invention.
[0477] 50 μL of ultrapure water was added to the cleanup column, and the glycans were eluted from the cleanup column. The solution containing the glycan-labeled material (sample solution) was collected in a microcentrifuge tube by centrifugation.
[0478] [Comparative Example 2-2] An aqueous solution containing the glycosylated product (sample solution) was prepared in the same manner as in Example 2-2, except that the concentration of the reducing agent in the labeling reaction reagent was 25 mmol / L.
[0479] [Comparative Example 2-3] An aqueous solution (sample solution) containing the glycosylated product was prepared in the same manner as in Example 2-2, except that the concentration of the reducing agent in the labeling reaction reagent was 0.05 mmol / L.
[0480] The sample solutions prepared in Example 2-2 and Comparative Examples 2-2 and 2-3 were subjected to HPLC analysis under the conditions shown in Table 7 below. Figure 15 is an LC chart showing the results of the HPLC analysis for Example 2-2 and Comparative Examples 2-2 and 2-3.
[0481] [Table 7]
[0482] The description of the concentration gradient conditions means that the concentration of 100% mobile phase B was continuously changed at a constant rate over 50 minutes until it reached the concentration of 100% mobile phase A.
[0483] The evaluation results confirmed that the peak intensity of the major O-linked glycans in fetal bovine fetus was significantly stronger in Example 2-2 compared to Comparative Examples 2-2 and 2-3.
[0484] Figure 16 is a graph showing the total peak area values of the major O-linked glycans of fetuin, obtained from the LC chart. The values shown in Figure 16 correspond to the glycan yield of each sample. As a result of the evaluation, it was confirmed that Example 2-2 had a higher yield of O-linked glycans compared to Comparative Examples 2-2 and 2-3.
[0485] [Examples 2-3: Confirmation by capillary electrophoresis analysis 1] The sample solution from Example 2-1 was diluted 2-fold with ultrapure water, and capillary electrophoresis (CE) analysis was performed under the following conditions. The CE analysis under the following conditions is capillary gel electrophoresis. (conditions) CE device: P / ACE MDQ Plus (AB Sciex Corporation) Capillary: N-CHO capillary (manufactured by AB Sciex, part number: 477601) Buffer solution: N-Linked Carbohydrate Separation Gel Buffer (Manufactured by AB Sciex. Part number: 477623) Fluorescence detection: Excitation wavelength 488 nm, fluorescence wavelength 520 nm
[0486] The sample was injected into a capillary at 0.5 psi (where 1 psi = 6894.76 Pa) for 3 seconds. Separation was performed over 13 minutes using a voltage of 30 kV.
[0487] [Reference example 2-1] 10 µg of commercially available O-linked glycan standard Sialylated Core 1 O Glycan (Ludger, catalog number: CO-C1(S3)1-20U) was dissolved in 5 μL of the above-mentioned first reagent and transferred to a PCR tube. 5 μL of the second reagent was added to the PCR tube and heated at 70°C for 3 hours to obtain the labeled product. 40 μL of ultrapure water was added to the contents of the heated tube to prepare a diluted sample solution.
[0488] The obtained sample solutions were subjected to CE analysis in the same manner as in Example 2-3.
[0489] Figure 17 shows the chart obtained by capillary electrophoresis analysis of Example 2-3, and Figure 18 shows the chart obtained by capillary electrophoresis analysis of Reference Example 2-1. As a result of the evaluation, in Example 2-3, a peak was observed at the same position as the elution time of Sialylated Core 1 in Reference Example 2-1.
[0490] [Examples 2-4: Confirmation by capillary electrophoresis analysis 2] The analysis was performed in the same manner as in Example 2-3, except that the buffer used for capillary electrophoresis was 50 mmol / L HEPES (pH 7.25), and the sample was injected into the capillary at 0.3 psi for 3 seconds. The CE analysis in Example 2-4 was capillary zone electrophoresis.
[0491] [Reference example 2-2] The analysis was performed in the same manner as in Reference Example 2-1, except that the buffer used for capillary electrophoresis was 50 mmol / L HEPES (pH 7.25), and the sample was injected into the capillary at 0.3 psi for 3 seconds. The CE analysis in Reference Example 2-2 is capillary zone electrophoresis.
[0492] Figure 19 shows the chart obtained by capillary electrophoresis analysis of Example 2-4, and Figure 20 shows the chart obtained by capillary electrophoresis analysis of Reference Example 2-2. As a result of the evaluation, a peak was confirmed in Example 2-4 at the same position as the elution time of Sialylated Core 1 in Reference Example 2-2.
[0493] The results from Examples 2-3, 2-4 and Reference Examples 2-1, 2-2 confirmed that the major O-linked glycans of fetal bovine bovine glycans can be labeled by the glycan preparation method of the present invention and can be analyzed by CE analysis.
[0494] In other words, it was confirmed that APTS labeling of O-type glycans is possible with the glycan preparation method of the present invention, and that the resulting labeled product can be suitably analyzed. Furthermore, it was shown that the glycan yield can be significantly increased by setting the reducing agent concentration in the labeling reaction reagent to 0.1 mmol / L or more and 20 mmol / L or less in the 2AA labeling step.
[0495] [Example 2-5: Confirmation of the effectiveness of washing with a mixed solvent] (Preparation of glycosylated products) A reaction mixture containing the labeled product was obtained using the same procedure as in Example 2-1. The resulting reaction mixture contained the glycosylated product as well as unreacted labeled compounds.
[0496] (Purification process ~ Glycan analysis) 60 μL of ultrapure water was added to the above reaction mixture, followed by 600 μL of ethanol. The entire resulting solution was added to a cleanup column (Sumitomo Bakelite, part number: BS-X4410), and the cleanup column was centrifuged to remove the solution. Then, 600 μL of the mixed solution shown in Table 8 was added, and the cleanup column was centrifuged to remove the solution. Furthermore, another 600 μL of the mixed solution shown in Table 8 was added, and the cleanup column was centrifuged to remove the solution.
[0497] 50 μL of ultrapure water was added to the cleanup column and centrifuged, and the aqueous solution containing the glycan-labeled compound was collected in a microcentrifuge tube. The obtained sample solution was subjected to capillary electrophoresis analysis in the same manner as in Example 2-3, and the amounts of unreacted labeled compound and Sialylated Core 1 glycan-labeled compound in the obtained sample solution were measured. The results are shown in Table 9.
[0498] [Table 8]
[0499] [Table 9]
[0500] In Table 9, "Remaining Rate" indicates the percentage of unreacted labeled compounds or glycosylated products in the unpurified sample solution, with the amount (area value) set to 100.
[0501] The evaluation results showed that, under all conditions, washing the glycosylated compound with a mixed solvent of organic solvent and water in the purification process reduced the amount of unreacted labeled compound in the unpurified sample solution.
[0502] In particular, washing with a mixed solvent of Nos. 1-3 resulted in a high level of purification, with the remaining unreacted labeled compound being 15% or less and the remaining glycosylated product being 40% or more. In each of the sample solutions Nos. 1-3, the amount of unreacted labeled compound was reduced compared to the unpurified sample solution, and a sufficient amount of glycosylated product remained, indicating that accurate analysis is possible.
[0503] Based on the above results, it has been confirmed that the present invention is useful. [Explanation of symbols]
[0504] 1…Purifying agent, 2…Support, 3…Polymer layer, 3a…Polymer, 10…Solid phase, 15…Container, 16…Recovery container, 20…Holding unit, 30…Inlet unit, 31…Glycan-releasing enzyme, 32…Labeling reaction reagent, 33…Pretreatment agent / Deglycosylation accelerator, 34…Tank, 35…Nozzle, 35a…Liquid delivery pipe, 36,37,38…Valves, 40…Solid-liquid separation unit, 41…Rack, 42…Drive shaft, 43…Motor, 50…Container transfer unit (liquid transfer unit), 60…Temperature control unit, 100…Apparatus for preparing glycoprotein glycans
Claims
1. A liberation step involves reacting a glycoprotein immobilized on a solid phase with a glycosylation-releasing enzyme in a container to obtain a liberated product containing glycans, A labeling step is to add a labeling reaction reagent to the free product in the container and obtain a labeled product containing the labeled sugar chain by solid-liquid separation. The purification step includes passing a solution containing the labeling product through a purifying solid phase to capture the labeling in the purifying solid phase, washing the purifying solid phase with a mixed solvent, and then adding ultrapure water to the purifying solid phase to dissolve the captured labeling in the ultrapure water. The aforementioned glycoprotein is an antibody, The solid phase has a ligand selected from the group consisting of protein A, protein G, protein L, protein H, protein D, and protein Arp on its surface. The labeling reaction reagent comprises at least one selected from the group consisting of 8-aminopyrene-1,3,6-trisulfonic acid, the sodium salt of 8-aminopyrene-1,3,6-trisulfonic acid, and 9-aminopyrene-1,4,6-trisulfonic acid, a reducing agent, and a solution. The mixed solvent comprises an organic solvent and water. The mixing ratio of the aforementioned mixed solvent is acetonitrile:alcohol:water = 20-65:30-60:2-15 by volume (total 100 volume%). A method for preparing a sugar chain, wherein the alcohol is methanol or ethanol.
2. A liberation step involves reacting a glycoprotein immobilized on a solid phase with a glycosylation-releasing enzyme in a container to obtain a liberated product containing glycans, A labeling step is to add a labeling reaction reagent to the free product in the container and obtain a labeled product containing the labeled sugar chain by solid-liquid separation. The purification step includes passing a solution containing the labeling product through a purifying solid phase to capture the labeling in the purifying solid phase, washing the purifying solid phase with a mixed solvent, and then adding ultrapure water to the purifying solid phase to dissolve the captured labeling in the ultrapure water. The aforementioned glycoprotein is an antibody, The solid phase has a ligand selected from the group consisting of protein A, protein G, protein L, protein H, protein D, and protein Arp on its surface. The labeling reaction reagent comprises at least one selected from the group consisting of 8-aminopyrene-1,3,6-trisulfonic acid, the sodium salt of 8-aminopyrene-1,3,6-trisulfonic acid, and 9-aminopyrene-1,4,6-trisulfonic acid, a reducing agent, and a solution. The mixed solvent comprises an organic solvent and water. The mixing ratio of the aforementioned mixed solvent is acetonitrile:alcohol:water = 20-65:30-60:2-15 by volume (total 100 volume%). The method for preparing sugar chains involves passing a solution obtained by dissolving the labeled product in an ionic aqueous solution through the solid phase for purification in the purification step.
3. The method for preparing a sugar chain according to claim 1 or 2, wherein the reducing agent is picolineborane.
4. The method for preparing a sugar chain according to claim 1 or 2, wherein the solution contains an organic acid.
5. The method for preparing a sugar chain according to claim 4, wherein the solution further comprises a polar solvent different from the organic acid.
6. The method for preparing a sugar chain according to claim 1 or 2, further comprising a separation step after the liberation step to obtain a separated liquid containing the liberated product by solid-liquid separation.
7. The method for preparing glycans according to claim 1 or 2, wherein the liberation step is carried out in the presence of a deglycosylation accelerator containing an acid-derived anionic surfactant.
8. A glycan analysis method comprising an analytical step of analyzing a sample prepared by the glycan preparation method described in claim 1 or 2.
9. The glycan analysis method according to claim 8, wherein the analysis step includes the following steps (1) to (3). (1) After filling the capillary used for separation with the sample, the process of filling the capillary with the preceding electrolyte solution from the downstream end of the capillary. (2) With both ends of the capillary immersed in the electrophoresis solution, a voltage is applied with the downstream side of the capillary being positive and the upstream side being negative, thereby concentrating the multiple labeled substances contained in the sample on the upstream side of the capillary. (3) A step of separating each of the concentrated labeled substances by capillary electrophoresis.
10. The method for analyzing a glycan according to claim 9, wherein the labeled substance is analyzed by laser-excited fluorescence in the analysis step.
11. The method for analyzing glycans according to claim 9, wherein the electrophoretic rate of the electrolyte contained in the preceding electrolyte solution is faster than the electrophoretic rate of the labeled substance.