A method for separating cells with different degrees of undifferentiation using layered adsorbents.

The method uses a column with varying fucose-binding protein amounts to separate cell populations with different degrees of undifferentiation, addressing efficiency and cost issues in existing technologies by ensuring rapid and effective separation.

JP7830838B2Active Publication Date: 2026-03-17TOSOH CORP
View PDF 6 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-03-26
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

Existing methods struggle to efficiently separate and purify cell populations with different degrees of undifferentiation in a short time, particularly for regenerative medicine applications, due to issues with binding affinity and environmental factors affecting fucose-binding proteins like BC2LCN, and existing technologies cause cell damage or require expensive and time-consuming equipment.

Method used

A method using a column with multiple adsorbents having varying amounts of immobilized fucose-binding protein, where cells are sequentially contacted, allowing for the recovery of fractions that do not bind, thereby separating cells with different degrees of undifferentiation based on glycan marker expression levels.

Benefits of technology

Enables rapid and efficient separation of cell populations with different degrees of undifferentiation, minimizing cell damage and reducing the need for expensive equipment, while maintaining cell viability and purity.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007830838000004
    Figure 0007830838000004
  • Figure 0007830838000005
    Figure 0007830838000005
  • Figure 0007830838000001
    Figure 0007830838000001
Patent Text Reader

Abstract

To provide technologies for easily and efficiently separating cells with different expression levels of undifferentiated markers from cell populations with different expression levels of undifferentiated markers present on the surface of cells.SOLUTION: The above problem is solved by preparing a plurality of adsorbents with different immobilization of fucose-binding proteins on water-insoluble carriers, bringing cell populations with different expression levels of undifferentiated sugar chain markers first into contact with an adsorbent with a low immobilization amount of fucose-binding proteins, then, gradually into contact with an adsorbent with a high immobilization amount of fucose-binding proteins, and separating and collecting cells with different expression levels of undifferentiated sugar chain markers present on the surface of cells.SELECTED DRAWING: Figure 2
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to a cell separation method using an adsorbent in which a fucose-binding protein is immobilized on a water-insoluble carrier. A cell population is gradually contacted with a column in which a plurality of adsorbents with different amounts of immobilized fucose-binding protein on the carrier are laminated, and fractions of cells flowing out from the column are collected, thereby separating cell populations with different degrees of undifferentiation.

Background Art

[0002] BC2LCN, which is derived from the N-terminal domain of BC2L-C lectin produced by Gram-negative bacterium (Burkholderia cenocepacia), is a protein having a binding affinity for sugar chains containing fucose residues. For example, in addition to the H type 1 sugar chain (Fucα1-2Galβ1-3GlcNAc) and the H type 3 sugar chain (Fucα1-2Galβ1-3GalNAc) known as undifferentiated sugar chain markers described in Non-Patent Document 1, Patent Document 1, and Patent Document 2, it is known to have a high binding affinity for a plurality of types of sugar chains containing fucose residues such as the Lewis Y type sugar chain (Fucα1-2Galβ1-4(Fucα1-3)GlcNAc) and the Lewis X type sugar chain (Galβ1-4(Fucα1-3)GlcNAc) (Non-Patent Document 2).

[0003] Also, it is known that BC2LCN binds to undifferentiated human iPS cells and human ES cells in which the H type 1 sugar chain and the H type 3 sugar chain are highly expressed, but does not bind to human somatic cells (Non-Patent Document 3).

[0004] Furthermore, since BC2LCN has binding properties to the undifferentiated sugar chain markers, it is used, for example, for the detection of complex carbohydrates containing undifferentiated sugar chain markers and for the detection of undifferentiated cells such as human iPS cells and human ES cells (Patent Document 1 and Patent Document 2). Also, it is known that the H type 1 sugar chain is highly expressed in specific cancer cells as SSEA-5 (Non-Patent Document 4).

[0005] Although BC2LCN has the same ability to detect undifferentiated stem cells as known antibodies for detecting undifferentiated cells, such as anti-Nanog antibodies (Patent Document 2), the binding of BC2LCN to the glycans of undifferentiated cells is due to electrostatic interactions, and the strength of the binding is affected by external environmental factors such as solvent and salt concentration. Therefore, depending on the experimental conditions, the binding affinity between the glycans and BC2LCN may be low when detecting the undifferentiated cells and / or complex carbohydrates containing the undifferentiated glycan marker. Thus, there is a need for BC2LCN with improved binding affinity to the undifferentiated glycan marker.

[0006] As a cell separation method using an adsorbent in which BC2LCN is immobilized on a water-insoluble carrier, a method for removing undifferentiated cells such as human iPS cells is known (Patent Document 3), and a method for detaching and recovering undifferentiated cells bound to the adsorbent is also known (Patent Document 4). However, while the methods disclosed in these patent documents could separate cells expressing H-type 1 and H-type 3 glycans from cells that did not express them, they could not individually separate heterogeneous cell populations with different levels of H-type 1 and H-type 3 glycan expression, or cells with different levels of H-type 1 and H-type 3 glycan expression from the same species of cell population.

[0007] Generally, methods for separating cells that utilize differences in the expression levels of undifferentiated markers on the cell surface or cell surface antigens based on the CD (cluster of differentiation) classification that characterizes each cell type include cell separation using magnetic beads (Non-Patent Literature 5), cell sorting using cell sorters (Non-Patent Literature 5), and cell separation using cell rolling columns (Non-Patent Literature 6). However, while cell separation using magnetic beads is suitable for processing large quantities of cells, it cannot separate cells with small differences in undifferentiated marker expression levels or CD antigen expression levels. Furthermore, there are quality control issues such as cell damage due to magnetic beads adhering to cells and contamination by foreign matter, and there have been concerns about the impact on the proliferative and differentiation-oriented properties of the recovered cells. Cell sorting using cell sorters and cell separation using cell rolling columns require expensive equipment and take a considerable amount of time to process large quantities of cells, resulting in significant problems in terms of cell separation efficiency.

[0008] However, in the current situation, there has been a strong need to develop a technology for accurately separating and purifying large quantities of cells in a short time, based on differences in the expression levels of undifferentiated markers and CD antigens on the cell surface, for use in regenerative medicine. [Prior art documents] [Patent Documents]

[0009] [Patent Document 1] WO2013 / 065302 issue [Patent Document 2] WO2013 / 128914 [Patent Document 3] Japanese Patent Publication No. 2018-134073 [Patent Document 4] Japanese Patent Publication No. 2019-000063 [Non-patent literature]

[0010] [Non-Patent Document 1] Tateno, H et al., Stem Cells Transl Med.2013, 2(4):265-273. [Non-Patent Document 2] Sulak, O et al., Structure.2010, 18(1):59-72. [Non-Patent Document 3] Tateno, H et al., J Biol Chem. 2011, 286(23):20345-20353. [Non-Patent Document 4] Tang, C et al., Nat Biotechnol. 2011, 29(9):829-835. [Non-Patent Document 5] Fong CY et al., Stem Cell Rev Rep.2009, 5(1):72-80. [Non-Patent Document 6] Mahara, A et al., J Biomater Sci Polym Ed.2014, 25(14-15):1590-601. [Overview of the project] [Problems that the invention aims to solve]

[0011] The object of the present invention is to provide a technology that enables the separation and purification of cell populations with different degrees of undifferentiation from a large number of cells in a short time when preparing cells for regenerative medicine applications, specifically a technology for separating cell populations with different levels of expression of undifferentiation markers present on the cell surface. More specifically, the aim is to provide a technique for easily and efficiently separating cell populations with different degrees of undifferentiation by sequentially contacting a cell population with a column containing multiple adsorbents with varying amounts of fucose-binding protein immobilized on a carrier, and then collecting the fraction of cells that did not bind to the adsorbent. [Means for solving the problem]

[0012] As a result of diligent research to solve the aforementioned problems, the present inventors have discovered that it is possible to separate and recover cell populations with different levels of expression of undifferentiated markers present on the cell surface from the original cell population by first contacting cell populations with a low amount of fucose-binding protein immobilization with an adsorbent, and then gradually contacting them with adsorbents with a higher amount of fucose-binding protein immobilization, and then recovering the fraction of cells that did not adsorb with the adsorbent. This has led to the completion of the present invention.

[0013] In other words, the present invention encompasses the inventions described in [1] to [8] below. [1] A method for separating cells using an adsorbent comprising a fucose-binding protein immobilized on a water-insoluble carrier, comprising the steps of: binding cell populations with different degrees of undifferentiation to multiple adsorbents with different amounts of immobilized fucose-binding protein; and obtaining cells that did not bind to the adsorbents. [2] A method for separating cells of different degrees of undifferentiation according to [1], comprising the steps of: binding cell populations of different degrees of undifferentiation to multiple adsorbents with different amounts of immobilized fucose-binding proteins, in a stepwise manner from an adsorbent with a low amount of immobilized fucose-binding proteins to an adsorbent with a high amount of immobilized fucose-binding proteins; and obtaining cells that did not bind to the adsorbents. [3] A method for separating cells of different degrees of undifferentiation according to [1] or [2], characterized in that the amount of fucose-binding protein immobilized ranges from 50 mg / L-adsorbent to 1000 mg / L-adsorbent, and multiple adsorbents with fucose-binding protein immobilization amounts differing by 100 mg / L-adsorbent or more.

[0014] [4] A method for separating cells with different degrees of differentiation according to any one of [1] to [3], characterized in that cell populations with different degrees of differentiation express glycans containing a structure consisting of Fucα1-2Galβ1-3GlcNAc and / or Fucα1-2Galβ1-3GalNAc on the cell surface. [5] A method for separating cells with different expression levels of glycans containing a structure consisting of Fucα1-2Galβ1-3GlcNAc and / or Fucα1-2Galβ1-3GalNAc, using the method according to any one of [1] to [4]. [6] The method according to any one of [1] to [5], wherein the fucose-binding protein is any one of the following (a) to (d). (a) A fucose-binding protein comprising an amino acid sequence from the first proline residue to the Xth amino acid residue of the amino acid sequence shown in SEQ ID NO: 1, wherein X is an integer of 120 or more. (b) A fucose-binding protein comprising an amino acid sequence in which one or more amino acids are deleted, substituted or added in the amino acid sequence from the first proline residue to the Xth amino acid residue of the amino acid sequence shown in SEQ ID NO: 1, and having a binding affinity to a glycan containing a structure consisting of Fucα1-2Galβ1-3GlcNAc and / or Fucα1-2Galβ1-3GalNAc, wherein X is an integer of 120 or more. (c) A fucose-binding protein comprising an amino acid sequence containing any one or more of the amino acid substitutions described in the following (1) to (3) in the amino acid sequence from the first proline residue to the Xth amino acid residue of the amino acid sequence shown in SEQ ID NO: 1, wherein X is an integer of 120 or more. (1) Substitution of the 39th glutamine residue of the amino acid sequence shown in SEQ ID NO: 1 with a leucine residue. (2) Substitution of the 72nd cysteine residue of the amino acid sequence shown in SEQ ID NO: 1 with one type of amino acid residue selected from a glycine residue and an alanine residue. <0(3) Substitution of the 65th glutamine residue in the amino acid sequence shown in Sequence ID No. 1 with a leucine residue. (d) A fucose-binding protein having an amino acid sequence in which one or more amino acid residues are deleted, substituted, inserted, or added in the amino acid sequence of the fucose-binding protein of (c) above, in regions other than positions 39, 65, and 72 of SEQ ID NO: 1, and having a binding affinity to a sugar chain containing a structure consisting of Fucα1-2Galβ1-3GlcNAc and / or Fucα1-2Galβ1-3GalNAc.

[0015] [7] The method according to any one of the above [1] to [5], wherein the fucose-binding protein is one of the following (e) to (h). (e) A fucose-binding protein having an amino acid sequence in which the amino acid sequence from the first proline residue to the Xth amino acid residue of the amino acid sequence shown in Sequence ID No. 1 is further modified by adding a polyhistidine sequence oligopeptide to the N-terminus and a cysteine ​​sequence oligopeptide to the C-terminus, and where X is an integer of 120 or greater. (f) A fucose-binding protein having an amino acid sequence in which one or more amino acids are deleted, substituted, or added in the amino acid sequence from the first proline residue to the Xth amino acid residue of the amino acid sequence shown in Sequence ID No. 1, and further having a polyhistidine sequence added to the N-terminus and a cysteine-containing oligopeptide added to the C-terminus, and having a binding affinity to a sugar chain containing a structure consisting of Fucα1-2Galβ1-3GlcNAc and / or Fucα1-2Galβ1-3GalNAc, wherein X is an integer of 120 or more. (g) An amino acid sequence obtained by adding a polyhistidine sequence oligopeptide to the N-terminus and a cysteine ​​sequence oligopeptide to the C-terminus of the amino acid sequence shown in SEQ ID NO: 1, wherein the amino acid sequence includes one or more of the amino acid substitutions described in (4) to (6) below, and X is an integer of 120 or more, and is a fucose-binding protein. (4) Substitution of the 39th glutamine residue in the amino acid sequence shown in Sequence ID No. 1 with a leucine residue. (5) Substitution of the 72nd cysteine ​​residue in the amino acid sequence shown in Sequence ID No. 1 with one amino acid residue selected from glycine and alanine residues. (6) Substitution of the 65th glutamine residue in the amino acid sequence shown in Sequence ID No. 1 with a leucine residue. (h) A fucose-binding protein having an amino acid sequence in which one or more amino acid residues are deleted, substituted, inserted, or added in the region other than positions 39, 65, and 72 of SEQ ID NO: 1, and further having an oligopeptide containing a polyhistidine sequence added to the N-terminus and an oligopeptide containing cysteine ​​added to the C-terminus, and having a binding affinity to a sugar chain containing a structure consisting of Fucα1-2Galβ1-3GlcNAc and / or Fucα1-2Galβ1-3GalNAc.

[0016] [8] The method according to any one of [1] to [7], characterized by using a column packed with multiple adsorbents having different amounts of fucose-binding proteins immobilized on it.

[0017] The present invention will be described in detail below.

[0018] The present invention provides a method for separating cells with different degrees of undifferentiation using stacked adsorbents (hereinafter sometimes referred to as the cell separation method of the present invention), which is a method for separating cells using an adsorbent in which a fucose-binding protein is immobilized on a water-insoluble carrier, and is characterized by including a step of bringing a cell population into contact stepwise with a column having multiple adsorbents stacked with different amounts of fucose-binding protein immobilized on the carrier, and then obtaining cells that did not bind to the adsorbent as a fraction.

[0019] In the cell separation method of the present invention, the undifferentiated marker is a molecule present on the cell surface that serves as an indicator of the degree of undifferentiation. Specifically, examples include a glycan containing a structure made of Fucα1-2Galβ1-3GlcNAc, which has a glycan structure including an H-type 1 glycan structure, an H-type 3 glycan structure, a Lewis Y-type glycan structure, and / or a Lewis b-type glycan structure, all of which are known as fucose-containing glycans to which the above-mentioned fucose-binding protein can bind, and / or a glycan containing a structure made of Fucα1-2Galβ1-3GalNAc. Furthermore, the undifferentiated marker in the present invention is not limited to the above-mentioned glycan structures, but may also be TRA-1-60, TRA-1-81, SSEA-3, SSEA-4, SSEA-5, etc., which are generally known as undifferentiated markers on the cell surface.

[0020] In the cell separation method of the present invention, cells with different degrees of undifferentiation refer to cells with different levels of expression of the undifferentiation marker on their cell surface. Cells with different degrees of undifferentiation primarily refer to cells with clearly different levels of expression of the undifferentiation marker. In this case, the level of expression of the undifferentiation marker is determined by the proportion of cells in the cell population that express the undifferentiation marker molecule on their cell surface, or by the number and density of undifferentiation marker molecules present on the surface of a single cell. Taking a glycan to which the fucose-binding protein can bind as an example of an undifferentiation marker, it is known that, for example, K562 cells (human chronic myeloid leukemia) and NHDF cells (human dermal fibroblasts) do not contain cells in the cell population that have a glycan that binds to the fucose-binding protein. Furthermore, it is known that in 2102Ep cells (human embryonic tumor cells), approximately 50% to 80% of the cell population expresses glycans that bind to the aforementioned fucose-binding protein, and in human pluripotent stem cells such as human ES cells and human iPS cells, nearly 100% of the cells express glycans that bind to the aforementioned fucose-binding protein.

[0021] Thus, it is thought that the proportion of cells possessing undifferentiated marker molecules differs among different cell types (hereinafter referred to as heterogeneous cells). Furthermore, when comparing the degree of undifferentiation of heterogeneous cells, even if each cell type expresses the same proportion of glycans that bind to the fucose-binding protein, the number and density of undifferentiated marker molecules present on the cell surface are likely to differ among heterogeneous cells.

[0022] Secondly, a cell population with different degrees of undifferentiation, even within a single cell type, refers to a case where there is a mixture of cells with varying numbers and densities of undifferentiation marker molecules present on the cell surface. For example, if the undifferentiation marker is a glycan that can bind to the fucose-binding protein, then in 2102Ep cells, the expression level of this glycan varies widely from cells with low levels to cells with high levels. Therefore, even within a single cell type, it can be considered a mixture of cell populations with different levels of undifferentiation marker expression, and this case is also included in the cells with different degrees of undifferentiation in the present invention.

[0023] Furthermore, in the case of human iPS cells, as mentioned above, it is known that nearly 100% of the cells express glycans that bind to the fucose-binding protein. However, depending on the culture conditions, it is known that less than 1% of the cells may be undifferentiated offshoots with a low degree of undifferentiation. In this case as well, in the present invention, human iPS cells and undifferentiated offshoot human iPS cells can be considered as cells with different degrees of undifferentiation, even though they are the same cell type. As a third form, it refers to all cell populations that are mixtures of heterogeneous cells with different levels of expression of the undifferentiation markers described in the first example above, and in which cells containing one or more types of glycans that bind to the fucose-binding protein are mixed together in a state in which the number and density of undifferentiation marker molecules present on the cell surface differ for each individual cell as described in the second example.

[0024] In this invention, all of these first to third forms of cell mixtures can be used as the target for separation.

[0025] In the cell separation method of the present invention, the cell mixture to be separated may be a mixture of heterogeneous cells with different levels of undifferentiated marker expression, a single cell type which is an aggregate of cell populations with different levels of undifferentiated marker expression, or a cell mixture containing both. In the present invention, if heterogeneous cells with different levels of undifferentiated marker expression, or cell populations within a single cell type with different levels of undifferentiated marker expression, it is possible to separate cells with different degrees of undifferentiation, depending on the difference in cell type and the difference in undifferentiated marker expression. In this case, the number of types of heterogeneous cells with different levels of undifferentiated marker expression, and the number of types of cell populations within a single cell type with different levels of undifferentiated marker expression, may be two or more.

[0026] Furthermore, the indicator of differences in undifferentiated marker expression levels can be considered, for example, as the degree of shift in the fluorescence intensity of a cell population detectable by a cell sorter such as BD FACSAria (manufactured by Becton Dickinson) when a certain number and volume of cell suspensions are treated with the same concentration and volume of fluorescent antibody solution.

[0027] The cell separation method of the present invention is a method that includes the step of first bringing the aforementioned cell populations with different degrees of undifferentiation into contact with an adsorbent with a low amount of fucose-binding protein immobilized, and then bringing them into stepwise contact with an adsorbent with a higher amount of fucose-binding protein immobilized, and recovering the fraction of cells that did not bind to the adsorbent.

[0028] In this case, it is sufficient to use at least two types of adsorbents prepared with different amounts of fucose-binding protein immobilized, and the number of adsorbents used is not limited as long as the order in which the cell population is brought into contact with the adsorbents progresses from adsorbents with a low amount of fucose-binding protein immobilized to those with a high amount. Furthermore, in this case, the fucose protein immobilized on the adsorbent can be either one with the same amino acid sequence or one whose function has been improved by amino acid substitution as described later. Moreover, it is also possible to prepare multiple types of adsorbents immobilized with different amounts of fucose-binding proteins with different amino acid sequences, and then arbitrarily select two or more adsorbents from among them to use in combination.

[0029] In the cell separation method of the present invention, by first bringing cell populations with different degrees of undifferentiation into contact with an adsorbent with a low amount of immobilized fucose-binding protein, the cell populations with a high degree of undifferentiation contained within the cell population can be selectively captured by the adsorbent.

[0030] Next, by gradually bringing the remaining cell population into contact with adsorbents that have a higher amount of fucose-binding protein immobilized, the less undifferentiated cell populations included in the cell population can be captured by the adsorbent. Therefore, for example, when the cell separation method of the present invention is carried out using a column packed with adsorbent, by layering an adsorbent with a low amount of fucose-binding protein immobilized at the top of the column and an adsorbent with a high amount of fucose-binding protein immobilized at the bottom of the column, when cell populations with different degrees of undifferentiation are brought into contact, the more undifferentiated cell population will be selectively adsorbed to the adsorbent with a low amount of fucose-binding protein immobilized at the top of the column, and the less undifferentiated cell population will be selectively adsorbed to the adsorbent with a high amount of fucose-binding protein immobilized at the bottom of the column.

[0031] In this case, it is thought that, based on the differences in the expression levels of undifferentiated glycan markers on the surface of individual cells, a cell distribution is formed in the column from the top to the bottom, ranging from cells with high expression levels of undifferentiated glycan markers (i.e., cells with a high degree of undifferentiation) to cells with low expression levels of undifferentiated glycan markers (i.e., cells with a low degree of undifferentiation). Therefore, the cells that first flow out from the bottom of the column are thought to be a population of cells with a low degree of undifferentiation, and the cells that flow out later are thought to be a population of cells with a higher degree of undifferentiation. Thus, by finely collecting the fractions of each cell population with a different degree of undifferentiation that flow out from the bottom of the column, it is possible to separate cell populations with different degrees of undifferentiation.

[0032] Furthermore, in this case, the binding of undifferentiated glycan markers on the cell surface to the fucose-binding protein of the adsorbent is reversible, and is also affected by the gravity of the cells themselves and the shear force of the solution flow introduced from the top of the column. Therefore, it is thought that cells repeatedly bind to and detach from the adsorbent, and in the cell separation method of the present invention, among the multiple adsorbents packed into the column, it is thought that a cell distribution is formed such that the cell population closer to the top of the column is more undifferentiated, and the cell population further from the top is less undifferentiated.

[0033] This phenomenon is thought to be based on the same principle as, for example, the phenomenon demonstrated in anti-CD34 antibody-immobilized cell rolling columns, where cells with lower CD34 antigen expression levels migrate faster and are leached out more quickly, while cells with higher CD34 antigen expression levels migrate slower and are leached out more slowly.

[0034] In the cell separation method of the present invention, it is possible to use adsorbents with fucose-binding protein immobilization amounts ranging from 50 mg / L to 1000 mg / L, and it is preferable to use multiple adsorbents such that the fucose-binding protein immobilization amounts of each adsorbent differ by 100 mg / L or more. An example of the form of the cell separation method of the present invention is a procedure in which a cell population is first brought into contact with an adsorbent with a fucose-binding protein immobilization amount of 100 mg / L, the cell population after contact is then brought into contact with an adsorbent with a fucose-binding protein immobilization amount of 200 mg / L, and further into contact with an adsorbent with a fucose-binding protein immobilization amount of 300 mg / L. The type of fucose-binding protein in the multiple adsorbents used, the amount of fucose-binding protein immobilization, the combination of adsorbents, and the amount of each adsorbent used (adsorbent ratio) can be appropriately adjusted according to the degree of undifferentiation and range (variability) of the undifferentiated cells to be separated.

[0035] The best embodiment of the cell separation method of the present invention is a vertically positioned column in which multiple adsorbents are stacked and packed, with an adsorbent with a low amount of fucose-binding protein immobilization at the top of the column and an adsorbent with a high amount of fucose-binding protein immobilization at the bottom of the column. In this case, the method of packing the adsorbents is not particularly limited, as long as a concentration gradient is created in the amount of fucose-binding protein immobilized on the surface of the packed adsorbents, multiple adsorbents with different amounts of fucose-binding protein immobilization may be stacked and packed, or the adsorbents may be packed so that the concentration gradient of fucose-binding protein immobilized on the adsorbents is linear.

[0036] Next, the fucose-binding proteins in the cell separation method of the present invention will be described. The fucose-binding proteins in the cell separation method of the present invention are proteins that have the ability to bind to fucose-containing glycans such as H-type 1 glycans (Fucα1-2Galβ1-3GlcNAc), H-type 3 glycans (Fucα1-2Galβ1-3GalNAc), Lewis Y-type glycans (Fucα1-2Galβ1-4(Fucα1-3)GlcNAc), and Lewis b-type glycans (Fucα1-2Galβ1-3(Fucα1-4)GlcNAc), and the recombinant BC2LCN lectin mentioned above is also included in the fucose-binding proteins in the cell separation method of the present invention. Specifically, the fucose-binding protein in the cell isolation method of the present invention is a protein that (a) contains the amino acid sequence from the 1st proline to the Xth amino acid of the recombinant BC2LCN lectin shown in Sequence ID No. 1 (which matches the amino acid sequence from the 2nd to the 156th amino acid of the amino acid sequence registered in GenPept as registration number WP_006490828), where X is an integer of 120 or more, or (b) consists of an amino acid sequence in which one or more amino acids are deleted, substituted, or added in the amino acid sequence from the 1st proline to the Xth amino acid of the amino acid sequence shown in Sequence ID No. 1, and has binding ability to H-type 1 glycans and / or H-type 3 glycans, where X is an integer of 120 or more, expressed as a recombinant protein in a transformed E. coli.

[0037] In the cell separation method of the present invention, the fucose-binding protein has binding ability to the fucose-containing glycans, particularly glycans containing a structure consisting of Fucα1-2Galβ1-3GlcNAc and / or Fucα1-2Galβ1-3GalNAc. In this case, one or more amino acids may be deleted, substituted, or added in the amino acid sequence from the first proline to the Xth amino acid of the amino acid sequence shown in SEQ ID NO: 1. For example, 15 or fewer amino acids, preferably 10 or fewer, may be deleted, substituted, or added. Furthermore, X may be between 120 and 155, or between 125 and 155.

[0038] As disclosed in Japanese Patent Publication No. 2020-25535, the fucose-binding protein in the cell isolation method of the present invention can have improved productivity (expression level) when produced in transformed E. coli compared to when the amino acid residues are not deleted, by deleting several amino acid residues at the C-terminus of the amino acid sequence shown in Sequence ID No. 1.

[0039] Furthermore, the fucose-binding protein in the cell separation method of the present invention may include one or more of the following to improve thermal stability: (i) substitution of the 39th glutamine residue in the amino acid sequence shown in SEQ ID NO: 1 with a leucine residue; (ii) substitution of the 72nd cysteine ​​residue in the amino acid sequence shown in SEQ ID NO: 1 with one amino acid residue selected from a glycine residue and / or an alanine residue; or (iii) substitution of the 65th glutamine residue in the amino acid sequence shown in SEQ ID NO: 1 with a leucine residue.

[0040] As disclosed in Japanese Patent Application Publication No. 2020-25535, the thermal stability of the fucose-binding protein in the cell separation method of the present invention can be improved by performing the amino acid substitutions described in (i) to (iii) above. The amino acid substitutions described in (i) to (iii) above are effective in improving thermal stability whether performed individually or in combination, but it is more preferable to combine multiple amino acid substitutions described in (i) to (iii) above in order to further improve thermal stability.

[0041] Furthermore, as long as the fucose-binding protein in the cell separation method of the present invention has the ability to bind to a sugar chain containing a structure consisting of Fucα1-2Galβ1-3GlcNAc and / or Fucα1-2Galβ1-3GalNAc, one or more amino acid residues may be deleted, substituted, or inserted in the amino acid sequence from the first proline to the Xth amino acid of the amino acid sequence shown in SEQ ID NO: 1, in addition to the positions substituted by the substitutions in (i) to (iii) above. For example, 15 or fewer, preferably 10 or fewer, amino acid residues may be deleted, substituted, or inserted.

[0042] Specific examples of fucose-binding proteins in the cell separation method of the present invention include SEQ ID NO: 1, SEQ ID NO: 2 (amino acid sequence from the 1st to the 127th amino acid sequence shown in SEQ ID NO: 1), SEQ ID NO: 3 (amino acid sequence in which the 72nd cysteine ​​residue of SEQ ID NO: 2 is replaced with a glycine residue), SEQ ID NO: 4 (amino acid sequence in which the 39th glutamine residue of SEQ ID NO: 2 is replaced with a leucine residue, and the 72nd cysteine ​​residue of SEQ ID NO: 2 is replaced with a leucine residue, the 65th glutamine residue of SEQ ID NO: 2 is replaced with a leucine residue, and the 72nd cysteine ​​residue of SEQ ID NO: 6 (amino acid sequence in which an oligopeptide containing a polyhistidine sequence is added to the N-terminus of the amino acid sequence shown in SEQ ID NO: 1, and an oligopeptide containing a cysteine ​​residue is added to the C-terminus). Examples of fucose-binding proteins include those represented by SEQ ID NO: 1, SEQ ID NO: 7 (an amino acid sequence in which a polyhistidine sequence oligopeptide is added to the N-terminus of the amino acid sequence shown in SEQ ID NO: 2, and an oligopeptide containing a cysteine ​​residue is added to the C-terminus), SEQ ID NO: 8 (an amino acid sequence in which a polyhistidine sequence oligopeptide is added to the N-terminus of the amino acid sequence shown in SEQ ID NO: 3, and an oligopeptide containing a cysteine ​​residue is added to the C-terminus), SEQ ID NO: 9 (an amino acid sequence in which a polyhistidine sequence oligopeptide is added to the N-terminus of the amino acid sequence shown in SEQ ID NO: 4, and an oligopeptide containing a cysteine ​​residue is added to the C-terminus), and SEQ ID NO: 10 (an amino acid sequence in which a polyhistidine sequence oligopeptide is added to the N-terminus of the amino acid sequence shown in SEQ ID NO: 5, and an oligopeptide containing a cysteine ​​residue is added to the C-terminus).

[0043] In the cell separation method of the present invention, the fucose-binding protein may have additional amino acid sequences useful for detecting the fucose-binding protein at its N-terminus and / or C-terminus, as long as it has the ability to bind to a sugar chain containing a structure consisting of Fucα1-2Galβ1-3GlcNAc and / or Fucα1-2Galβ1-3GalNAc. Examples of such additional amino acid sequences include oligopeptides containing polyhistidine sequences, glutathione S-transferase (hereinafter referred to as GST), maltose-binding proteins, cellulose-binding domains, myc tags, FLAG tags, and the like.

[0044] Among these additional amino acid sequences, oligopeptides containing polyhistidine sequences or GST are preferred, and oligopeptides containing polyhistidine sequences are more preferred, because they offer high productivity when produced using E. coli and allow for easy detection of fucose-binding proteins using fluorescently labeled anti-polyhistidine antibodies or anti-GST antibodies.

[0045] There are no particular restrictions on the number of histidine repeats in an oligopeptide containing a polyhistidine sequence. However, if the histidine repeats are short, detection by an anti-polyhistidine antibody becomes difficult, and if they are long, the binding ability of the fucose-binding protein to the aforementioned sugar chain may be impaired. Therefore, the length of the histidine repeats in an oligopeptide containing a polyhistidine sequence is preferably such that the repeat consists of 5 to 15 histidine molecules, and more preferably such that it consists of 5 to 10 histidine molecules.

[0046] There are no particular restrictions on the position where the oligopeptide containing the polyhistidine sequence is attached to the fucose-binding protein; it may be attached to both the N-terminus and the C-terminus, or to either the N-terminus or the C-terminus. However, it is preferable that the oligopeptide containing the polyhistidine sequence is attached to the N-terminus of the fucose-binding protein in order to enable efficient detection with an anti-polyhistidine antibody.

[0047] Furthermore, the fucose-binding protein in the cell separation method of the present invention may have an additional amino acid sequence (hereinafter referred to as a carrier immobilization tag) consisting of an oligopeptide containing a cysteine ​​residue or a lysine residue at its N-terminal and / or C-terminal end, which is useful for immobilizing the fucose-binding protein on a water-insoluble carrier. By immobilizing the fucose-binding protein on a carrier, for example, an undifferentiated cell adsorbent for removing undifferentiated cells such as human iPS cells as described in Patent Document 3 can be produced. The length of the carrier immobilization tag is not particularly limited, as long as the fucose-binding protein has the ability to bind to a glycan containing a structure consisting of Fucα1-2Galβ1-3GlcNAc and / or Fucα1-2Galβ1-3GalNAc. As a tag for immobilization on a carrier, an oligopeptide consisting of 2 to 10 amino acid residues containing one or more cysteine ​​residues is preferred because it allows for highly selective and efficient immobilization on a water-insoluble carrier. Specifically, examples include an oligopeptide consisting of 3 amino acid residues of "Gly-Gly-Cys", an oligopeptide consisting of 5 amino acid residues of "Ala-Ser-Gly-Gly-Cys", and an oligopeptide consisting of 7 amino acid residues of "Gly-Gly-Gly-Ser-Gly-Gly-Cys". There are no particular restrictions on the position where the oligopeptide containing one or more cysteine ​​residues is attached to the fucose-binding protein; it may be attached to both the N-terminal and C-terminal sides, or to either the N-terminal or C-terminal side. However, it is preferable that the oligopeptide containing one or more cysteine ​​residues is attached to the C-terminal side of the fucose-binding protein because it allows for efficient immobilization of the fucose-binding protein to the carrier and is less likely to inhibit binding activity because it is far from the active site of the fucose-binding protein.

[0048] In the cell isolation method of the present invention, a signal peptide may be added to the N-terminus of the fucose-binding protein to promote efficient expression in the host. Examples of such signal peptides when the host is E. coli include signal peptides that induce protein secretion into the periplasm, such as PelB, DsbA, MalE, and TorT. The DNA encoding the fucose-binding protein in the cell isolation method of the present invention can be prepared by known methods. Examples of methods for preparing the DNA include converting the amino acid sequence of the fucose-binding protein in the cell isolation method of the present invention into a base sequence and artificially synthesizing DNA containing the base sequence, directly preparing the DNA encoding the fucose-binding protein in the cell isolation method of the present invention, or preparing it from genomic DNA of Burkholderia cenocepacia using DNA amplification methods such as PCR.

[0049] Furthermore, when designing the base sequence in the preparation method, it is preferable to consider the frequency of codon use in the E. coli to be transformed. For example, in arginine (Arg), AGA, AGG, CGG, or CGA are codons with low usage frequency (rare codons); in isoleucine (Ile), ATA is a rare codon; in leucine (Leu), CTA is a rare codon; in glycine (Gly), GGA is a rare codon; and in proline (Pro), CCC is a rare codon. Therefore, it is preferable to select and convert codons other than these. Codon usage frequency analysis can also be performed using public databases (for example, the Codon Usage Database on the Kazusa DNA Research Institute website, http: / / www.kazusa.or.jp / codon / , accessed May 7, 2020).

[0050] To transform Escherichia coli using DNA encoding a fucose-binding protein prepared by the above method, transformation may be performed using the DNA itself. However, it is preferable to insert the DNA into an appropriate position in a vector based on a bacteriophage, cosmid, or plasmid, which is commonly used for the transformation of prokaryotic or eukaryotic cells, to create an expression vector, and then use this vector for transformation, as this allows for stable transformation. Here, an appropriate position means a position that does not disrupt the replication function of the expression vector, the desired antibiotic marker, and the regions involved in transduction. When inserting the DNA into the vector, it is preferable to insert it into the vector in a state where it is linked to functional DNA such as a promoter necessary for expression. The vector used as the expression vector is not particularly limited as long as it can stably exist and replicate in the host, and examples include pET vectors, pUC vectors, pTrc vectors, pCDF vectors, pBBR vectors, etc. Examples of promoters include the trp promoter, tac promoter, trc promoter, lac promoter, T7 promoter, recA promoter, lpp promoter, and even the λPL promoter and λPR promoter of λ phage. Transforming the host Escherichia coli using the aforementioned expression vector can be done using methods commonly used by those skilled in the art. For example, when selecting Escherichia coli strains such as JM109, BL21(DE3), NiCo21(DE3), or W3110 as the host, methods described in known literature (e.g., Molecular Cloning, Cold Spring Harbor Laboratory, 256, 1992) can be used.

[0051] Next, the method for producing the fucose-binding protein in the present invention will be described. The fucose-binding protein in the present invention can be produced by a process comprising two steps: a step of producing the fucose-binding protein by culturing the transformant (hereinafter referred to as the first step), and a step of recovering the fucose-binding protein from the obtained culture (hereinafter referred to as the second step). In this specification, the culture includes not only the cells of the cultured transformant itself and cell secretions, but also the culture medium used for cultivation. In the first step, the transformant should be cultured in a medium suitable for its cultivation. For example, when Escherichia coli is used as the host, it is preferable to use Terrific Broth (TB) medium, Luria-Bertani (LB) medium, etc., supplemented with the necessary nutrients. If the expression vector contains a drug resistance gene, selective proliferation of the transformant can be achieved by adding a drug corresponding to that gene to the culture medium and carrying out the first step. For example, if the expression vector contains a kanamycin resistance gene, it is preferable to add kanamycin to the culture medium. The culture temperature can be any temperature generally known for the host organism being used. For example, if the host is E. coli, the temperature should be between 10°C and 40°C, preferably between 20°C and 37°C, and should be determined appropriately while taking into consideration the amount of fucose-binding protein to be produced.

[0052] Furthermore, the pH of the culture medium should be within the generally known pH range for the host being used. For example, if the host is E. coli, the pH should be in the range of 6.8 to 7.4, preferably around 7.0, and should be determined appropriately while considering the amount of fucose-binding protein to be produced. If an inducible promoter is introduced into the expression vector, the expression should be induced by adding an inducer to the culture medium under conditions that allow for good production of fucose-binding protein. A preferred inducer is isopropyl-β-D-thiogalactopyranoside (IPTG) when using the tac promoter or lac promoter, and its addition concentration should be in the range of 0.005 mM to 1.0 mM, preferably 0.01 mM to 0.5 mM. Expression induction by adding IPTG should be carried out under conditions generally known for the host being used.

[0053] In the second step, fucose-binding proteins are recovered from the culture obtained in the first step using a generally known recovery method. For example, if the fucose-binding proteins are secreted into the culture medium, the cells can be separated by centrifugation, and the fucose-binding proteins can be recovered from the resulting culture supernatant. If the proteins are expressed intracellularly (including the periplasm in prokaryotes), the cells can be collected by centrifugation, then the cells can be lysed by adding an enzyme treatment agent or surfactant, and the fucose-binding proteins can be recovered from the cell lysate. Furthermore, if it is desired to improve the purity of the fucose-binding proteins, methods known in the relevant art can be used, one example being separation and purification using liquid chromatography.

[0054] For liquid chromatography, ion exchange chromatography, hydrophobic interaction chromatography, gel filtration chromatography, affinity chromatography, etc., are preferred, and a combination of these chromatography methods is even more preferable. Furthermore, the purity and molecular weight of the fucose-binding protein purified by the above chromatography can be determined using methods known in the art, such as SDS-polyacrylamide gel electrophoresis (SDS-PAGE) and gel filtration chromatography.

[0055] The binding affinity of the fucose-binding protein to the glycan in this invention can be evaluated by methods such as enzyme-linked immunosorbent assay or surface plasmon resonance assay. As an example, surface plasmon resonance assay will be described.

[0056] Surface plasmon resonance (SPL) compositing can be used, for example, with the Biacore T200 instrument (GE Healthcare), where the analyte is a fucose-binding protein and the solid phase is a glycan (a glycan containing a structure consisting of Fucα1-2Galβ1-3GlcNAc and / or Fucα1-2Galβ1-3GalNAc). Sensor chips with immobilized glycans can be prepared using biotin-labeled glycans, either by using a streptavidin-coated sensor chip (Sensor Chip SA, GE Healthcare) or a dextran-coated sensor chip (Sensor Chip CM5, GE Healthcare) with streptavidin immobilized beforehand. Furthermore, compositing affinity can be evaluated using the kinetics analysis program included with the instrument.

[0057] Next, the adsorbent in the cell separation method of the present invention will be described. There are no particular restrictions on the raw materials of the water-insoluble carrier used as the adsorbent in the cell separation method of the present invention. Examples include inorganic carriers such as silica gel and glass coated with a gold thin film, water-insoluble polysaccharide carriers made from polysaccharides such as agarose, cellulose, chitin, and chitosan, and crosslinked polysaccharide carriers obtained by crosslinking them with a crosslinking agent, crosslinked polysaccharide carriers obtained by crosslinking water-soluble polysaccharides such as dextran, pullulan, starch, alginate, and carrageenan with a crosslinking agent, synthetic polymer carriers such as poly(meth)acrylate, polyvinyl alcohol, polyurethane, and polystyrene, and crosslinked synthetic polymer carriers obtained by crosslinking them with a crosslinking agent. Among these carriers, uncharged polysaccharide carriers such as agarose, cellulose, dextran, and pullulan, and crosslinked polysaccharide carriers obtained by crosslinking them with a crosslinking agent, as well as hydrophilic synthetic polymer carriers such as poly(meth)acrylate and polyurethane, and crosslinked hydrophilic synthetic polymer carriers obtained by crosslinking them with a crosslinking agent, are preferred because they have hydroxyl groups and can be easily modified with hydrophilic polymers as described later. Furthermore, for water-insoluble carriers used as adsorbents, it is preferable that the surface of the water-insoluble carrier is modified with a hydrophilic polymer, and it is even more preferable that the hydrophilic polymer is covalently fixed to the water-insoluble carrier, in order to suppress nonspecific adsorption of cells.

[0058] Examples of hydrophilic polymers used to modify the surface of water-insoluble carriers include neutral polysaccharides such as agarose, cellulose, dextran, pullulan, and starch, as well as synthetic polymers having hydroxyl groups such as poly(2-hydroxyethyl (meth)acrylate) and polyvinyl alcohol. Among these hydrophilic polymers, neutral polysaccharides such as dextran, pullulan, and starch are preferred, with dextran and pullulan being more preferred, due to their high hydrophilicity and ease of covalent fixation to the surface of the insoluble carrier.

[0059] There are no particular restrictions on the molecular weight of dextran and pullulan, but those with a number average molecular weight of 10,000 to 1,000,000 are preferred in that they allow for sufficient hydrophilic modification of the insoluble carrier surface. There are no particular restrictions on the shape of the water-insoluble carrier used as the adsorbent; it may be particulate, spongy, flat film, plate-shaped, hollow, or fibrous. However, a particulate carrier is preferred in that it allows for efficient cell adsorption to the adsorbent, and a perfectly spherical particulate carrier is more preferred.

[0060] The average particle size (median diameter) of the water-insoluble carrier used as an adsorbent in the cell separation method of the present invention, when swollen in water, is preferably 100 μm to 1000 μm, more preferably 100 μm to 500 μm, and even more preferably 150 μm to 300 μm, such that when the adsorbent produced from the carrier is packed into a column, the cells to be separated make sufficient contact with the adsorbent surface, and cells that do not bind to the adsorbent can pass through the gaps between the adsorbents without obstruction. If the particle size is less than 100 μm, cells that do not bind to the adsorbent have difficulty passing through the gaps between the adsorbents, and the cell recovery rate decreases. If the particle size is greater than 1000 μm, the contact between cells that bind to the adsorbent and the adsorbent surface becomes insufficient, and the separation efficiency between cells that bind to the adsorbent and cells that do not bind decreases. The particle size of the insoluble carrier can be measured using, for example, a precision particle size distribution analyzer (product name "Multisizer 3") manufactured by Beckman Coulter, Inc.

[0061] Alternatively, the particle size can be determined by taking an image of a graduated slide glass using an optical microscope, then taking images of multiple particles to be measured at the same magnification, measuring the particle size of the multiple carriers photographed using a ruler, and calculating the average value. There are no particular restrictions on the presence or absence of pores in the water-insoluble carrier used as the adsorbent; it may be either porous or non-porous. Furthermore, the water-insoluble carrier used in the adsorbent of the present invention is preferably a particulate carrier having hydroxyl groups, as this allows for easy introduction of active functional groups to immobilize the fucose-binding protein used in the adsorbent of the present invention onto the carrier. In addition, commercially available products may be used as the water-insoluble carrier used in the adsorbent of the present invention; for example, Toyopearl (manufactured by Tosoh), which is made from poly(meth)acrylate, Sepharose (manufactured by GE Healthcare), which is made from agarose, and Cellfia (manufactured by Asahi Kasei), which is made from cellulose, can be used.

[0062] The adsorbent in the cell separation method of the present invention can be manufactured by a process comprising two steps: a step of manufacturing a reactive water-insoluble carrier from a water-insoluble carrier (hereinafter referred to as step X), and a step of immobilizing the reactive water-insoluble carrier by reacting it with a fucose-binding protein (hereinafter referred to as step Y). The details of steps X and Y are described below.

[0063] Step X is a step to produce a reactive water-insoluble carrier by introducing a reactive functional group for immobilizing a fucose-binding protein onto a water-insoluble carrier. The reactive functional group for immobilizing the fucose-binding protein of the present invention onto the water-insoluble carrier is not particularly limited as long as it is a general functional group for protein immobilization, and examples include epoxy groups, formyl groups, carboxyl groups, active ester groups, amino groups, maleimide groups, haloacetyl groups, etc. The method for introducing the functional group onto the water-insoluble carrier is not particularly limited as long as it is a general method for introducing a functional group, and for example, it may be carried out according to the method described in Patent Document 3.

[0064] Step Y is a step in which the fucose-binding protein of the present invention is immobilized on the reactive water-insoluble carrier produced in Step X. The method for immobilizing the fucose-binding protein on the reactive water-insoluble carrier obtained in Step X is not particularly limited as long as it is a general method for immobilizing proteins, and can be carried out, for example, according to the method described in Patent Document 3.

[0065] The amount of fucose-binding protein immobilized on the water-insoluble carrier can be appropriately determined considering the binding affinity between the cells to be separated and the fucose-binding protein in the cell separation method of the present invention. Preferably, the amount is 0.01 mg to 50 mg per 1 mL of water-insoluble carrier, and more preferably 0.05 mg to 30 mg.

[0066] Furthermore, the amount of fucose-binding protein immobilized on the water-insoluble carrier can be adjusted by controlling the amount of protein used during the immobilization reaction and the amount of active functional groups introduced into the water-insoluble carrier. The amount of fucose-binding protein immobilized on the water-insoluble carrier can be calculated by recovering the immobilization reaction solution and the washing solution after the reaction to determine the amount of unreacted fucose-binding protein, and then subtracting the amount of unreacted fucose-binding protein of the present invention from the amount of fucose-binding protein used in the immobilization reaction.

[0067] Furthermore, as mentioned above, in order to suppress nonspecific adsorption of cells, it is preferable that the hydrophilic polymer is covalently immobilized on the water-insoluble carrier used as the adsorbent in the present invention. Therefore, when manufacturing the adsorbent, the hydrophilic polymer can be covalently immobilized on the water-insoluble carrier before introducing the functional groups for immobilizing the fucose-binding protein of the present invention in step X. The method for covalently immobilizing the hydrophilic polymer on the water-insoluble carrier is not particularly limited as long as it is a general covalent bond formation reaction. For example, one method involves introducing epoxy groups to the water-insoluble carrier by reacting the hydroxyl groups on the surface of the water-insoluble carrier with an epoxy group-containing compound such as epichlorohydrin, ethylene glycol diglycidyl ether, or 1,4-butanediol diglycidyl ether under basic conditions, and then reacting the epoxy groups with the hydroxyl groups of the hydrophilic polymer under basic conditions. [Effects of the Invention]

[0068] The present invention provides a cell separation method that uses multiple adsorbents with different amounts of fucose-binding protein immobilized and sequentially contacts cell populations with different degrees of undifferentiation. This method is effective for separating and purifying cells having glycans containing structures consisting of Fucα1-2Galβ1-3GlcNA and / or Fucα1-2Galβ1-3GalNAc, based on differences in glycan expression levels. Since the present invention allows for the separation and recovery of cells based on differences in the expression levels of the undifferentiation marker glycan, it is useful for separating cells according to the expression level of undifferentiation markers, particularly in cells with a low degree of undifferentiation, which was difficult with conventional methods. Therefore, it can efficiently remove and separate cells with a particularly low degree of undifferentiation, i.e., undifferentiated cells, from undifferentiated cells such as human iPS cells, making it an extremely effective means for preparing high-quality, highly undifferentiated cells for regenerative medicine and for functional analysis of undifferentiated cells.

[0069] Furthermore, compared to conventional cell separation methods using magnetic beads, cell sorting using cell sorters, and cell separation methods using cell rolling columns, the cell separation method of the present invention can process large quantities of cells easily and is an extremely effective means for the large-scale purification of cell populations with different degrees of undifferentiation. [Brief explanation of the drawing]

[0070] [Figure 1] This graph shows the 2102Ep cell recovery rate for each cell fraction in Example 1, Comparative Example 1, and Reference Example 1. [Figure 2] This graph shows the BC2LCN positivity rate of 2102Ep cells in each cell fraction in Example 1, Comparative Example 1, and Reference Example 1. [Examples]

[0071] The present invention will be described in more detail below with reference to examples of preparation, examples, comparative examples, and reference examples, but the present invention is not limited to these.

[0072] Preparation Example 1: Preparation of adsorbents 156GGC-A, B, C, and D Following the methods described in Examples 1 to 3 of Japanese Patent Application Publication No. 2019-000063, four types of adsorbents (adsorbents 156GGC-A, B, C, and D) with different amounts of immobilized fucose-binding protein 156GGC (hereinafter referred to as BC2LCN) were prepared by changing the reaction amount of immobilized BC2LCN during adsorbent preparation. The amounts of BC2LCN immobilized in each adsorbent were 146 mg / L for adsorbent 156GGC-A, 307 mg / L for adsorbent 156GGC-B, 412 mg / L for adsorbent 156GGC-C, and 682 mg / L for adsorbent 156GGC-D (Table 1).

[0073] [Table 1]

[0074] Example 1: Separation of cell populations with different degrees of undifferentiation from 2012Ep cells using a column stacked with adsorbents 156GGC-A, B, C, and D. Example 1 describes a method for separating cell populations with different degrees of undifferentiation from 2102Ep cells (Embryonal Carcinoma Cells Cl.4 / D3 cells (obtained from Cosmo Bio)), which are human embryonic cancer cells having a sugar chain containing a structure consisting of "Fucα1-2Galβ1-3GlcNAc and / or Fucα1-2Galβ1-3GalNAc", using a column stacked with adsorbents having different amounts of immobilized fucose-binding protein. (1) Preparation of a column packed with adsorbent A column was prepared by attaching a 40 μM hydrophilic nylon mesh filter (Corning) between a 2.5 mL syringe (Terumo) and a 22 G injection needle. Next, the adsorbent 156GGC-D prepared in Preparation Example 1 was replaced with MACS buffer (Milteny Biotech), and a 50% suspension of the adsorbent was prepared by adjusting the adsorbent's sedimentation volume to 50% after standing for 12 hours or more. 1.0 mL of this suspension was added to the prepared column, and the column was packed with adsorbent 156GGC-D (adsorbent volume: 0.5 mL). Next, using the same procedure, adsorbent 156GGC-C prepared in Preparation Example 1 was packed on top of adsorbent 156GGC-D with an adsorbent volume of 0.5 mL. Next, using the same procedure, adsorbent 156GGC-B prepared in Preparation Example 1 was packed on top of adsorbent 156GGC-C with an adsorbent volume of 0.5 mL. Next, using the same procedure, adsorbent 156GGC-A, prepared in Example 1, was packed on top of adsorbent 156GGC-B with an adsorbent volume of 0.5 mL. In this way, a column was prepared in which adsorbents 156GGC-A, 156GGC-B, 156GGC-C, and 156GGC-D were stacked in this order from top to bottom, each with a packing volume of 0.5 mL. This prepared column will be referred to as column X below. (2) Culture of 2102Ep cells and preparation of cell suspension 2102Ep cells were seeded in D-MEM medium (High Glucose, Fujifilm Wako Pure Chemical Industries) supplemented with 10% FBS (Biological Industries) and an antibiotic solution (penicillin-streptomycin solution, Fujifilm Wako Pure Chemical Industries) in 6 cm diameter adherent culture dishes (Corning) or 10 cm diameter adherent culture dishes (Corning), and cultured at 37°C under a 5% CO2 atmosphere. Next, 2102Ep cells were fluorescently stained using Cell Tracker Orange (Thermo Fisher Scientific) as follows. After discarding the culture medium in the petri dish containing the 2102Ep cells, the cells were washed with serum-free RPMI 1640 medium (Fujifilm Wako Pure Chemical Industries), and then this medium was discarded. Next, a solution of Cell Tracker Orange dissolved in serum-free RPMI 1640 medium to a final concentration of 10 μM was added, and the culture was incubated at 37°C for 1 hour under a 5% CO2 atmosphere. After discarding the fluorescent reagent solution, the D-MEM medium containing the 10% FBS and antibiotic solution was added, and the culture was incubated at 37°C for 1 hour under a 5% CO2 atmosphere. Next, the D-MEM medium containing the 10% FBS and antibiotic solution was discarded, and a fresh D-MEM medium containing the 10% FBS and antibiotic solution was added again, and the culture was incubated overnight at 37°C under a 5% CO2 atmosphere.

[0075] Next, cell collection and cell suspension preparation were carried out using the following method. The D-MEM medium containing 10% FBS and antibiotic solution in the petri dish during cell culture was discarded, and D-PBS(-) (manufactured by Cell Science Institute) was added. After washing the cells, the D-PBS(-) was discarded. Next, Accutase (manufactured by Innovative Cell Technologies) was added, and the 2102Ep cells were detached by letting it stand for several minutes and collected in a 50 mL tube. After centrifuging the cells to settle them, the cells were suspended in the aforementioned MACS buffer, and the cells were washed by centrifugation again and discarding the supernatant. After repeating the cell washing procedure twice, the cells were suspended in MACS buffer and filtered using a cell strainer (Corning, 40 μm mesh) to prepare a cell suspension of 2102Ep cells stained with Cell Tracker Orange. A portion of the obtained 2102Ep cell solution was taken, diluted 10-fold, and the cell density was calculated using a hemocytometer. Based on this cell density, the number of cells added to the column was calculated from the value of the volume of cell solution applied to the column multiplied by the cell density. (3) Isolation of populations with different BC2LCN positivity rates from 2012Ep cells using a column packed with adsorbent. With the column X prepared in (1) above positioned vertically, the 2012Ep cell suspension prepared in (2) above is added, with a cell count of 7.8 × 10 per column. 6A 0.1 mL mixed cell solution was added to the top of the column to form a single cell solution. Next, 1.0 mL of MACS buffer was gently added from the top of the column, and a total of 1.1 mL of effluent from the needle was collected in a separate container (hereinafter referred to as cell solution Fr.1). Next, 1.0 mL of MACS buffer was gently added from the top of the column, and a total of 1.0 mL of effluent from the needle was collected in a separate container (hereinafter referred to as cell solution Fr.2). Next, 1.0 mL of MACS buffer was gently added from the top of the column, and a total of 1.0 mL of effluent from the needle was collected in a separate container (hereinafter referred to as cell solution Fr.3). Next, 1.0 mL of MACS buffer was gently added from the top of the column, and a total of 1.0 mL of effluent from the needle was collected in a separate container (hereinafter referred to as cell solution Fr.4). Next, 1.0 mL of MACS buffer containing 0.2 M fucose and 10 mM EDTA (hereinafter referred to as cell detachment solution) was gently added from the top of the column, and a total of 1.0 mL of effluent from the needle was collected in a separate container (hereinafter referred to as cell solution Fr. 5). Next, 1.0 mL of cell detachment solution was gently added from the top of the column, and a total of 1.0 mL of effluent from the needle was collected in a separate container (hereinafter referred to as cell solution Fr. 6). Next, 1.0 mL of cell detachment solution was gently added from the top of the column, and a total of 1.0 mL of effluent from the needle was collected in a separate container (hereinafter referred to as cell solution Fr. 7). Next, 1.0 mL of cell detachment solution was gently added from the top of the column, and a total of 1.0 mL of effluent from the needle was collected in a separate container (hereinafter referred to as cell solution Fr. 8). (4) Measurement of cell recovery rate and BC2LCN positivity rate of 2012Ep cells in each cell saturation Fr. For cell saturations Fr.1-8 obtained by the above procedure, 0.5 mL of the cell saturation was diluted with 2 mL of MACS buffer, then dispensed into 5 mL polystyrene round tubes (Corning) with cell strainers and caps. 50 μL of CountBright Absolute Counting Beads (Invitrogen) were added as internal standard beads for cell counting, and 50 μL of 7-AAD was added as a cell viability test reagent. The cell count was then measured using a cell sorter BD FACSAria (Becton Dickinson). The number of cells in each cell Fr. was calculated proportionally based on the number of internal standard beads obtained from the dot plot. The cell recovery rate for each cell Fr. was calculated by comparing the number of cells in each cell Fr. with the number of added cells (7.8 × 10⁻¹⁰) as described in (3) above. 6 It was calculated by dividing by (number of items).

[0076] Furthermore, for cell saturation Fr.1 to Fr.8, the BC2LCN positivity rate of cells contained in each cell saturation Fr. was measured as follows: 0.5 mL of the cell saturation from each Fr. was transferred to a 1.5 mL Eppendorf tube, centrifuged, and the supernatant was discarded. The cells were then washed by resuspending them in 1.0 mL of MACS buffer. After centrifugation, the supernatant was discarded, and the resulting cell pellet was suspended in 1 mL of MACS buffer containing 0.5% (vol. / vol.) BC2LCN-FITC (manufactured by Fujifilm Wako Pure Chemical Industries, Ltd.). The cells were allowed to stand in the dark at room temperature for 30 minutes. After 30 minutes, the cell washing procedure with MACS buffer described above was performed in the Eppendorf tube, and the resulting cell pellet was suspended in 2 mL of MACS buffer. After transferring the cell suspension to a 5 mL polystyrene round tube (Corning), 50 μL of CountBright Absolute Counting Beads (Invitrogen) were added as internal standard beads for cell counting, and 50 μL of 7-AAD was added as a cell viability test reagent. The fluorescence intensity of the cell population was then analyzed using a cell sorter BD FACSAria (Becton Dickinson). The BC2LCN positivity rate of the cells was calculated as follows: BC2LCN positivity rate = (number of positive viable cells in each cell saturation frame) ÷ (total number of viable cells in each cell saturation frame). In other words, the BC2LCN positivity rate represents the proportion of cells with a glycan structure that exhibits BC2LCN reactivity, which is one of the undifferentiated markers.

[0077] FACS analysis revealed that the recovery rates of 2102p cells in each cell saturation frame were Fr.1=1.2%, Fr.2=2.4%, Fr.3=4.3%, Fr.4=5.8%, Fr.5=33.3%, Fr.6=20.5%, Fr.7=5.6%, and Fr.8=7.1%. Furthermore, the BC2LCN positivity rates of 2102Ep cells in each cell frame were Fr.1=31.9%, Fr.2=38.9%, Fr.3=58.6%, Fr.4=60.0%, Fr.5=82.3%, Fr.6=81.0%, Fr.7=80.1%, and Fr.8=76.7%. Table 2 and Figure 1 show the recovery rate of 2102p cells in each cell saturation frame of Example 1, while Table 3 and Figure 2 show the BC2LCN positivity rate of cells contained in each cell saturation frame.

[0078] Based on these results, four adsorbents with different amounts of fucose-binding protein immobilized were arranged from the top of the column as follows: adsorbent 156GGC-A (146 mg BC2LCN immobilized / mL-adsorbent), adsorbent 156GGC-B (307 mg BC2LCN immobilized / mL-adsorbent), adsorbent 156GGC-C (412 mg BC2LCN immobilized / mL-adsorbent), and adsorbent 156GGC-D (682 mg BC2LCN In a column (Column X) packed in the order of fixation / mL-adsorbent, the degree of undifferentiation (BC2LCN positivity rate) of efflux cell Fr. obtained by passing MACS buffer through it was Fr.1=31.9%, Fr.2=38.9%, Fr.3=58.6%, and Fr.4=60.0%. This revealed that 2102Ep cell populations with different degrees of undifferentiation can be separated into cell Fr.s, from the lower degree of undifferentiation to the higher degree of undifferentiation.

[0079] This result can be interpreted as follows: because the amount of fucose-binding protein immobilized in the adsorbent packed from the top to the bottom of the column has a concentration gradient from low to high, the cell population with a high degree of undifferentiation selectively binds to the packing material at the top of the column, and the cell population with a low degree of undifferentiation binds to the packing material at the bottom of the column, resulting in a distribution of cells based on their degree of undifferentiation. In the cell Fr. efflux from the column using MACS buffer, the cells with a low degree of undifferentiation are effluxed first, and with each cell Fr. efflux, cells with a higher degree of undifferentiation are gradually effluxed. Therefore, it was confirmed that by stacking adsorbents with different amounts of fucose-binding protein immobilized in the column and gradually exposing cell populations with different degrees of undifferentiation to the adsorbent with a high amount of fucose-binding protein immobilized in stages, cells with different degrees of undifferentiation can be separated as cell Fr.

[0080] Comparative Example 1: Separation of cell populations with different degrees of undifferentiation from 2012Ep cells using a column packed with adsorbent 156GGC-B. After replacing the adsorbent 156GGC-B (307 mg / L - adsorbent) with MACS buffer (Milteny Biotech), a 50% suspension of the adsorbent was prepared by adjusting the amount of adsorbent sedimentation after standing for 12 hours or more so that the sedimentation volume of the adsorbent was 50%. 4.0 mL of this suspension was added to the prepared column, and the column was packed with adsorbent 156GGC-B (adsorbent volume: 2.0 mL). Hereafter, this prepared column will be referred to as column Y. Except for the packing of the column with the adsorbent, the preparation of 2102Ep cells, the passage of the column, and FACS analysis of the obtained cell Fr. were performed in the same manner as in Example 1.

[0081] FACS analysis revealed that the recovery rates of 2102p cells in each cell frame were Fr.1=13.4%, Fr.2=14.3%, Fr.3=3.2%, Fr.4=3.3%, Fr.5=10.3%, Fr.6=8.1%, Fr.7=2.3%, and Fr.8=1.2%. Furthermore, the BC2LCN positivity rates of 2102Ep cells in each cell frame were Fr.1=71.2%, Fr.2=74.5%, Fr.3=80.8%, Fr.4=85.6%, Fr.5=88.5%, Fr.6=83.5%, Fr.7=80.2%, and Fr.8=87.3%. Table 2 and Figure 1 show the recovery rate of 2102p cells in each cell saturation Fr. of Comparative Example 1, while Table 3 and Figure 2 show the BC2LCN positivity rate of cells contained in each cell saturation Fr.

[0082] From these results, in a column (Column Y) packed with only one adsorbent, 156GGC-B (307 mg / L-adsorbent) immobilizing a single amount of fucose-binding protein, the degree of undifferentiation (BC2LCN positivity rate) of eluted cell Fr. obtained by passing MACS buffer through the column was Fr.1=71.2%, Fr.2=74.5%, Fr.3=80.8%, and Fr.4=85.6%. Although the rate gradually increased, the difference in BC2LCN positivity rate between Fr.s was smaller than in Example 1, and it was not possible to individually separate cell populations with a low degree of undifferentiation, such as those with a BC2LCN positivity rate of around 30% to 60%, as in Example 1. Therefore, it was confirmed that when a column is packed with an adsorbent immobilizing a single amount of fucose-binding protein and cell populations with different degrees of undifferentiation are brought into contact, cells with significantly different degrees of undifferentiation cannot be separated as cell Fr.s.

[0083] Reference Example 1: Separation of cell populations with different degrees of undifferentiation from 2012Ep cells using a column packed with Toyopal HW-40EC. Toyopal HW-40EC (manufactured by Tosoh), which does not have BC2LCN immobilized, was replaced with MACS buffer (manufactured by Milteny Biotech). A 50% suspension of the adsorbent was prepared by adjusting the adsorbent's sedimentation volume to 50% after standing for 12 hours or more. 4.0 mL of this suspension was added to the prepared column, and the column was packed with Toyopal HW-40EC adsorbent (adsorbent volume: 2.0 mL). This prepared column will be referred to as column Z below. Except for the packing of the column with the adsorbent, the preparation of 2102Ep cells, the passage of the column, and FACS analysis of the obtained cell Fr. were performed in the same manner as in Example 1.

[0084] FACS analysis revealed that the recovery rates of 2102p cells in each cell fluid Fr. were Fr.1=22.5%, Fr.2=33.0%, Fr.3=3.6%, Fr.4=0.8%, Fr.5=1.7%, Fr.6=2.9%, Fr.7=0.9%, and Fr.8=1.9%. Furthermore, the BC2LCN positivity rates of 2102Ep cells in each cell fluid Fr. were Fr.1=79.5%, Fr.2=74.0%, Fr.3=84.0%, and Fr.4=82.7% (Fr.5-8 were not measured). Table 2 and Figure 1 show the recovery rates of 2102p cells in each cell fluid Fr. of Reference Example 1, while Table 3 and Figure 2 show the BC2LCN positivity rates of cells contained in each cell fluid Fr.

[0085] These results indicate that in a column (Column Z) packed with the adsorbent Toyopal HW-40EC, which does not have fucose-binding proteins immobilized, the degree of undifferentiation (BC2LCN positivity rate) of eluted cell Fr. obtained by passing MACS buffer through the column was Fr.1=79.5%, Fr.2=74.0%, Fr.3=84.0%, and Fr.4=82.7%. As a result, 2102Ep cells did not adsorb to the adsorbent and passed through, making it impossible to individually separate cell populations with different degrees of undifferentiation. Therefore, it was confirmed that when an adsorbent without fucose-binding proteins is packed into a column and cell populations with different degrees of undifferentiation are brought into contact, cells with different degrees of undifferentiation cannot be separated as cell Fr.

[0086] [Table 2]

[0087] Table 3

Claims

1. A method comprising the steps of: binding a population of undifferentiated cells of different degrees, in which a sugar chain containing a structure consisting of Fucα1-2Galβ1-3GlcNAc and / or Fucα1-2Galβ1-3GalNAc is expressed on the surface of the cells, to multiple adsorbents with different amounts of immobilized fucose-binding protein, in a stepwise manner from an adsorbent with a low amount of immobilized fucose-binding protein to an adsorbent with a high amount of immobilized fucose-binding protein; and obtaining cells that did not bind to the adsorbents. The fucose-binding protein mentioned above is (e) below: A method for separating cells with different degrees of undifferentiation. (e) A fucose-binding protein comprising the amino acid sequence shown in Sequence ID No. 6, wherein the amino acid sequence from the first proline residue to the 155th amino acid residue of the amino acid sequence shown in Sequence ID No. 1 is further modified by adding an oligopeptide containing a polyhistidine sequence to the N-terminus and an oligopeptide containing cysteine ​​to the C-terminus.

2. The method for separating cells of different degrees of undifferentiation according to claim 1, characterized in that the amount of fucose-binding protein immobilized ranges from 50 mg / L-adsorbent to 1000 mg / L-adsorbent, and a plurality of adsorbents are used, each having an immobilization amount of fucose-binding protein that differs by 100 mg / L-adsorbent or more.

3. A method for separating cells with different expression levels of glycans containing a structure consisting of Fucα1-2Galβ1-3GlcNAc and / or Fucα1-2Galβ1-3GalNAc, using the method according to either claim 1 or 2.

4. The method according to any one of claims 1 to 3, characterized in that a column is packed with a plurality of adsorbents having different amounts of the fucose-binding protein immobilized on it.

Citation Information

Patent Citations

  • Undifferentiated cell adsorbent and cell separation method

    JP2018134073A

  • Method for exfoliating and recovering undifferentiated cells

    JP2019000063A

  • Device for culturing neurons, method for culturing neurons, method for digitizing morphological degeneration of axon bundle by orientation analysis, method for analyzing and identifying proteins in nerve tissue and axons bundle as well as method for use of neurons

    JP2019000093A

  • Fucose binding protein, production method thereof and use thereof

    JP2020025535A

  • Undifferentiated cell detection method and complex carbohydrate detection method

    WO2013065302A1