Cytidine diphosphate choline glycoside, composition, method for producing glycosides of cytidine residue-containing compounds, genetically modified microorganism, method for producing cytidine residue-containing compounds, and method for suppressing the production of glycosides of cytidine residue-containing compounds.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2025-08-29
- Publication Date
- 2026-04-07
AI Technical Summary
The production of cytidine diphosphate choline (CDP-choline) and its conversion to other compounds is not well understood, particularly in organisms that do not naturally produce it, and the relationship between opgH and CDP-choline is unknown, limiting the availability and metabolic pathways of CDP-choline derivatives.
Discovery of a novel activity in proteins and microorganisms to transfer glucose from UDP-glucose to CDP-choline, enabling the conversion to CDP-choline glycosides and suppression of glycoside formation through genetic modification of microorganisms to reduce or eliminate this activity.
This approach allows for the production of novel CDP-choline glycosides with neuroprotective effects, improved solubility, and reduced toxicity, and provides methods to control the formation of glycosides, enhancing their stability and absorption characteristics.
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Abstract
Description
[Technical Field]
[0001] This disclosure relates to cytidine diphosphate choline glycosides, compositions, methods for producing glycosides of cytidine residue-containing compounds, genetically modified microorganisms, methods for producing cytidine residue-containing compounds, and methods for suppressing the production of glycosides of cytidine residue-containing compounds. [Background technology]
[0002] Compounds containing cytidine residues refer to compounds that have a cytidine residue in their structure. Specifically, these include cytidine, cytidylic acid, cytidine-diphosphate (hereinafter also referred to as CDP), and cytidine-diphosphate choline (hereinafter also referred to as CDP-choline). Among these, CDP-choline is a biosynthetic precursor of phosphatidylcholine, a component of phospholipids in higher organisms, and is known to have neuroprotective effects (Non-Patent Literature 1). CDP-choline is difficult to obtain in large quantities through extraction from nature or chemical synthesis, and is mainly synthesized using cytidine monophosphate (hereinafter also referred to as CMP) or orotic acid as starting materials through enzymatic reactions in living organisms (Patent Literature 1, 2, Non-Patent Literature 2, 3). Furthermore, the methods for producing cytidylic acid and / or cytidine are known from Japanese Patent Publication No. 36-19749, Japanese Patent Publication No. 57-018872, and Japanese Patent Publication No. 36-21499 (Patent Documents 3, 4, and 5).
[0003] Furthermore, osmoregulated periplasmic glucans biosynthesis protein H (hereinafter also referred to as opgH) is known to work in cooperation with OpgG (Glucans biosynthesis protein G) in response to osmotic pressure and contribute to glucan synthesis in the periplasm. In addition, opgH is known to be functionally similar to UgtP (Processive diacylglycerol beta-glucosyltransferase) in Bacillus subtilis, functioning as a Moon Lighting Protein and being involved in the regulation of cell size (Non-Patent Literature 4). [Prior art documents] [Patent Documents]
[0004] [Patent Document 1] International Publication No. 2003 / 095660 [Patent Document 2] International Publication No. 2007 / 023830 [Patent Document 3] Special Public Notice No. 36-19749 of the Japanese Government [Patent Document 4] Special Public Notice No. 57-018872 of the Japanese government [Patent Document 5] Special Public Notice No. 36-21499 of the Japanese Government [Non-patent literature]
[0005] [Non-Patent Document 1] Nutrients (2020) Vol.12 p.793 [Non-Patent Document 2] Bull. Inst. Chem. Res. Kyoto U. (1976) Vol. 53 p.546-562 [Non-Patent Document 3] Appl. Microbiol. Biotechnol. (2017) Vol.101 p.1409-1417 [Non-Patent Document 4] PLoS Genet.(2013) Vol 9: e1003663. [Overview of the Initiative] [Problems that the invention aims to solve]
[0006] Further metabolic conversion of CDP-choline to other compounds in microorganisms is largely unknown, even in organisms that naturally produce CDP-choline, and there have been no reports of such conversions in organisms that do not naturally produce CDP-choline, such as E. coli. Furthermore, the relationship between opgH and CDP-choline, and the fact that it can transfer glucose using CDP-choline as a substrate, were previously unknown.
[0007] The present invention aims to provide compounds converted from cytidine residue-containing compounds such as CDP-choline and methods for producing the same, and to provide means for suppressing the conversion of cytidine residue-containing compounds such as CDP-choline into other compounds. [Means for solving the problem]
[0008] The inventors have surprisingly discovered a novel activity possessed by proteins or microorganisms: the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds, more specifically, the activity to transfer glucose from UDP-glucose to CDP-choline. They have found that this activity allows for the conversion of cytidine residue-containing compounds into novel glycosides of cytidine residue-containing compounds, more specifically, CDP-choline into CDP-choline glycosides, thus completing the present invention. Furthermore, they have found that suppressing the activity of proteins or microorganisms to transfer sugar from sugar nucleotides to cytidine residue-containing compounds suppresses the formation of cytidine residue-containing compound glycosides during the production of cytidine residue-containing compounds.
[0009] This disclosure includes the following: <1> A cytidine diphosphate choline glycoside represented by the following general formula (1), its salt, its N-oxide, or its solvate.
[0010] [Chemical formula]
[0011] (In formula (1), R is a sugar residue.)
[0012] <2> The cytidine diphosphate choline glycoside according to <1> above, its salt, its N-oxide form or its solvate, which is a cytidine diphosphate choline glucose glycoside represented by the following general formula (2).
[0013] [Chemical formula]
[0014] <3> A composition containing at least one of the cytidine diphosphate choline glycoside, its salt, its N-oxide form and its solvate according to <1> or <2> above. <4> A method for producing a glycoside of a cytidine residue-containing compound by using a protein having an activity of transferring a sugar from a sugar nucleotide to the cytidine residue-containing compound. <5> The method for producing a glycoside of a cytidine residue-containing compound according to <4> above, wherein the glycoside of the cytidine residue-containing compound is the cytidine diphosphate choline glycoside according to <1> or <2> above. <6> The method for producing a glycoside of a cytidine residue-containing compound according to <4> above, wherein the protein having an activity of transferring a sugar from a sugar nucleotide to the cytidine residue-containing compound is an enzyme classified into at least one of GT2 enzyme and GT28 enzyme in the CAZy classification. <7> The method for producing a glycoside of a cytidine residue-containing compound according to <4> above, wherein the protein having an activity of transferring a sugar from a sugar nucleotide to the cytidine residue-containing compound is at least one selected from the following [1] to [3]. [1] A protein containing the amino acid sequence represented by SEQ ID NO: 8 or 10. [2] A mutant protein having an amino acid sequence in which 1 to 20 amino acids are deleted, substituted, inserted, or added in the amino acid sequence represented by Sequence ID No. 8 or 10, and which has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds. [3] A homologous protein having an amino acid sequence that is 60% or more identical to the amino acid sequence represented by SEQ ID NO: 8 or 10, and which has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds. <8> The following genetically modified microorganisms: (A) or (B). (A) A genetically modified microorganism having reduced or absent activity of a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds compared to the parent strain, and having the ability to produce cytidine residue-containing compounds. (B) A genetically modified microorganism in which the activity of a protein having the activity to transfer sugar from sugar nucleotides to a cytidine residue compound is reduced or absent compared to the activity of the parent strain. <9> The cytidine residue-containing compound is cytidine diphosphate choline, as described above. <8> Genetically modified microorganisms as described above. <10> The protein having the activity to transfer sugar from sugar nucleotides to the cytidine residue-containing compound is at least one selected from the following [1] to [3], <8> Genetically modified microorganisms as described above. [1] A protein containing the amino acid sequence represented by Sequence ID No. 8 or 10. [2] A mutant protein having an amino acid sequence in which 1 to 20 amino acids are deleted, substituted, inserted, or added in the amino acid sequence represented by Sequence ID No. 8 or 10, and which has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds. [3] A homologous protein having an amino acid sequence that is 60% or more identical to the amino acid sequence represented by SEQ ID NO: 8 or 10, and which has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds. <11> The protein having the activity to transfer sugar from sugar nucleotides to the cytidine residue-containing compound is an enzyme classified as at least one of the GT2 enzyme and the GT28 enzyme in the CAZy classification. <8> Genetically modified microorganisms as described above. <12> The protein having the activity to transfer sugar from sugar nucleotides to the cytidine residue-containing compound is Glucans biosynthesis glucosyltransferase H. <8> Genetically modified microorganisms as described above. <13> The genetically modified microorganism is Escherichia coli. <8> Genetically modified microorganisms as described above. <14> the above <8> ~ <13> A method for producing a cytidine residue-containing compound, comprising preparing a genetically modified microorganism described in any one of the above, and producing a cytidine residue-containing compound in at least one of the culture supernatant and within the bacterial cells using the genetically modified microorganism. <15> The cytidine residue-containing compound is cytidinediphosphate choline, as described above. <14> A method for producing the cytidine residue-containing compound described above. <16> the above <8> ~ <13> A method for suppressing the formation of glycosides of cytidine residue-containing compounds, comprising preparing one of the genetically modified microorganisms. <17> The glycoside of the cytidine residue-containing compound is the cytidine diphosphate choline glycoside described in the following general formula (1). <16> A method for suppressing the formation of glycosides of cytidine residue-containing compounds described above.
[0015] [ka]
[0016] (In formula (1), R is a sugar residue.)
[0017] <18> the above <8> ~ <13> A composition comprising cytidinedicholine phosphate produced using a genetically modified microorganism described in any one of the above, wherein the ratio of the amount of cytidinedicholine phosphate glycoside produced to the amount of cytidinedicholine phosphate produced is 35% or less. <19> the above <8> ~ <13> To prepare a genetically modified microorganism according to any one of the following items, This includes producing a composition using the aforementioned microorganisms, In the above composition, the ratio of cytidinediphosphate choline glycosides to cytidinediphosphate choline is 35% or less. A method for producing a composition. <20> The ratio of the amount of cytidinediphosphate choline glycoside produced to the amount of cytidinediphosphate choline produced is between 0.0005% and 35%. <18> The composition described above. <21> In the above composition, the ratio of cytidinediphosphate choline glycosides to cytidinediphosphate choline is 0.0005% or more and 35% or less. <19> A method for producing the composition described above. [Effects of the Invention]
[0018] This disclosure provides a novel glycoside of a cytidine residue-containing compound and a method for producing the same. Furthermore, this disclosure provides a method for producing a cytidine residue-containing compound and a method for suppressing the formation of glycosides of cytidine residue-containing compounds. [Modes for carrying out the invention]
[0019] The present invention will be described in detail below, but these are merely examples of preferred embodiments and are not limiting to these. The "~" in a numerical range indicates a range that includes the numbers before and after it. For example, "0 mass%~100 mass%" means a range that is greater than or equal to 0 mass% and less than or equal to 100 mass%.
[0020] [Cytidine residue-containing compound] The cytidine residue-containing compounds of this disclosure refer to compounds having a cytidine residue in their structure, and specifically include cytidine, cytidylic acid, cytidine-diphosphate (hereinafter also referred to as CDP), CDP-choline, etc., with CDP-choline being preferred.
[0021] [Glycosides of cytidine residue-containing compounds] This disclosure provides glycosides of cytidine residue-containing compounds. The glycosides of cytidine residue-containing compounds are produced by transferring a sugar from a sugar nucleotide to the cytidine residue-containing compound. The sugar nucleotide is used as a sugar donor. Examples of sugar nucleotides include UDP-glucose (hereinafter also referred to as UDP-Glc), UDP-galactose (hereinafter also referred to as UDP-Gal), GDP-mannose (hereinafter also referred to as GDP-Man), UDP-N-acetylglucosamine (hereinafter also referred to as UDP-GlcNAc), UDP-N-acetylgalactosamine (hereinafter also referred to as UDP-GalNAc), GDP-fucose (hereinafter also referred to as GDP-Fuc), UDP-glucuronic acid (hereinafter also referred to as UDP-GlcA), etc., with UDP-Glc or UDP-Gal being preferred, and UDP-Glc being more preferred.
[0022] Examples of glycosides of cytidine residue-containing compounds include CDP-choline glycosides represented by the following general formula (1) or (1'), which are produced by transferring a sugar from a sugar nucleotide to CDP-choline (hereinafter also referred to as "CDP-choline glycoside of this disclosure" or "CDP-choline glycoside").
[0023] [ka]
[0024] [ka]
[0025] (In formulas (1) and (1'), R is a sugar residue.)
[0026] Preferably, R is a glucose residue, a galactose residue, a mannose residue, an N-acetylglucosamine (also known as GlcNAc) residue, an N-acetylgalactosamine (also known as GalNAc) residue, a fucose residue, a glucuronic acid (also known as GlcA) residue, and other hexose residues (e.g., fructose residues). A hexose refers to a monosaccharide having six carbon atoms, and in addition to fructose, examples include allose, talose, idose, growth, altrose, glucose, and galactose, with glucose or galactose being preferred, and glucose being more preferred.
[0027] The glycoside of the cytidine residue-containing compound is preferably a CDP-choline glycoside represented by the above general formula (1) or general formula (1'). Furthermore, examples of CDP-choline glycosides represented by the above general formula (1) or general formula (1') include the cytidine diphosphate choline glucose glycoside (general formula (3-1) below, hereinafter also referred to as CDP-choline glucose glycoside) or the cytidine diphosphate choline galactose glycoside (general formula (3-2) below, hereinafter also referred to as CDP-choline galactose glycoside).
[0028] The general formula (3-1) below is preferably a structure to which β-glucose represented by the general formula (4-1) is attached, and the general formula (3-2) below is preferably a structure to which β-galactose represented by the general formula (4-2) is attached. Furthermore, among the cytidinediphosphate choline glucose glycosides represented by the following general formula (2) or general formula (2'), the CDP-choline glucose glycoside represented by the following general formula (3-1) is more preferred, and a structure in which β-glucose represented by the following general formula (4-1) is attached is preferred.
[0029] [ka]
[0030] [ka]
[0031] [ka]
[0032] [ka]
[0033] [ka]
[0034] [ka]
[0035] The CDP-choline glycosides, their salts, their N-oxides, and their solvates disclosed herein, like CDP-choline, may exhibit neuroprotective effects by maintaining the structure of nerve cell membranes and suppressing brain dysfunction during brain pathological conditions such as cerebral infarction and head trauma, and may also be involved in improving memory and attention. Compared to CDP-choline, the above CDP-choline glycosides are also expected to have effects such as increased water solubility and reduced toxicity. Furthermore, it is known that glycosides, which are generally water-soluble, are usually absorbed into the intestinal tract by intestinal bacteria and digestive enzymes when administered orally, as carbohydrate residues are typically removed. Therefore, it is known that the rate and location of absorption and metabolism differ from those of unglycosylated glycosides, and that they may exhibit different functions. For this reason, the CDP-choline glycosides disclosed herein are expected to have slower and more sustained absorption compared to CDP-choline due to their stabilization and hydrophilicity.
[0036] The compositions of this disclosure contain at least one of the CDP-choline glycosides, salts thereof, N-oxides thereof, and solvates thereof. In this specification, such compositions are also referred to as composition A containing CDP-choline glycosides. Composition A may contain at least one of the CDP-choline glycosides, salts thereof, N-oxides thereof, and solvates thereof, but the content is not limited.
[0037] The CDP-choline glycosides of this disclosure can be converted to salts by known methods. Examples of salts include acid addition salts, alkali metal salts, alkaline earth metal salts, ammonium salts, or amine salts.
[0038] Examples of acid addition salts include inorganic salts such as hydrochloride, hydrobromide, hydroiodide, sulfate, phosphate, and nitrate, or organic salts such as acetate, lactate, tartrate, benzoate, citrate, methanesulfonate, ethanesulfonate, trifluoroacetate, benzenesulfonate, toluenesulfonate, isethionate, glucuronate, or gluconate.
[0039] Examples of alkali metal salts include potassium and sodium.
[0040] Examples of alkaline earth metal salts include calcium and magnesium.
[0041] Examples of ammonium salts include tetramethylammonium.
[0042] Examples of amine salts include triethylamine, methylamine, dimethylamine, cyclopentylamine, benzylamine, phenethylamine, piperidine, monoethanolamine, diethanolamine, tris(hydroxymethyl)aminomethane, lysine, arginine, and N-methyl-D-glucamine.
[0043] The CDP-choline glycosides of this disclosure can be converted to N-oxide forms by known methods. An N-oxide form refers to a CDP-choline glycoside in which the nitrogen atom has been oxidized.
[0044] The CDP-choline glycosides of this disclosure can be converted to solvates by known methods. The solvates are preferably non-toxic and water-soluble. Suitable solvates include, for example, water or alcoholic solvents (e.g., ethanol).
[0045] [A protein having the activity to transfer sugar from sugar nucleotides to a cytidine residue-containing compound, and the DNA encoding the protein] The glycosides of the cytidine residue-containing compounds described herein, for example, the CDP-choline glycoside represented by general formula (1), are produced using a protein that has the activity of transferring sugar from sugar nucleotides to cytidine residue-containing compounds. Here, the activity of transferring sugar from sugar nucleotides to cytidine residue-containing compounds refers to the activity of transferring sugar from sugar nucleotides to cytidine residues in the cytidine residue-containing compound, more specifically, the activity of transferring sugar from sugar nucleotides to the hydroxyl group at position 2 of the ribose of the cytidine residue in the cytidine residue-containing compound, more specifically, the activity of transferring sugar from sugar nucleotides to CDP-choline, and more specifically, the activity of transferring glucose from UDP-glucose to CDP-choline. Examples of proteins that have the activity of transferring sugar from sugar nucleotides to cytidine residue-containing compounds include proteins classified as EC2.4.1., but it has not been previously known that proteins classified as EC2.4.1. include proteins that have the activity of transferring sugar from sugar nucleotides to cytidine residue-containing compounds.
[0046] Specifically, the CDP-choline glucose glycoside represented by general formula (2) of this disclosure is produced using a protein that has the activity to transfer glucose from UDP-glucose to CDP-choline. Specifically, the CDP-choline glucose glycoside represented by general formula (2) of this disclosure is produced by transferring glucose from UDP-glucose to CDP-choline represented by general formula (3) below.
[0047] [ka]
[0048] In this specification, the protein that contributes to the transfer of glucose from UDP-glucose to CDP-choline represented by the above general formula (3) and the production of the CDP-choline glucose glycoside represented by the above general formula (2) is a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds, and more specifically, "a protein that has the activity to transfer glucose from UDP-glucose to CDP-choline".
[0049] Furthermore, as will be described later, cytidine residue-containing compounds can be efficiently produced by using genetically modified microorganisms in which the activity of this protein is reduced or deleted compared to the parent strain. In addition, the formation of glycosides of cytidine residue-containing compounds can be suppressed by using genetically modified microorganisms in which the activity of this protein is reduced or deleted compared to the parent strain.
[0050] ((A protein that has the activity to transfer sugar from sugar nucleotides to compounds containing cytidine residues.)) Examples of proteins having the activity to transfer sugars from sugar nucleotides to the above-mentioned cytidine residue-containing compounds include, for example, enzymes classified as at least one of the glycosyltransferases classified as glycosylTransferase Family 2 (also referred to herein as "GT2 enzymes") and glycosyltransferases classified as glycosylTransferase Family 28 (also referred to herein as "GT28 enzymes") in the CAZy classification. Among proteins that have the activity to transfer sugars from sugar nucleotides to cytidine residue-containing compounds, glycosyltransferases classified as GT2 enzymes in the CAZy classification are particularly preferred.
[0051] The CAZy classification refers to the classification of enzymes in the Carbohydorate-Active enZYmes (hereinafter also referred to as "CAZy") database, which is a database that aggregates information on the classification of carbohydrate-related enzymes. Enzyme classifications can be checked on the website (http: / / www.cazy.org / ), etc. (Nucleic Acids Res. 2009 Jan;37(Database issue):D233-8. doi: 10.1093 / nar / gkn663. Epub 2008 Oct 5.).
[0052] Examples of GT2 enzymes include UDP-Glc β-1,6-glucan synthase, UDP-Glc β-glucosyltransferase, UDP-Glc: bactoprenol β-glucosyltransferase, UDP-Glc: β-1,3-glucan synthase, UDP-Glc: 1,2-diacylglycerol 3-glucosyltransferase, and UDP-Glc β-1,2-glucan synthase, among which proteins possessing Glucansbiosynthesis glucosyltransferase activity are more preferred.
[0053] An example of a protein possessing glucans biosynthesis glucosyltransferase activity is osmoregulated periplasmic glucans biosynthesis protein H (hereinafter also referred to as opgH). Examples of opgH include opgH from Escherichia coli (Accession No. WP_001295445.1, AAC74133.1, KAB1960533.1, AMH24428.1 and NP_415567.1, etc.), opgH from Pseudomonas syringae pv. Syringae (UniProt ID: P20401), opgH from Xanthomonas euvesicatoria (UniProt ID: Q83Z42), opgH from Caulobacter vibrioides (UniProt ID: B8GX72), opgH from Bradyrhizobium diazoefficiens (UniProt ID: Q89BU5), and opgH from Cupriavidus pinatubonensis (UniProt ID: Q46TZ4), among others. opgH derived from coli (also referred to herein as "E. coli") is more preferred.
[0054] The amino acid sequence of opgH derived from Escherichia coli is represented by the amino acid sequence represented by Sequence ID No. 8 (Accession No. WP_001295445.1). The base sequence of the DNA encoding opgH is represented by the base sequence represented by Sequence ID No. 3 (Accession No. CP081489.1 2449812-2452352). opgH is also known as mdoH or Glucans biosynthesis glucosyltransferase H.
[0055] Examples of GT28 enzymes include UDP-Glc: 1,2-diacylglycerol 3-glucosyltransferase, UDP-GlcNAc: undecaprenyldiphospho-muramoylpentapeptide β-1,4-N-acetylglucosaminyltransferase, Digalactosyldiacylglycerol synthase, and Monogalactosyldiacylglycerol synthase, among which UDP-Glc: 1,2-diacylglycerol 3-glucosyltransferase is more preferred. Furthermore, UgtP is an example of a protein possessing UDP-Glc: 1,2-diacylglycerol 3-glucosyltransferase activity. Examples of UgtP include UgtP derived from Bacillus subtilis, UgtP derived from Staphylococcus aureus, and UgtP derived from Bacillus mycoides. Among these, UgtP derived from Bacillus subtilis is more preferred because, like opgH derived from E. coli, it is a Moon Lighting Protein and a functional homolog of opgH derived from E. coli.
[0056] The amino acid sequence of UgtP derived from Bacillus subtilis is the sequence represented by SEQ ID NO. 10 (Accession No. NP_390075.1). The base sequence of the DNA encoding UgtP is the base sequence represented by SEQ ID NO. 9 (Accession No. NC_000964.3 2306514-2307662).
[0057] Proteins that have the activity to transfer sugars from sugar nucleotides to cytidine residue-containing compounds include at least one selected from the following [1] to [3]. [1] A protein containing the amino acid sequence represented by Sequence ID No. 8 or 10. [2] A mutant protein having an amino acid sequence in which 1 to 20 amino acids are deleted, substituted, inserted, or added in the amino acid sequence represented by Sequence ID No. 8 or 10, and which has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds. [3] A homologous protein having an amino acid sequence that is 60% or more identical to the amino acid sequence represented by SEQ ID NO: 8 or 10, and which has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds.
[0058] The above [1] to [3] may also be the following [1'] to [3'], respectively. [1'] A protein consisting of the amino acid sequence represented by sequence number 8 or 10. [2'] A mutant protein having an amino acid sequence in which 1 to 20 amino acids are deleted, substituted, inserted, or added in the amino acid sequence represented by Sequence ID No. 8 or 10, and which has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds. [3'] A homologous protein having an amino acid sequence that is 60% or more identical to the amino acid sequence represented by SEQ ID NO: 8 or 10, and which has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds.
[0059] Of the above [1] to [3], [1] is preferred as the protein having the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds, and a protein containing the amino acid sequence represented by SEQ ID NO: 8 is more preferred.
[0060] In this specification, a mutant protein refers to a protein obtained by artificially deleting or substituting amino acid residues in an original protein, or by inserting or adding amino acid residues to said protein.
[0061] In the mutant protein described in [2] above, the deletion, substitution, insertion, or addition of amino acids means that 1 to 20 amino acids may be deleted, substituted, inserted, or added at any position in the same sequence. The number of amino acids deleted, substituted, inserted, or added is 1 to 20, preferably 1 to 10, more preferably 1 to 8, and most preferably 1 to 5.
[0062] The amino acids that are deleted, substituted, inserted, or added may be native or unnatural forms. Examples of native amino acids include L-alanine, L-asparagine, L-aspartic acid, L-glutamine, L-glutamic acid, glycine, L-histidine, L-isoleucine, L-leucine, L-lysine, L-arginine, L-methionine, L-phenylalanine, L-proline, L-serine, L-threonine, L-tryptophan, L-tyrosine, L-valine, and L-cysteine.
[0063] Below are examples of amino acids that are mutually substituted. Amino acids belonging to the same group are mutually substituted. Group A: Hydrophobic amino acids • Group B: Acidic amino acids • C group: polar amino acids Group D: Basic amino acids • Group E: Secondary amino acids • Group F: Amino acids containing a hydroxyl group G group: Aromatic amino acids ·H group: sulfur-containing amino acids More specifically, groups A through H are as follows: Group A: Leucine, Isoleucine, Norleucine, Valine, Norvaline, Alanine, 2-Aminobutanoic acid, Methionine, O-Methylserine, t-Butylglycine, t-Butylalanine, Cyclohexylalanine Group B: Aspartic acid, glutamic acid, isoaspartic acid, isoglutamic acid, 2-aminoadipic acid, 2-aminosuberic acid • Group C: Asparagine, Glutamine Group D: Lysine, Arginine, Ornithine, 2,4-Diaminobutanoic acid, 2,3-Diaminopropionic acid Group E: Proline, 3-hydroxyproline, 4-hydroxyproline Group F: Serine, threonine, homoserine Group G: Phenylalanine, tyrosine
[0064] In this specification, homologous proteins are proteins that, due to their similarity in structure and function to the original protein, are thought to have the same evolutionary origin as the gene encoding the original protein, and are found in organisms that exist in nature.
[0065] Examples of homologous proteins include amino acid sequences that have at least 60% identity with the amino acid sequence of the target protein, and more preferably, at least 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, and 99% identity, in that order.
[0066] The percentage of sequence identity between two amino acid sequences or two nucleotide sequences is calculated as the ratio of matching residues when the two sequences are aligned to maximize their similarity. For example, the percentage of sequence identity can be determined using a mathematical algorithm. Examples of such mathematical algorithms include the local homology algorithm by Smith et al (1981) Adv. Appl. Math. 2:482, the homology alignment algorithm by Needleman and Wunsch (1970) J. Mol. Biol. 48:443-453, the similarity search method by Pearson and Lipman (1988) Proc. Natl. Acad. Sci. 85:2444-2448, and improved versions such as the algorithm by Karlin and Altschul (1990) Proc. Natl. Acad. Sci. USA 87:2264, as described in Karlin and Altschul (1993) Proc. Natl. Acad. Sci. USA 90:5873-5877. However, mathematical algorithms are not limited to the examples above.
[0067] Using programs based on these mathematical algorithms, alignment can be performed to determine the percentage of sequence identity. Such programs can be executed by a computer as appropriate. Such programs are not limited to, but include PC / Gene programs such as CLUSTAL(Intelligenetics, Examples include MAFFT (available from Mountain View, Calif.), MAFFT (Katoh, K., Misawa, K., Kuma, K., & Miyata, T. (2002), 30(14), 3059-3066., http: / / mafft.cbrc.jp / alignment / server / ), MUSCLE (Edgar RC (2004). Nucleic acids research, 32(5), 1792-1797., http: / / www.ebi.ac.uk / Tools / msa / muscle / ), BLAST, FASTA, and TFASTA. Alignment using these programs can be performed, for example, using initial parameters. The CLUSTAL program is described in Higgins et al. (1988) Gene 73:237-244, Higgins et al. (1989) CABIOS 5:151-153, Corpet et al. (1988) Nucleic Acids Res. 16:10881-90, Huang et al. (1992) CABIOS 8:155-65, and Pearson et al. (1994) Meth. Mol.Biol. 24:307-331. BLAST is described in Altschul, SF, Gish, W., Miller, W., Myers, EW, & Lipman, DJ (1990). 215(3), 403-410., Mount DW (2007). CSH protocols, 2007, pdb.top17., etc. Specifically, programs called BLASTP and BLASTN have been developed based on BLAST, and the percentage of sequence identity can be calculated using these programs with their default settings.
[0068] The activity of a protein in transferring sugar from sugar nucleotides to cytidine residue-containing compounds can be confirmed, for example, by the following method. First, recombinant DNA containing the DNA encoding the protein and a tag sequence for enzyme purification is prepared by the method described later. Next, the microorganism obtained by transforming with the recombinant DNA is cultured, and the protein is prepared as a purified enzyme from the resulting culture. Subsequently, the purified enzyme is brought into contact with an appropriate substrate and sugar donor. For example, to confirm that the protein has the activity to transfer glucose from UDP-glucose to CDP-choline, CDP-choline and UDP-glucose are brought into contact to produce CDP-choline glucose glycoside. Finally, by detecting the CDP-choline glucose glycoside in the reaction solution using a general analytical method such as high-speed chromatography or gas chromatography, it can be confirmed that the target protein has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds.
[0069] The tag sequences for enzyme purification described above are described in prior art literature and are known to those skilled in the art. Examples include the polypeptide chains (see, for example, Kimple ME, Brill AL, Pasker RL. Overview of affinity tags for protein purification. Curr Protoc Protein Sci. 2013;73:9.9.1-9.9.23. Published 2013 Sep 24. doi:10.1002 / 0471140864.ps0909s73), calmodulin-binding peptides, His tags such as 6His tags, and / or sequences that can be used to purify (affinity) maltose-binding protein sequences.
[0070] For example, a His tag (polyhistidine tag) is a polyhistidine amino acid motif in proteins, typically consisting of at least six histidine (His) residues, and often located at the N-terminus or C-terminus of a protein. Polyhistidine tags are often used for affinity purification of polyhistidine-tagged recombinant proteins expressed in Escherichia coli and other prokaryotic expression systems by incubation with affinity resins containing bound divalent nickel or cobalt ions, which are commercially available in various types.
[0071] These resins are generally Sepharose / agarose functionalized with chelating agents such as iminodiacetic acid (Ni-IDA) and nitrilotriacetic acid (Ni-NTA) for nickel, and carboxymethyl aspartic acid (Co-CMA) for cobalt, to which polyhistidine tags are bound with micromolar affinity. The resins are then typically washed with phosphate buffer to remove proteins that do not specifically interact with cobalt or nickel ions. In the case of Ni-based methods, the washing efficiency can be improved by adding 20 mM imidazole (proteins are usually eluted with 150-300 mM imidazole).
[0072] ((DNA)) Examples of DNA encoding opgH from E. coli, which is an example of a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds, include those with accession numbers CP081489.1 2449812-2452352 and X64197.1 1951-4494. Similarly, an example of DNA encoding UgtP from Bacillus subtilis is Accession No. NC_000964.3 2306514-2307662.
[0073] Furthermore, the DNA encoding a protein having the activity to transfer sugar from sugar nucleotides to the cytidine residue-containing compound in this embodiment can be at least one selected from the following [4] to [9]. [4] DNA encoding the amino acid sequence represented by Sequence ID No. 8 or 10. [5] DNA encoding a mutant protein having an amino acid sequence in which 1 to 20 amino acids are deleted, substituted, inserted, or added in the amino acid sequence represented by Sequence ID No. 8 or 10, and which has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds. [6] DNA encoding a homologous protein that has an amino acid sequence having 60% or more identity with the amino acid sequence represented by SEQ ID NO: 8 or 10, and which has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds. [7] DNA containing the nucleotide sequence shown in sequence number 3 or 9. [8] DNA that hybridizes under stringent conditions with DNA containing a base sequence complementary to the base sequence represented by Sequence ID No. 3 or 9, and encodes a protein having the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds. [9] DNA encoding a protein having 95% or more identity, preferably 97% or more, more preferably 98% or more, and most preferably 99% or more, with the base sequence represented by Sequence ID No. 3 or 9, and having the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds.
[0074] The above [5] to [9] may also be the following [5'] to [9']. [5'] DNA encoding a mutant protein having an amino acid sequence in which 1 to 20 amino acids are deleted, substituted, inserted, or added in the amino acid sequence represented by Sequence ID No. 8 or 10, and which has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds. [6'] DNA encoding a homologous protein having an amino acid sequence that is 60% or more identical to the amino acid sequence represented by Sequence ID No. 8 or 10, and which has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds. [7'] DNA consisting of the base sequence shown in sequence number 3 or 9. [8'] DNA that hybridizes under stringent conditions with DNA consisting of a base sequence complementary to the base sequence represented by Sequence ID No. 3 or 9, and encodes a protein having the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds. [9'] DNA comprising a base sequence having 95% or more identity, preferably 97% or more, more preferably 98% or more, and most preferably 99% or more identity with the base sequence represented by Sequence ID No. 3 or 9, and encoding a protein having the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds.
[0075] "Hybridizing" refers to the hybridization of DNA with a specific base sequence or a portion of such DNA. Therefore, DNA with a specific base sequence or a portion of such DNA can be used as a probe for Northern or Southern blot analysis, and can also be used as oligonucleotide primers for PCR analysis.
[0076] DNA used as a probe may consist of at least 100 bases, preferably 200 bases, and more preferably 500 bases. DNA used as a primer may consist of at least 10 bases, preferably 15 bases.
[0077] The methods for DNA hybridization experiments are well known, and the conditions for hybridization can be determined and the experiment performed according to numerous other standard textbooks, such as Molecular Cloning, 4th Edition (Cold Spring Harbor Laboratory Press (2012)), Methods for General and Molecular Bacteriology (ASM Press (1994)), and Immunology Methods Manual (Academic Press (1997)).
[0078] Alternatively, DNA that hybridizes under stringent conditions can be obtained by following the instructions included with commercially available hybridization kits. Examples of commercially available hybridization kits include the Random Primed DNA Labeling Kit (manufactured by Roche Diagnostics), which uses the Random Prime method to prepare probes and performs hybridization under stringent conditions.
[0079] Examples of stringent conditions include incubating a DNA-immobilized filter and probe DNA overnight at 42°C in a solution containing 50% formamide, 5×SSC (750 mM sodium chloride, 75 mM sodium citrate), 50 mM sodium phosphate (pH 7.6), 5× Denhardt's solution, 10% dextran sulfate, and 20 μg / ml of denatured salmon sperm DNA, followed by washing the filter in a 0.2×SSC solution at approximately 65°C.
[0080] The various conditions described above can also be set by adding or changing blocking reagents used to suppress the background of the hybridization experiment. Adding the blocking reagents described above may involve changing the hybridization conditions to suit the desired conditions.
[0081] Examples of DNA that can hybridize under the stringent conditions described above include DNA that, when calculated using BLAST, FASTA, or the like based on the parameters described above, has at least 95% identity, preferably 97% or more, more preferably 98% or more, and most preferably 99% or more identity with the DNA containing the base sequence represented by sequence number 7 or 11.
[0082] Among the DNA encoding proteins that have the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds, the DNA described in [4] or [7] above can be obtained, for example, by Southern hybridization of a microbial chromosomal DNA library using probe DNA that can be designed based on the amino acid sequence represented by SEQ ID NO: 8 or 10, or the base sequence represented by SEQ ID NO: 3 or 9, or by PCR using microbial chromosomal DNA as a template with primer DNA that can be designed based on the said base sequence [PCR Protocols, Academic Press (1990)]. The origin of the microbial chromosomal DNA used in the above operation is not particularly limited, but for example, it is a prokaryote belonging to the genera Escherichia, Shewanella, Xanthomonas, or Pseudomonas, and among these, a prokaryote belonging to the genus Escherichia (Escherichia coli) is preferred.
[0083] Among the DNA encoding a protein having the activity of transferring sugar from sugar nucleotides to a cytidine residue-containing compound, the DNA described in [6], [8], or [9] above can be obtained, for example, by searching various protein sequence databases for an amino acid sequence that has 60% or more identity with the amino acid sequence represented by SEQ ID NO: 8 or 10, preferably in the following order: 70% or more, 80% or more, 90% or more, 95% or more, more preferably 98% or more, and most preferably 99% or more, with the amino acid sequence represented by SEQ ID NO: 3, and then searching various gene sequence databases for a base sequence that has 95% or more identity with the base sequence represented by SEQ ID NO: 3, preferably 97% or more, more preferably 98% or more, and most preferably 99% or more, with the probe DNA or primer DNA that can be designed based on the amino acid sequence or base sequence obtained by the search, and a microorganism having said DNA, by a method similar to the method for obtaining the above DNA, such as Southern hybridization or PCR.
[0084] Among the DNA encoding a protein having the activity to transfer sugar from sugar nucleotides to a cytidine residue-containing compound, the DNA described in [5] or [8] above can be obtained, for example, by subjecting a DNA containing a base sequence encoding the amino acid sequence represented by SEQ ID NO: 8 or 10, or a base sequence represented by SEQ ID NO: 3 or 9, to error-prone PCR or the like as a template.
[0085] Furthermore, the DNA described in [5] or [8] above can also be obtained by PCR using a set of PCR primers having a nucleotide sequence designed to insert the target mutation (deletion, substitution, insertion, or addition) at each 5' end [Gene, 77, 51 (1989)]. Specifically, first, PCR is performed using the DNA as a template with a sense primer corresponding to the 5' end of the DNA containing the nucleotide sequence encoding the amino acid sequence represented by SEQ ID NO: 8 or 10, or the nucleotide sequence represented by SEQ ID NO: 3 or 9, and an antisense primer corresponding to the sequence immediately preceding (on the 5' side) of the mutation site, which has a sequence complementary to the mutation sequence at the 5' end, to amplify fragment A (with the mutation introduced on the 3' side) from the 5' end of the DNA to the mutation site. Next, PCR is performed using the DNA as a template with a sense primer corresponding to the sequence immediately following (on the 3' side) of the mutation site, which has the mutation sequence at the 5' end, and an antisense primer corresponding to the 3' end of the DNA, to amplify fragment B (with the mutation introduced on the 5' end) from the mutation site to the 3' end of the DNA. After purifying these amplified fragments, if they are mixed and PCR is performed without adding templates or primers, the sense strand of amplified fragment A and the antisense strand of amplified fragment B hybridize because they share a common mutation site. This hybridizes, acting as both a primer and a template, allowing the PCR reaction to proceed and the mutated DNA to be amplified.
[0086] The DNA obtained as described in [4] to [9] above can be incorporated into a vector by conventional methods, either as is or after being cut with an appropriate restriction enzyme, and the resulting recombinant DNA can be introduced into host cells. The base sequence of the DNA can then be determined by analyzing it using commonly used base sequence analysis methods, such as the dideoxy method [Proc. Natl. Acad. Sci., USA, 74, 5463 (1977)], or by using a base sequence analyzer such as the Applied Biosystems 3500 Genetic Analyzer or the Applied Biosystems 3730 DNA Analyzer (both manufactured by Thermo Fisher Scientific).
[0087] Examples of host cells that can be used to determine the base sequence of DNA include Escherichia coli DH5α, Escherichia coli HST08 Premium, Escherichia coli HST02, Escherichia coli HST04 dam- / dcm-, Escherichia coli JM109, Escherichia coli HB101, Escherichia coli CJ236, Escherichia coli BMH71-18 mutS, Escherichia coli MV1184, Escherichia coli TH2 (all manufactured by Takara Bio), Escherichia coli XL1-Blue, Escherichia coli XL2-Blue (both manufactured by Agilent Technologies), Escherichia coli DH1, Escherichia coli MC1000, Escherichia coli W1485, Escherichia coli W3110, Escherichia coli MP347, Escherichia Examples include coli NM522.
[0088] Examples of the vectors mentioned above include pBluescriptII KS(+), pPCR-Script Amp SK(+) (both manufactured by Agilent Technologies), pT7Blue (manufactured by Merck Millipore), pCRII (manufactured by Thermo Fisher Scientific), pCR-TRAP (manufactured by Gene Hunter), and pDIRECT [Nucleic Acids Res., 18, 6069 (1990)].
[0089] If the DNA obtained as a result of sequencing is only a partial length, the full-length DNA can be obtained by Southern hybridization or other methods using the partial-length DNA as a probe in a chromosomal DNA library.
[0090] Furthermore, based on the determined DNA base sequence or the base sequence represented by Sequence ID No. 3 or 9, the target DNA can also be prepared by chemical synthesis using an NTS M series DNA synthesizer manufactured by Nippon Techno Service Co., Ltd.
[0091] [Genetically modified microorganisms with enhanced activity of the target protein] The methods for producing glycosides of cytidine residue-containing compounds and for producing cytidine residue-containing compounds described herein may use genetically modified microorganisms. Examples of genetically modified microorganisms include those in which the activity of the target protein is enhanced compared to the parent strain, for example, genetically modified microorganisms in which the activity of transferring sugar from sugar nucleotides to cytidine residue-containing compounds is enhanced. Hereinafter, the definition of such microorganisms and methods for producing such microorganisms will be explained.
[0092] In this specification, "enhanced protein activity" may mean that the activity of the protein is enhanced compared to the parent strain. Specifically, in this specification, "enhanced protein activity" may mean that the activity of the protein per cell is enhanced compared to the parent strain.
[0093] In genetically modified microorganisms with enhanced activity of a target protein, the term "parent strain" in this specification may mean the type strain (i.e., the type strain of the species to which the microorganism belongs) that is the subject of genetic modification and transformation, and strains that have already undergone modification other than genetic modification to enhance the activity of the target protein. The bacterial strains exemplified in the description of (parent strain) below may be used, but are not limited thereto. In other words, in one embodiment, the activity of the protein may be enhanced compared to the parent strain.
[0094] In this specification, "enhanced protein activity" may more specifically mean that the number of molecules of the protein per cell has increased and / or that the function per molecule of the protein has been enhanced compared to the parent strain. In other words, "activity" in the phrase "enhanced protein activity" is not limited to the catalytic activity of the protein, but may also mean the amount of transcription (mRNA amount) or translation (amount of protein) of the gene encoding the protein.
[0095] Furthermore, "enhanced protein activity" includes not only enhancing the activity of the target protein in strains that originally possess the activity of that protein, but also conferring the activity of the target protein to strains that originally do not possess that activity. In addition, as long as the protein activity is enhanced as a result, the activity of the target protein may be conferred after reducing or eliminating the activity of the target protein that the host originally possesses.
[0096] In this embodiment, the degree of enhancement of protein activity is not particularly limited as long as the protein activity is enhanced compared to the parent strain. The protein activity may increase, for example, to 1.2 times or more, 1.5 times or more, 2 times or more, or 3 times or more compared to the activity of the protein in the parent strain. If the parent strain does not have the activity of the target protein, it is sufficient that the protein is produced by introducing the gene encoding the protein, for example, as long as the protein is produced to a degree that allows its activity to be measured.
[0097] Enhanced protein activity can also be confirmed by observing an increase in the expression of the gene encoding the protein compared to the parent strain. Increased gene expression can be confirmed by observing an increase in the transcription level of the gene compared to the parent strain, or by observing an increase in the amount of protein expressed from the gene compared to the parent strain.
[0098] Furthermore, recombination that enhances protein activity can also be achieved, for example, by increasing the specific activity of the protein. This enhancement of specific activity may include desensitization to feedback inhibition. That is, if a protein is subjected to feedback inhibition by metabolites, its activity can be enhanced by having the host carry a gene encoding a mutant protein that has been desensitized to feedback inhibition.
[0099] Unless otherwise specified, "desensitization to feedback inhibition" may include cases where feedback inhibition is completely eliminated and cases where feedback inhibition is reduced. Furthermore, "being desensitized to feedback inhibition" (i.e., feedback inhibition is reduced or eliminated) is also referred to as "being tolerant to feedback inhibition."
[0100] Proteins with enhanced specific activity can be obtained, for example, by exploring various organisms. Alternatively, highly active proteins can be obtained by introducing mutations into existing proteins. The introduced mutations may include, for example, the substitution, deletion, insertion, or addition of one or more amino acids at one or more positions in the protein.
[0101] Furthermore, when enhancing protein activity, methods such as expression in the soluble fraction and devising ways to ensure correct protein folding may be employed. Specifically, examples include co-expression with chaperones, investigation of gene inducers, refolding techniques, deletion of the N-terminus or C-terminus of the protein's amino acid sequence, selection of protein expression vectors, optimization of purification conditions, and optimization of codons.
[0102] Microorganisms with enhanced activity of the target protein can also be produced by transforming the parent microorganism with recombinant DNA containing the DNA encoding the protein, thereby increasing the expression of the DNA encoding the protein compared to the parent strain. "Increased DNA expression" is also referred to as "increased gene expression."
[0103] In this specification, "increased gene expression" may mean that the expression of the gene is enhanced compared to the parent strain. In this specification, "increased gene expression" may specifically mean that the amount of the gene expressed per cell is enhanced compared to the parent strain. In this specification, "increased gene expression" may more specifically mean that the amount of gene transcription (mRNA) is enhanced, and / or the amount of gene translation (protein) is enhanced.
[0104] Furthermore, "increased gene expression" is also referred to as "enhanced gene expression." In this embodiment, gene expression may increase to, for example, 1.2 times or more, 1.5 times or more, 2 times or more, or 3 times or more compared to the expression of the gene in the parental strain. In addition, "increased gene expression" includes not only increasing the expression level of the target gene in a strain that already expresses the target gene, but also causing the target gene to express in a strain that does not originally express the target gene. That is, "increased gene expression" may mean, for example, introducing the target gene into a strain that does not possess the target gene and causing it to express.
[0105] Increased gene expression can be achieved, for example, by increasing the copy number of the gene, selecting a promoter with a high transcription initiation frequency, or by disrupting and enhancing the expression of transcription factors involved in regulating the expression of the target gene. Specifically, if the transcription factor contributes to the suppression of the expression of the target gene, it can be achieved by disruption, and if the transcription factor contributes to the promotion of the expression of the target gene, it can be achieved by enhancement.
[0106] Examples of microorganisms in which the copy number of protein-coding DNA has increased compared to the parent strain include microorganisms in which the copy number of protein-coding DNA on chromosomal DNA has increased by transforming the parent strain microorganism with recombinant DNA containing the gene that codes for the protein, and microorganisms in which the protein-coding DNA is carried outside of chromosomal DNA as plasmid DNA.
[0107] <Recombinant DNA> Recombinant DNA refers to, for example, DNA that is capable of autonomous replication within the parent strain, and in which the target DNA (hereinafter also referred to as the target DNA) is incorporated into an expression vector that contains a promoter at a position where the target DNA can be transcribed.
[0108] The vector is not particularly limited as long as it is a suitable DNA molecule for introducing the target DNA into a host cell, and for proliferation and expression. This includes not only plasmids, but also, for example, artificial chromosomes, vectors using transposons, and cosmids.
[0109] If the DNA is capable of being incorporated into the chromosomes of the parent plant, then the target DNA itself is also recombinant DNA containing the target DNA. If the recombinant DNA is capable of being incorporated into the chromosomal DNA of the parent plant, it does not need to contain a promoter.
[0110] Recombinant DNA capable of autonomous replication in prokaryotes such as bacteria is preferably recombinant DNA composed of a promoter, a ribosome-binding sequence, the target DNA, and a transcription termination sequence. It may also include genes that control the promoter. It is preferable to use recombinant DNA in which the distance between the Shine-Dalgarno sequence, which is the ribosome-binding sequence, and the start codon is adjusted to an appropriate distance (e.g., 6 to 18 bases).
[0111] In recombinant DNA capable of autonomous replication, a transcription termination sequence is not necessarily required for DNA expression, but it is preferable to place the transcription termination sequence directly below the structural gene.
[0112] When using a microorganism belonging to the genus Escherichia as the parent strain, the expression vectors include, for example, pColdI, pSTV28, pSTV29, pUC118 (all from Takara Bio), pMW119 (from Nippon Gene), pET21a, pCOLADuet-1, pCDFDuet-1, pCDF-1b, pRSF-1b (all from Merck Millipore), pMAL-c5x (from New England Biolabs), pGEX-4T-1, pTrc99A (all from GE Healthcare Biosciences), pTrcHis, pSE280 (all from Thermo Fisher Scientific), pGEMEX-1 (from Promega), pQE-30, pQE80L (all from Qiagen), pET-3, pBluescriptII SK(+), and pBluescriptII. KS(-) (both manufactured by Agilent Technologies), pKYP10 (Japanese Patent Publication No. 58-110600), pKYP200 [Agric. Biol. Chem., 48, 669 (1984)], pLSA1 [Agric. Biol. Chem., 53, 277 (1989)], pGEL1 [Proc. Natl. Acad. Sci., USA, 82, 4306 (1985)], pTrS30 [prepared from Escherichia coli JM109 / pTrS30 (FERM BP-5407)], pTrS32 [prepared from Escherichia coli JM109 / pTrS32 (FERM BP-5408)], pTK31 [APPLIED AND ENVIRONMENTAL Examples include [MICROBIOLOGY, 2007, Vol.73, No.20, pp. 6378-6385], pPAC31 (International Publication No. 98 / 12343), pUC19 [Gene, 33, 103 (1985)], and pPA1 (Japanese Patent Publication No. 63-233798).
[0113] When using the above expression vector, any promoter that functions in the cells of microorganisms belonging to the genus Escherichia may be used. Examples include promoters of genes involved in amino acid biosynthesis, such as the trp promoter and the ilv promoter, and promoters derived from Escherichia coli or phages, such as the uspA promoter, lac promoter, PL promoter, PR promoter, and PSE promoter. In addition, artificially designed and recombinant promoters such as two trp promoters in series, the tac promoter, the trc promoter, the lacT7 promoter, and the letI promoter can also be used.
[0114] When using Corynebacterium-type bacteria as the parent strain, examples of expression vectors include pCG1 (Japanese Patent Publication No. 57-134500), pCG2 (Japanese Patent Publication No. 58-35197), pCG4 (Japanese Patent Publication No. 57-183799), pCG11 (Japanese Patent Publication No. 57-134500), pCG116, pCE54, pCB101 (both Japanese Patent Publication No. 58-105999), pCE51, pCE52, pCE53 [all from Molecular and General Genetics, 196, 175 (1984)].
[0115] When using the above expression vector, any promoter that functions in the cells of Corynebacterium can be used, but an example is the P54-6 promoter [Appl. Microbiol. Biotechnol., 53, p674-679 (2000)].
[0116] When using a yeast strain as the parent strain, examples of expression vectors include YEp13 (ATCC37115), YEp24 (ATCC37051), YCp50 (ATCC37419), pHS19, and pHS15.
[0117] When using the above expression vector, any promoter that functions in the cells of the yeast strain may be used, but examples of promoters include the PHO5 promoter, PGK promoter, GAP promoter, ADH promoter, gal1 promoter, gal10 promoter, heat shock polypeptide promoter, MFα1 promoter, and CUP1 promoter.
[0118] Recombinant DNA can be prepared, for example, by using the In-Fusion® HD Cloning Kit (Takara Bio Inc.) or by restricting a DNA fragment prepared to encode a desired enzyme, and then inserting it downstream of the promoter of a suitable expression vector.
[0119] Here, the expression level of the protein encoded by the DNA can also be improved by substituting bases in the DNA's base sequence to create codons that are optimal for expression in host cells. Information on codon usage frequency in the parent strain used in the manufacturing method of the present invention can be obtained through public databases.
[0120] A genetically modified microorganism with enhanced activity of the target protein is a genetically modified microorganism that contains the DNA encoding the target protein (target DNA), or is obtained by transforming a parent strain with recombinant DNA containing the target DNA. Here, we will describe the parent strain.
[0121] <Parent stock> The parent strains used to construct the microorganisms described herein are not particularly limited.
[0122] The parent strain is preferably a prokaryotic or yeast strain, more preferably a prokaryotic organism belonging to the genera Escherichia, Serratia, Bacillus, Brevibacterium, Corynebacterium, Microbacterium, or Pseudomonas, or a yeast strain belonging to the genera Saccharomyces, Schizosaccharomyces, Kluiveromyces, Trichosporon, Siwaniomyces, Pichia, or Candida, among which a prokaryotic organism belonging to the genus Escherichia (Escherichia coli) is preferred.
[0123] Specifically, they are Escherichia coli BL21 codon plus, Escherichia coli XL1-Blue, and Escherichia coli XL2-Blue(XL2-Blue Explanation) Escherichia coli BL21(DE3)pLysS(bacterial preparation), Escherichia coli BL21(DE3) (Novagen preparation), Escherichia coli B (ATCC23226), Escherichia coli B RC912, Escherichia coli BL21, Escherichia coli DH5α, Escherichia coli HST08 Premium, Escherichia coli HST02, Escherichia coli HST04 dam- / dcm-, Escherichia coli JM109, Escherichia coli HB101, Escherichia coli CJ236, Escherichia coli BMH71-18 mutS, Escherichia coli MV1184, Escherichia coli TH2 (Ch W(ATCC9637), Escherichia coli JM101, Escherichia coli W3110, Escherichia coli MG1655, Escherichia coli DH1, Escherichia coli MC1000, Escherichia coli W1485, Escherichia coli MP347 Escherichia coli NM522 Serratia ficaria Serratia fonticola Serratia liquefaciens Serratia marcescens Bacillus subtilis Bacillus amyloliquefaciens Brevibacterium immariophilum ATCC14068 Brevibacterium saccharolyticum ATCC14066 CorynebacteriumExamples include prokaryotes such as ammoniagenes, Corynebacterium glutamicum ATCC13032, Corynebacterium glutamicum ATCC14067, Corynebacterium glutamicum ATCC13869, Corynebacterium acetoacidophilum ATCC13870, Microbacterium ammoniaphilum ATCC15354, or Pseudomonas sp.D-0110, or yeast strains such as Saccharomyces cerevisiae, Schizosaccharomyces pombe, Kluyveromyces lactis, Trichosporon pullulans, Schwanniomyces alluvius, Pichia pastoris, or Candida utilis.
[0124] <Incorporation of DNA into the parent plant> Any method for introducing recombinant DNA into a parent strain to obtain genetically modified microorganisms by incorporating the target DNA can be used. Examples include the calcium ion method (Proc. Natl. Acad. Sci., USA, 69, 2110, 1972), the protoplast method (Japanese Patent Publication No. 63-248394), the electroporation method (Nucleic Acids Res., 16, 6127, 1988), the spheroplast method [Proc. Natl. Acad. Sci., USA, 81, 4889 (1984)], and the lithium acetate method [J. Bacteriol., 153, 163 (1983)].
[0125] In genetically modified microorganisms, the target DNA or recombinant DNA may be inserted into the genome or exist as an autonomously replicating plasmid, but the target DNA is included in a transcribed state. A single parent strain may contain only one type of DNA or two or more types of DNA.
[0126] Furthermore, when inserting recombinant DNA containing the target DNA into the genome of the parent strain, a method such as homologous recombination can be used. That is, DNA to which a portion of the chromosomal region to which the target DNA should be introduced is attached can be taken up by a microorganism, and homologous recombination can be induced in that portion of the chromosomal region, thereby incorporating it into the genome. For example, a method using homologous recombination frequently used in Escherichia coli is the introduction of recombinant DNA using a lambda phage homologous recombination system [Proc. Natl. Acad. Sci. USA, 97, 6641-6645 (2000)]. Here, there are no particular restrictions on the chromosomal region to which the introduction should occur, but a non-essential gene region or a non-gene region upstream of a non-essential gene region is preferred. As for the method of taking up the DNA into the microbial cell, any method of introducing DNA into a host cell can be used, for example, the calcium ion method mentioned above, the protoplast method, the electroporation method, etc.
[0127] Furthermore, by using selection methods that utilize the fact that E. coli becomes sucrose-sensitive due to Bacillus subtilis levanseucrase incorporated into the chromosome along with recombinant DNA, or by using selection methods that utilize the fact that E. coli becomes streptomycin-sensitive by incorporating the wild-type rpsL gene into E. coli having a streptomycin-resistant mutant rpsL gene [Mol. Microbiol., 55, 137(2005), Biosci. Biotechnol. Biochem., 71, 2905(2007)], it is possible to obtain E. coli in which the target region on the chromosomal DNA of the host cell has been replaced with the target DNA or recombinant DNA.
[0128] The fact that a microorganism is obtained by introducing recombinant DNA containing the DNA encoding the target protein into a parent strain in an expressible state can be confirmed, for example, by comparing the transcription rate of the microorganism's DNA by Northern blotting, or the production rate of the microorganism's protein by Western blotting, with the transcription rate of the DNA or the production rate of the protein in the parent strain before the DNA introduction.
[0129] For example, a microorganism created by introducing recombinant DNA containing the DNA encoding the target protein into a parent strain using the method described above can be confirmed to be a genetically modified microorganism capable of producing the target protein by the following method. First, the parent strain before DNA introduction and the created genetically modified microorganism are cultured in a culture medium, and a cell extract containing the target protein is prepared from the resulting cultures. Next, the cell extract is brought into contact with a substrate, allowing the target protein to act on the substrate and generate a reaction product. Finally, by detecting the reaction product in the reaction solution using an appropriate analytical method according to the reaction product, it can be confirmed that the created microorganism is a genetically modified microorganism capable of producing the target protein. In particular, if the detected target product is in greater quantities than that of the parent strain before DNA introduction, it can be said that the activity of the target protein is enhanced compared to the parent strain before DNA introduction.
[0130] [Method for manufacturing the target product]
[0131] When the target product is manufactured using microorganisms, it is understood by those skilled in the art to be manufactured by an enzymatic method or a fermentation method, but is not limited to these.
[0132] In this embodiment, the "enzyme method" is a method for producing a target product by using a culture obtained by culturing microorganisms and a processed product of said culture as an enzyme source, and by placing the enzyme source and substrate in an aqueous medium and allowing them to react. Among these, a reaction system that utilizes microbial cells in a dormant or stationary state that do not involve growth as a catalyst (also called an enzyme source) is called the "microbial cell reaction method."
[0133] Furthermore, "fermentation" is a method of producing a target product within microorganisms that are in a growth or development state. In this case, it is necessary to add culture medium components for the growth or development of the microorganisms.
[0134] The following describes in more detail the methods for producing the desired product by enzymatic or fermentation methods. However, the form of reaction between microorganisms and substrates is not limited to the specific methods described below.
[0135] [Method for producing glycosides of cytidine residue-containing compounds] The method for producing glycosides of cytidine residue-containing compounds according to this disclosure includes using a protein having the activity to transfer sugar from sugar nucleotides to the cytidine residue-containing compound. In the method for producing glycosides of cytidine residue-containing compounds according to this disclosure, sugar is transferred from sugar nucleotides to the cytidine residue-containing compound by using a protein having the activity to transfer sugar from sugar nucleotides to the cytidine residue-containing compound. The case where the glycoside of a cytidine residue-containing compound is a CDP-choline glycoside is described in detail below.
[0136] [Method for producing CDP-choline glycosides] The method for producing CDP-choline glycosides according to this disclosure includes using a protein having the activity to transfer sugar from sugar nucleotides to a cytidine residue-containing compound. In the method for producing CDP-choline glycosides according to this disclosure, sugar is transferred from sugar nucleotides to the cytidine residue-containing compound by using a protein having the activity to transfer sugar from sugar nucleotides to the cytidine residue-containing compound. For example, by using a protein having the activity to transfer glucose from UDP-glucose to CDP-choline, glucose from UDP-glucose is transferred to CDP-choline to produce CDP-choline glucose glycosides.
[0137] Methods for producing the CDP-choline glycoside described herein include (I) a method for producing the CDP-choline glycoside by fermentation and (II) a method for producing the CDP-choline glycoside by enzymatic means, using microorganisms capable of producing proteins that have the activity to transfer sugar from sugar nucleotides to the cytidine residue-containing compound described above. Each production method will be described below.
[0138] (I) Method for producing CDP-choline glycosides by fermentation A method for producing the CDP-choline glycoside of this disclosure by fermentation includes culturing the microorganism described below in a culture medium to produce the CDP-choline glycoside in the culture. This production method may include, for example, accumulating the CDP-choline glycoside after it has been produced in the culture, and then collecting the CDP-choline glycoside from the culture.
[0139] The microorganism used in producing the CDP-choline glycosides of this disclosure by fermentation (hereinafter also referred to as "CDP-choline glycoside production microorganism (I)") is a microorganism that has a protein having the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds and produces CDP-choline glycosides. CDP-choline glycoside production microorganism (I) may be a microorganism in which the activity of the protein having the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds is enhanced compared to the parent strain, and the productivity of CDP-choline glycosides is improved.
[0140] Microorganisms possessing a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds may be microorganisms that originally possess a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds, or, if the reference strain used is a microorganism that does not originally possess a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds, it may be a genetically modified microorganism that has been artificially conferred with a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds. Alternatively, a genetically modified microorganism that originally possesses a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds may be further enhanced with a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds.
[0141] As for the microorganism (I) for CDP-choline glycoside production, for example, in the aforementioned "genetically modified microorganism with enhanced activity of the target protein," the "target protein" is a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds, and preferably the "target protein" is an enzyme classified as at least one of the GT2 enzyme and GT28 enzyme in the CAZy classification described above, or at least one selected from [1] to [3] above.
[0142] In a "genetically modified microorganism with enhanced activity of the target protein," if the "target protein" is an enzyme classified as at least one of the GT2 enzyme and GT28 enzyme in the CAZy classification described above, then the "target DNA" can be the DNA encoding an enzyme classified as at least one of the GT2 enzyme and GT28 enzyme in the CAZy classification, specifically the DNA previously exemplified as the DNA encoding E. coli-derived opgH, etc., and the microorganism can be produced by the method described above as a method for producing a "genetically modified microorganism with enhanced activity of the target protein."
[0143] In a "genetically modified microorganism with enhanced activity of the target protein," if the "target protein" is at least one selected from [1] to [3] above, the microorganism can be produced by the method described above as a method for producing a "genetically modified microorganism with enhanced activity of the target protein" by using at least one selected from [4] to [9] above as the "target DNA."
[0144] The culture of microorganisms can be carried out according to conventional methods. The culture medium for the microorganisms may be either a natural or synthetic medium, as long as it contains a protein substrate or starting material for the cytidine residue-containing compound that has the activity to transfer sugar from sugar nucleotides, a carbon source, a nitrogen source, and inorganic salts that the microorganisms can utilize, and is capable of efficiently culturing the microorganisms.
[0145] Examples of substrates for proteins that have the activity to transfer sugars from sugar nucleotides to cytidine residue-containing compounds include sugar nucleotides and CDP-choline. Examples of sugar nucleotides include UDP-Glc, UDP-Gal, GDP-Man, UDP-GlcNAc, UDP-GalNAc, GDP-Fuc, UDP-GlcA, etc., with UDP-Glc being more preferred. These sugar nucleotides are also called "sugar nucleotides such as UDP-glucose." Examples of starting materials for the substrates include orotic acid, CMP, choline chloride, glucose, etc.
[0146] Any carbon source that the microorganism can utilize is acceptable, and examples include carbohydrates such as glucose, fructose, sucrose, molasses containing these, starch and starch hydrolysates, organic acids such as acetic acid and propionic acid, and alcohols such as ethanol and propanol.
[0147] Examples of nitrogen sources include ammonia, ammonium salts of inorganic or organic acids such as ammonium chloride, ammonium sulfate, ammonium acetate, and ammonium phosphate, other nitrogen-containing compounds, as well as peptone, meat extract, yeast extract, corn steep liquor, casein hydrolysate, soybean meal and soybean meal hydrolysate, various fermentation microorganisms, and their digests.
[0148] Examples of inorganic salts include monopotassium phosphate, dipotassium phosphate, magnesium phosphate, magnesium sulfate, sodium chloride, ferrous sulfate, manganese sulfate, copper sulfate, and calcium carbonate.
[0149] In a method for producing CDP-choline glycosides by fermentation, the microorganism used may be one that has the ability (also referred to as production capacity) to produce sugar nucleotides such as UDP-glucose and / or CDP-choline, which are substrates for proteins that have the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds. The microorganism having the ability to produce sugar nucleotides such as UDP-glucose and / or CDP-choline may be a reference strain, or if the reference strain does not have the ability to produce sugar nucleotides such as UDP-glucose and / or CDP-choline, a strain that has been artificially conferred the ability to produce sugar nucleotides such as UDP-glucose and / or CDP-choline may be used.
[0150] Furthermore, in a method for producing CDP-choline glycosides by fermentation, if the microorganism used does not have the ability to produce sugar nucleotides such as UDP-glucose and / or CDP-choline, instead of adding sugar nucleotides such as UDP-glucose and / or CDP-choline to the culture medium, the microorganism having the ability to produce sugar nucleotides such as UDP-glucose and / or CDP-choline may be co-cultured with the microorganism for CDP-choline glycoside production (I) to supply the microorganism with sugar nucleotides such as UDP-glucose and / or CDP-choline.
[0151] Methods for artificially conferring or enhancing the ability to produce sugar nucleotides such as UDP-glucose and / or CDP-choline into a microorganism used as a parent strain include (a) to (e) below, and these known methods can be used individually or in combination. (a) A method of relaxing or releasing at least one mechanism that controls the biosynthetic pathway of sugar nucleotides such as UDP-glucose and / or CDP-choline. (b) A method for enhancing the expression of at least one enzyme involved in the biosynthesis pathway of sugar nucleotides such as UDP-glucose and / or CDP-choline. (c) A method for increasing the copy number of at least one enzyme gene involved in the biosynthesis pathway of sugar nucleotides such as UDP-glucose and / or CDP-choline. (d) A method of weakening or blocking at least one metabolic pathway that branches off from the biosynthetic pathway of sugar nucleotides such as UDP-glucose and / or CDP-choline to metabolites other than the target substance. (e) A method for selecting cell lines that have higher resistance to sugar nucleotides such as UDP-glucose and / or CDP-choline analogs compared to a reference cell line.
[0152] In a method for producing CDP-choline glycosides by fermentation, if the microorganisms used do not have the ability to produce sugar nucleotides such as UDP-glucose and / or CDP-choline, sugar nucleotides such as UDP-glucose and / or CDP-choline may be added to the culture medium. UDP-glucose can be obtained, for example, from Funakoshi Co., Ltd. (product code: 15602), and CDP-choline can be obtained, for example, from Tokyo Chemical Industry Co., Ltd. (product code: C3438).
[0153] When culturing two or more microorganisms in the same culture medium, these microorganisms may be cultured simultaneously, or the remaining microorganisms may be cultured in the medium during or after the cultivation of one microorganism.
[0154] Furthermore, when combining two or more microorganisms to produce CDP-choline glycosides, compounds that serve as substrates for CDP-choline may be added. Also, as described in International Publication No. 2007 / 023830, if the microorganisms only possess a portion of the CDP-choline production activity, two or more microorganisms may be appropriately combined to obtain CDP-choline production activity and used as a biocatalyst with CDP-choline production activity. Note that even if the microorganisms already possess CDP-choline production activity, two or more microorganisms can still be combined.
[0155] Furthermore, if, for example, R in the CDP-choline glycoside represented by the general formula (1) is a hexose residue, the CDP-choline glycoside represented by the general formula (1) can also be produced by transferring sugar from a sugar nucleotide to CDP-choline, and then converting the R structure of the CDP-choline glycoside to a hexose residue through the action of endogenous enzymes of microorganisms, etc.
[0156] Specifically, when R is a fructose residue, glucose is transferred from UDP-Glc to CDP-choline to produce a CDP-choline glucose glycoside. Subsequently, the glucose residue portion of the CDP-choline glucose glycoside is converted to a fructose residue by the action of an enzyme such as isomerase, thereby enabling the production of the CDP-choline glycoside represented by the general formula (1).
[0157] Culturing is usually carried out under aerobic conditions such as shaking culture or deep aeration stirring culture. The culture temperature is preferably 15 to 40°C, and the culture time is usually 5 hours to 7 days. The pH during cultivation is preferably maintained between 3.0 and 9.0. pH adjustment is performed using inorganic or organic acids, alkaline solutions, urea, calcium carbonate, ammonia, etc.
[0158] Furthermore, antibiotics such as ampicillin or tetracycline may be added to the culture medium as needed during cultivation. When culturing microorganisms transformed with an expression vector using an inducible promoter, an inducer may be added to the culture medium as needed.
[0159] For example, when culturing microorganisms transformed with an expression vector using the lac promoter, isopropyl-β-D-thiogalactopyranoside or the like may be added to the culture medium, and when culturing microorganisms transformed with an expression vector using the trp promoter, indoleacrylic acid or the like may be added to the culture medium.
[0160] CDP-choline glycosides can be produced by generating CDP-choline glycosides in the culture through the above cultivation method. The amount of CDP-choline glycoside produced can be quantified using HPLC (for example, the SPD-M20A analyzer manufactured by Shimadzu Corporation) by the method described in [Analysis Examples] below.
[0161] The CDP-choline glycosides can usually be collected from the culture by combining the ion exchange resin method, precipitation method, or other known methods. If CDP-choline glycosides accumulate within the bacterial cells, the CDP-choline glycosides can be collected from the supernatant obtained by, for example, crushing the bacterial cells with ultrasound and removing the cells by centrifugation, using the ion exchange resin method or other methods.
[0162] (II) Method for producing CDP-choline glycosides by enzymatic method A method for producing the CDP-choline glycoside of this disclosure by enzymatic method includes using a culture of a microorganism capable of producing a protein having the activity of transferring sugar from sugar nucleotides to a cytidine residue-containing compound, or a processed product of said culture, as an enzyme source, and placing the substrate or the enzyme source in an aqueous medium to generate the CDP-choline glycoside in the aqueous medium. The production method may also include, for example, generating the CDP-choline glycoside in an aqueous medium, accumulating it, and then collecting the CDP-choline glycoside from the aqueous medium.
[0163] The microorganism used in the enzymatic production of the CDP-choline glycosides of this disclosure (hereinafter referred to as "CDP-choline glycoside production microorganism (II)") is a microorganism capable of producing a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds. The CDP-choline glycoside production microorganism (II) may be any microorganism capable of producing a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds, even if it is a microorganism that originally possesses a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds, or if the reference strain used is cytidine residue-containing In the case of microorganisms that do not originally possess a protein that has the activity to transfer sugar from sugar nucleotides to a compound, a genetically modified microorganism may be used in which a protein that has the activity to transfer sugar from sugar nucleotides to a cytidine residue is artificially conferred to the cytidine residue-containing compound by enhancing the activity of the protein that has the activity to transfer sugar from sugar nucleotides to a cytidine residue-containing compound. Alternatively, a genetically modified microorganism may be used in which a microorganism that originally possesses a protein that has the activity to transfer sugar from sugar nucleotides to a cytidine residue-containing compound has its activity of the protein that has the activity to transfer sugar from sugar nucleotides to a cytidine residue-containing compound is further enhanced.
[0164] More specifically, the microorganism (II) for CDP-choline glycoside production is a genetically modified microorganism in which the activity of the target protein is enhanced, and the "target protein" is a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds, and preferably the "target protein" is an enzyme classified as at least one of the GT2 enzyme and GT28 enzyme in the CAZy classification described above, or at least one selected from [1] to [3] above.
[0165] In a "genetically modified microorganism with enhanced activity of the target protein," if the "target protein" is an enzyme classified as at least one of the GT2 enzyme and GT28 enzyme in the CAZy classification described above, the "target DNA" can be the DNA encoding at least one of the GT2 enzyme and GT28 enzyme in the CAZy classification, specifically the DNA previously exemplified as the DNA encoding E. coli-derived opgH, etc., and the microorganism can be produced by the method described above as a method for producing a "genetically modified microorganism with enhanced activity of the target protein."
[0166] In a "genetically modified microorganism with enhanced activity of the target protein," if the "target protein" is at least one selected from [1] to [3] above, the microorganism can be produced by the method described above as a method for producing a "genetically modified microorganism with enhanced activity of the target protein" by using at least one selected from [4] to [9] above as the "target DNA."
[0167] When using a microorganism capable of producing proteins that have the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds as an enzyme source, this microorganism may also have the ability to produce enzymes (e.g., CCT and pyrG) necessary for generating CDP-choline from its starting substrates, such as CDP-choline, phosphorylcholine, uridine-5'-triphosphate (also called CTP), and UTP.
[0168] Recombinant microorganisms capable of producing proteins that have the activity to transfer sugars from sugar nucleotides to cytidine residue-containing compounds include, for example, BL21(DE3)opgH::kan / pET21a-opgH, which will be described later in the examples.
[0169] The method for culturing microorganisms and the culture medium are the same as those described above in "(I) Method for producing CDP-choline glycosides by fermentation."
[0170] In a method for producing CDP-choline glycosides by enzymatic means, the "enzyme source" is a culture obtained by culturing the genetically modified microorganism of the above embodiment, in which the activity of a protein having the activity to transfer sugar from sugar nucleotides to a cytidine residue-containing compound is enhanced, or a processed product of said culture.
[0171] In this specification, examples of processed products of a culture include concentrates of the culture, dried products of the culture, bacterial cells obtained by centrifuging or filtering the culture, dried products of the bacterial cells, freeze-dried products of the bacterial cells, surfactant-treated products of the bacterial cells, solvent-treated products of the bacterial cells, enzyme-treated products of the bacterial cells, and immobilized products of the bacterial cells, which contain live bacterial cells that have the same function as the culture as an enzyme source, as well as ultrasonically treated products of the bacterial cells, mechanically ground products of the bacterial cells, crude enzyme extracts obtained from the treated bacterial cells, and purified enzymes obtained from the treated bacterial cells.
[0172] Among these, preferred are concentrated cultures, dried cultures, bacterial cells obtained by centrifuging or filtering the culture, dried bacterial cells, freeze-dried bacterial cells, surfactant-treated bacterial cells, solvent-treated bacterial cells, enzyme-treated bacterial cells, and immobilized bacterial cells, which contain live bacterial cells that have the same function as the culture as an enzyme source, as well as ultrasonically treated bacterial cells and mechanically ground bacterial cells. Most preferred are concentrated cultures, dried cultures, bacterial cells obtained by centrifuging or filtering the culture, dried bacterial cells, freeze-dried bacterial cells, surfactant-treated bacterial cells, solvent-treated bacterial cells, enzyme-treated bacterial cells, and immobilized bacterial cells, which contain live bacterial cells that have the same function as the culture as an enzyme source.
[0173] The amount of protein having the activity to transfer sugar from sugar nucleotides to the cytidine residue-containing compound used as an enzyme source is 0.01 mg / L to 10 g / L, preferably 0.1 mg / L to 1 g / L.
[0174] The substrate concentration is preferably 0.1 mM to 10 M, and more preferably 1 mM to 1 M. Examples of substrates include sugar nucleotides and CDP-choline. The substances described in "(I) Method for producing CDP-choline glycosides by fermentation" may be used as the starting material for the substrate. Examples of sugar nucleotides include UDP-Glc, UDP-Gal, GDP-Man, UDP-GlcNAc, UDP-GalNAc, GDP-Fuc, UDP-GlcA, etc., with UDP-Glc being preferred.
[0175] Examples of aqueous media include water, buffers such as phosphates, carbonates, acetates, borates, citrates, and Tris, alcohols such as methanol and ethanol, esters such as ethyl acetate, ketones such as acetone, and amides such as acetamide. In addition, the culture medium of microorganisms used as an enzyme source can be used as an aqueous medium.
[0176] In the reaction for the formation of CDP-choline glycosides, chelating agents such as phytic acid, surfactants, or organic solvents may be added as needed. As surfactants, any surfactant that promotes the formation of CDP-choline may be used, including nonionic surfactants such as polyoxyethylene octadecylamine (e.g., Naimine S-215, manufactured by Nippon Oil & Fats Co., Ltd.), cationic surfactants such as cetyltrimethylammonium bromide or alkyldimethylbenzylammonium chloride (e.g., Cation F2-40E, manufactured by Nippon Oil & Fats Co., Ltd.), anionic surfactants such as lauroyl sarcosinate, and tertiary amines such as alkyldimethylamine (e.g., tertiary amine FB, manufactured by Nippon Oil & Fats Co., Ltd.). One or several surfactants may be used in combination. Surfactants are usually used at a concentration of 0.1 to 50 g / l.
[0177] Examples of organic solvents include xylene, toluene, aliphatic alcohols, acetone, and ethyl acetate, and are typically used at concentrations of 0.1 to 50 ml / l. The CDP-choline production reaction is carried out in an aqueous medium at a pH of 5 to 10, preferably 6 to 8, and at a temperature of 20 to 50°C for 1 to 96 hours. To accelerate the production reaction, adenine, adenosine-5'-monophosphate (AMP), adenosine-5'-triphosphate (ATP), magnesium sulfate, magnesium chloride, etc., may be added. Adenine, AMP, and ATP are typically used at concentrations of 0.01 to 100 mM.
[0178] CDP-choline glycosides generated in an aqueous medium can be quantified and collected by the method described above in "(I) Method for producing CDP-choline glycosides by fermentation."
[0179] [Genetically modified microorganisms in which the activity of the target protein is reduced or absent] In the methods for producing cytidine residue-containing compounds and for suppressing the formation of glycosides of cytidine residue-containing compounds described herein, genetically modified microorganisms may be used. Examples of genetically modified microorganisms include those in which the activity of the target protein is reduced or absent compared to the parent strain, i.e., those in which the activity of transferring sugar from sugar nucleotides to cytidine residue-containing compounds is reduced or absent. Hereinafter, the definition of such microorganisms and the method for producing them will be explained.
[0180] Examples of target proteins in "genetically modified microorganisms in which the activity of the target protein is reduced or absent compared to the parent strain" include proteins described in [Proteins having the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds and DNA encoding said proteins].
[0181] In this specification, "decreased or absent protein activity" may mean that the activity of the protein is reduced or absent compared to the parent strain. Specifically, "decreased or absent protein activity" means that the activity of the protein per cell is reduced or absent compared to the parent strain. The activity of the protein may be reduced to 80% or less, preferably 50% or less, more preferably 30% or less, even more preferably 20% or less, particularly preferably 10% or less, and most preferably 0% compared to the parent strain.
[0182] In genetically modified microorganisms in which the activity of the target protein is reduced or lost, the term "parent strain" in this specification may mean the type strain (i.e., the type strain of the species to which the microorganism belongs) that is the subject of genetic modification and transformation, and strains that have already been modified by a modification other than genetic modification that reduces or loses the activity of the target protein compared to the type strain. The strains exemplified in the above-mentioned description of the <parent strain> may be used, but are not limited thereto. In other words, in one embodiment, the protein activity may be reduced or absent compared to the parent strain.
[0183] In the phrase "protein activity is reduced or absent," "activity" is not limited to the catalytic activity of the protein, but may also refer to the transcription amount (mRNA amount) or translation amount (protein amount) of the gene encoding the protein. The expression level of the gene may be reduced to 80% or less, preferably 50% or less, more preferably 30% or less, even more preferably 20% or less, particularly preferably 10% or less, and most preferably 0%.
[0184] Recombination that reduces protein activity can be achieved, for example, by disrupting part or all of the region of the gene encoding the protein, introducing stop codons, recombining expression regulatory sequences such as promoters or Shine-Dalgano (SD) sequences, manipulating factors involved in expression regulation, introducing mutations into the coding region, or performing mutagenesis to reduce the expression of the gene. These methods are well known.
[0185] Gene disruption can be achieved, for example, by deleting (removing) a gene on a chromosome. Examples include methods using PCR to knock out a specific gene [Baba T. et al., Mol systems Biol (2006)] and methods using homologous recombination systems of lambda phage [Proc. Natl. Acad. Sci. USA, 97, 6640-6645 (2000)].
[0186] A decrease in protein activity can be confirmed by measuring the activity or amount of the protein per cell. A decrease in protein activity can also be confirmed by confirming a decrease in the expression of the gene encoding the protein. A decrease in gene expression can be confirmed by confirming a decrease in the transcription level of the gene or a decrease in the amount of protein expressed by the gene. The decrease in gene transcription can be confirmed by comparing the amount of mRNA transcribed from the gene with that of the parent strain. Methods for evaluating mRNA levels include Northern hybridization and RT-PCR (Molecular Cloning (Cold Spring Harbor Laboratory Press, Cold Spring Harbor (USA), 2001)). The mRNA level may decrease to, for example, 50% or less, 20% or less, 10% or less, 5% or less, or 0% of that of the parent strain.
[0187] The decrease in protein levels can be confirmed by Western blotting using antibodies (Molecular Cloning (Cold Spring Harbor Laboratory Press, Cold Spring Harbor (USA), 2001)). The protein level (e.g., number of molecules per cell) may be reduced to, for example, 50% or less, 20% or less, 10% or less, 5% or less, or 0% of that of the parent strain.
[0188] The disruption of a gene can be confirmed by determining the base sequence, restriction enzyme map, or full length of the gene, depending on the method used for disruption.
[0189] The methods described above for reducing the activity of proteins can be used to reduce the activity of any protein (e.g., by-product enzymes) or to reduce the expression of any gene (e.g., genes encoding those proteins).
[0190] [Method for producing cytidine residue-containing compounds in which the formation of glycosides of cytidine residue compounds is suppressed] The method for producing the cytidine residue-containing compound according to this disclosure comprises preparing a genetically modified microorganism in which the activity of a protein having the activity of transferring sugar from sugar nucleotides to the cytidine residue-containing compound is reduced or absent compared to the activity of the parent strain, and producing the cytidine residue-containing compound in at least one of the culture supernatant and within the bacterial cells using the genetically modified microorganism. The genetically modified microorganism may be one in which the activity of a protein having the activity of transferring sugar from sugar nucleotides to the cytidine residue-containing compound is reduced or absent compared to the activity of the parent strain, and which has the ability to produce the cytidine residue-containing compound.
[0191] The case where the cytidine residue-containing compound is CDP-choline is described in detail below.
[0192] [Method for producing cytidinediphosphate choline] The method for producing CDP-choline according to this disclosure comprises preparing a genetically modified microorganism in which the activity of a protein having the activity of transferring sugar from sugar nucleotides to a cytidine residue-containing compound is reduced or absent compared to the activity of the parent strain, and producing CDP-choline in at least one of the culture supernatant and within the bacterial cells using the genetically modified microorganism.
[0193] The methods for producing CDP-choline according to this disclosure include, specifically, (III) a method for producing CDP-choline by fermentation and (IV) a method for producing CDP-choline by enzymatic means.
[0194] (III) Method for producing CDP-choline by fermentation One method for producing CDP-choline by fermentation involves culturing genetically modified microorganisms, as described below, in a culture medium to generate CDP-choline in the culture. This production method may also include, for example, generating CDP-choline in the culture, accumulating it, and then collecting CDP-choline from the culture.
[0195] The microorganisms used in the production of CDP-choline by fermentation (hereinafter also referred to as "recombinant microorganisms for CDP-choline production (III)") are genetically modified microorganisms in which the activity of a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds is reduced or absent compared to the activity of the parent strain, and which have the ability to produce CDP-choline.
[0196] By using genetically modified microorganisms in which the activity of a protein that transfers sugar from sugar nucleotides to cytidine residues is reduced or absent compared to the parent strain, the formation of CDP-choline glycosides by transferring glucose from UDP-glucose to CDP-choline can be suppressed, thereby enabling the efficient production of CDP-choline.
[0197] Examples of recombinant microorganisms (III) for CDP-choline production include, for example, in the aforementioned "genetically modified microorganisms with reduced or missing activity of the target protein," the "target protein" is a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds, preferably the "target protein" is an enzyme classified as at least one of the GT2 enzyme and GT28 enzyme in the CAZy classification described above, or at least one selected from [1] to [3] above, and is a microorganism capable of producing CDP-choline. Such microorganisms can be produced by the method described above as a method for producing "genetically modified microorganisms with reduced or missing activity of the target protein."
[0198] Recombinant microorganisms for CDP-choline production (III) have the ability to produce CDP-choline; therefore, a microorganism capable of producing CDP-choline is used as the parent strain. The microorganism capable of producing CDP-choline may be a reference strain, or if the reference strain does not have the ability to produce CDP-choline, a strain that has been artificially conferred the ability to produce CDP-choline may be used. Microorganisms that originally have the ability to produce CDP-choline may be further conferred the ability to produce CDP-choline. In addition, as described above in "(I) Method for producing CDP-choline glycosides by fermentation," two or more microorganisms may be combined to produce CDP-choline.
[0199] CDP-choline is synthesized from CTP and phosphorylcholine by choline phosphate cytidyltransferase [EC2.7.7.15] (hereinafter abbreviated as CCT). Microorganisms capable of producing CDP-choline are required to have the activity to produce CTP and phosphorylcholine, and furthermore, to have the activity of CCT.
[0200] Phosphorylcholine is produced from choline and ATP by choline kinase [EC2.7.1.32] (hereinafter abbreviated as CKI). Therefore, microorganisms capable of producing phosphorylcholine are required to possess CKI activity.
[0201] CTP is produced according to the pyrimidine nucleic acid biosynthesis pathway, with orotic acid being generated from aspartic acid and carbamoyl phosphate, and then by cytidine-5'-triphosphate synthetase [EC6.3.4.2] (hereinafter abbreviated as PyrG), which has the activity to produce CTP from UTP via uridine-5'-monophosphate (hereinafter abbreviated as OMP), uridine-5'-diphosphate (hereinafter abbreviated as UDP), and uridine-5'-triphosphate (hereinafter abbreviated as UTP) from UDP. For the efficient synthesis of CTP, carbamoyl phosphate synthase [EC 6.3.5.5] is used to produce carbamoyl phosphate from glutamine, aspartate carbamoyltransferase [EC 2.1.3.2] is used to synthesize N-carbamoylaspartate from carbamoyl phosphate and aspartate, and dihydroorotase [EC 6.3.5.5] is used to produce carbamoylaspartate. [3.5.2.3], dihydroorotate dehydrogenase [EC1.3.5.2] that produces orotate from dihydroorotate, orotate phosphoribosyltransferase [EC2.4.2.10] that has the activity to produce orotidine-5'-monophosphate (hereinafter abbreviated as OMP) from orotate and PRPP, orotidine-5'-monophosphate decarboxylase [EC4.1.1.23] that has the activity to produce uridine-5'-monophosphate (hereinafter abbreviated as UMP) from OMP, and uridine that has the activity to produce uridine from uracil The following are required: phosphorylase [EC2.4.2.3], uridine kinase [EC2.7.1.48] which has the activity to produce UMP from uridine, uridylic acid / cytidylic acid kinase [EC2.7.1.48] which has the activity to produce uridine-5'-diphosphate (hereinafter abbreviated as UDP) from UMP, nucleoside diphosphate kinase [EC2.7.4.6] which has the activity to produce uridine-5'-triphosphate (hereinafter abbreviated as UTP) from UDP, and cytidine-5'-triphosphate synthetase [EC6.3.4.2] which has the activity to produce CTP from UTP.
[0202] While many microorganisms, including E. coli, possess the CTP synthesis pathway, it is preferable that the recombinant microorganisms used in the CDP-choline production method have enhanced activity in these pathways.
[0203] In other words, the parent strain capable of producing CDP-choline used in recombinant microorganisms for CDP-choline production (III) may be a genetically modified microorganism in which the activity of at least one of the enzymes necessary for the CTP synthesis pathway, including PyrG, and at least one of CCT and CKI is enhanced. Such a microorganism is, for example, a genetically modified microorganism in which the activity of the target protein is enhanced, as described above, in which the "target protein" is at least one of the enzymes necessary for the CTP synthesis pathway, including PyrG, and at least one of CCT and CKI.
[0204] Such microorganisms can be produced by the method described above as a method for producing "genetically modified microorganisms with enhanced activity of the target protein," by using DNA encoding at least one of the enzymes necessary for the CTP synthesis pathway, including PyrG, and at least one of CCT and CKI, as the "target DNA."
[0205] Whether a microorganism is capable of producing CDP-choline can be confirmed by culturing the microorganism in a culture medium and detecting CDP-choline using an HPLC (for example, an SPD-M20A analyzer manufactured by Shimadzu Corporation) as described below.
[0206] The culture conditions (aerobic conditions, temperature, time, pH), substances that may be added to the culture medium, and the method of collecting CDP-choline from the culture in "(III) Method for producing CDP-choline by fermentation" are the same as those described above in "(I) Method for producing CDP-choline by fermentation".
[0207] CDP-choline can be produced by generating CDP-choline in the culture through the above cultivation method. The amount of CDP-choline produced can be quantified using HPLC (for example, the SPD-M20A analyzer manufactured by Shimadzu Corporation) by the method described in [Analysis Examples] below.
[0208] CDP-choline can usually be collected from the culture by combining the ion exchange resin method, precipitation method, or other known methods. If CDP-choline accumulates within the bacterial cells, for example, the bacterial cells can be disrupted using ultrasound, and the cells can be removed by centrifugation. CDP-choline can then be collected from the supernatant obtained by the ion exchange resin method or other methods.
[0209] (IV) Method for producing CDP-choline by enzymatic method One example of a method for producing CDP-choline by enzymatic means is to include, for instance, a method for producing CDP-choline in which a culture of a genetically modified microorganism described below, or a processed product of said culture, is placed in an aqueous medium together with a substrate or said enzyme source, and CDP-choline is produced in the aqueous medium.
[0210] The microorganisms used in the enzymatic production of CDP-choline (hereinafter also referred to as "recombinant microorganisms for CDP-choline production (IV)") are microorganisms in which the activity of a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds is reduced or absent compared to the activity of the parent strain.
[0211] When using cultures of recombinant microorganisms and processed products of said cultures as enzyme sources for the reaction that produces CDP-choline, using genetically modified microorganisms in which the activity of a protein that has the activity of transferring sugar from sugar nucleotides to cytidine residue-containing compounds is reduced or absent compared to the activity of the parent strain, the production of CDP-choline glycosides by transferring glucose from UDP-glucose to CDP-choline can be suppressed, thereby enabling the efficient production of CDP-choline.
[0212] Examples of recombinant microorganisms (IV) for CDP-choline production include, for example, the "genetically modified microorganisms with reduced or missing activity of the target protein" described above, in which the "target protein" is a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds, and preferably the "target protein" is an enzyme classified as at least one of the GT2 enzyme and GT28 enzyme in the CAZy classification described above, or at least one selected from [1] to [3] above. Such microorganisms can be produced by the method described above as a method for producing "genetically modified microorganisms with reduced or missing activity of the target protein".
[0213] In a method for producing CDP-choline by enzymatic means, the "enzyme source" is a culture obtained by culturing the genetically modified microorganism of this embodiment described above, which has the activity of enzymes involved in the CDP-choline biosynthesis pathway, or a processed product of said culture. Examples of enzymes involved in the CDP-choline biosynthesis pathway include pyrG, CCT, and CKI.
[0214] A method for producing recombinant microorganisms (IV) for CDP-choline production may include, for example, when producing CDP-choline using CTP and phosphorylcholine as substrates, if the recombinant microorganism capable of producing a protein having CCT activity as an enzyme source is a microorganism that originally possesses the activity of a protein having the activity of transferring sugar from sugar nucleotides to cytidine residue-containing compounds, then the amount of the protein having the activity of transferring sugar from sugar nucleotides to cytidine residue-containing compounds may be reduced or deleted compared to the parent strain. An enzymatic method for producing CDP-choline may include placing a culture of this microorganism or a processed product of the culture, along with the substrates CTP and phosphorylcholine, in an aqueous medium to produce CDP-choline, accumulating the mixture, and then collecting the CDP-choline from the aqueous medium. A genetically modified microorganism in which the activity of a protein having the activity of transferring sugar from sugar nucleotides to a cytidine residue-containing compound is reduced or absent compared to the parent strain, and which can be used as an enzyme source for the CDP-choline production reaction, may be a recombinant microorganism capable of producing the above-mentioned CCT activity protein, or, when other substrates are used, may be a recombinant microorganism capable of producing a protein having enzyme activity that can react with said substrate.
[0215] The method for culturing microorganisms and the culture medium are the same as those described above in "(I) Method for producing CDP-choline glycosides by fermentation." The treatment of the culture and the reaction conditions are the same as those described above in "(II) Method for producing CDP-choline glycosides by enzymatic method".
[0216] CDP-choline generated in an aqueous medium can be quantified and collected by the method described above in "(III) Method for producing CDP-choline by fermentation".
[0217] [Method for suppressing the formation of glycosides of cytidine residue-containing compounds] The method for suppressing the formation of glycosides of cytidine residue-containing compounds according to this disclosure includes preparing a genetically modified microorganism in which the activity of a protein having the activity of transferring sugar from sugar nucleotides to cytidine residue-containing compounds is reduced or absent compared to the activity of the parent strain. The above-mentioned genetically modified microorganism may be a genetically modified microorganism in which the activity of a protein having the activity of transferring sugar from sugar nucleotides to cytidine residue-containing compounds is reduced or absent compared to the activity of the parent strain, and which has the ability to produce cytidine residue-containing compounds. Microorganisms used to suppress the formation of glycosides of cytidine residue-containing compounds are also called "recombinant microorganisms for suppressing the formation of glycosides of cytidine residue-containing compounds."
[0218] The reduced or absent activity of transferring sugar from sugar nucleotides in genetically modified microorganisms can be confirmed, for example, by comparing the sugar-nucleotide-to-sugar transfer activity of the genetically modified microorganism with that of a control microorganism that has not been modified to reduce this activity. Specifically, each microorganism is cultured, and to confirm the activity of a suitable substrate and sugar donor, for example, a protein transferring glucose from UDP-glucose to CDP-choline, CDP-choline and UDP-glucose are supplied to produce CDP-choline glucose glycosides. Finally, the amount of CDP-choline glucose glycoside produced in the reaction solution is analyzed using the analytical method described in the [Analysis Example] below, and by comparing the amount of CDP-choline glucose glycoside produced in the genetically modified microorganism with that produced in a control microorganism that has not been modified to reduce its activity, it can be confirmed that the activity of transferring sugar from sugar nucleotides is reduced or absent in the genetically modified microorganism.
[0219] Examples of "recombinant microorganisms for suppressing the formation of glycosides of cytidine residue-containing compounds" include, in the aforementioned "genetically modified microorganisms in which the activity of the target protein is reduced or deleted," the "target protein" is a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds, and preferably the "target protein" is an enzyme classified as at least one of the GT2 enzyme and GT28 enzyme in the CAZy classification described above, or a microorganism in which at least one of the above [1] to [3] is selected. Such microorganisms can be produced by the method described above as a method for producing "genetically modified microorganisms in which the activity of the target protein is reduced or deleted."
[0220] Furthermore, in this disclosure, "suppressing the formation of glycosides of cytidine residue-containing compounds" may also mean that the ratio of CDP-choline glycosides to the amount of CDP-choline in a composition containing CDP-choline, produced using a genetically modified microorganism in which the activity of the target protein is reduced or lost, falls below a certain value. In this specification, a composition produced using recombinant microorganisms for inhibiting the formation of glycosides of cytidine residue-containing compounds is also referred to as CDP-choline-containing composition B. "CDP-choline-containing composition B" in this disclosure means any composition that contains CDP-choline, and may further contain CDP-choline glycosides. CDP-choline-containing composition B may be a culture obtained by culturing genetically modified microorganisms in a culture medium to produce CDP-choline by the fermentation method described in "(III) Method for producing CDP-choline by fermentation" above, or a purified version of said culture, or it may be an aqueous medium obtained by producing CDP-choline by the enzymatic method described in "(IV) Method for producing CDP-choline by enzymatic method," or a purified version of said aqueous medium. "Purification" here refers to the operation of removing any composition other than CDP-choline and CDP-choline glycosides from the culture or aqueous medium containing CDP-choline or CDP-choline and CDP-choline glycosides.
[0221] The composition B produced by the method of this embodiment preferably has an abundance ratio (e.g., can be evaluated by the HPLC peak intensity ratio) of the amount of CDP-choline glycoside produced to the amount of CDP-choline produced in composition B of 35% or less, 30% or less, 25% or less, 20% or less, 15% or less, 10% or less, 5% or less, 3% or less, or 1% or less, with no particular lower limit, but preferably 0.0005%. The amount of CDP-choline glycoside produced depends on the amount of UDP-Glc, which is the substrate, under the same conditions as the type and amount of recombinant microorganisms used to suppress the production of glycosides of cytidine residue-containing compounds. When there is a sufficient amount of UDP-Glc, the amount of CDP-choline glycoside produced tends to be high, and when there is a deficiency of UDP-Glc, the amount of CDP-choline glycoside produced also tends to decrease.
[0222] The "recombinant microorganism for suppressing the production of glycosides of cytidine residue-containing compounds" is not particularly limited, but it is preferable that it has the ability to produce cytidine residue-containing compounds. The microorganism having the ability to produce cytidine residue-containing compounds may be a reference strain, or if the reference strain does not have the ability to produce cytidine residue-containing compounds, it may be a strain that has been artificially given the ability to produce cytidine residue-containing compounds. Microorganisms that originally have the ability to produce cytidine residue-containing compounds may be further given the ability to produce cytidine residue-containing compounds. For example, a microorganism having the ability to produce cytidine diphosphate choline, which is a cytidine residue-containing compound, can be the genetically modified microorganism described above in [Method for producing cytidine diphosphate choline].
[0223] The suppression of glycoside formation of cytidine residue-containing compounds can be confirmed by culturing the microorganism in a culture medium, detecting and quantifying the glycosides of cytidine residue-containing compounds using the aforementioned HPLC (for example, the SPD-M20A analyzer manufactured by Shimadzu Corporation), and comparing them with those of the parent strain.
[0224] In the method for suppressing the formation of glycosides of cytidine residue-containing compounds according to this disclosure, the glycoside of the cytidine residue-containing compound is preferably a CDP-choline glycoside, and more preferably a CDP-choline glucose glycoside.
[0225] As explained above, the following matters are disclosed in this specification. < <1> > A cytidine diphosphate choline glycoside represented by the following general formula (1), its salt, its N-oxide, or its solvate.
[0226] [ka]
[0227] (In formula (1), R is a sugar residue.)
[0228] < <2> > The cytidine diphosphate choline glycoside is the cytidine diphosphate choline glucose glycoside represented by the following general formula (2), as described above. <1> The cytidine diphosphate choline glycosides, salts thereof, N-oxides thereof, or solvates thereof as described above.
[0229] [ka]
[0230] < <3> > Above< <1> >or< <2> A composition containing at least one of the cytidinediphosphate choline glycoside, its salt, its N-oxide, and its solvate. < <4> A method for producing glycosides of cytidine residue-containing compounds using a protein that has the activity to transfer sugar from sugar nucleotides to a cytidine residue-containing compound. < <5> > The glycoside of the cytidine residue-containing compound is the above < <1> >or< <2> The cytidine diphosphate choline glycoside described above <4> A method for producing glycosides of cytidine residue-containing compounds as described above. <<6>> The method for producing a glycoside of the cytidine residue-containing compound according to <<4>> or <<5>> above, wherein the protein having an activity of transferring a sugar from a sugar nucleotide to the cytidine residue-containing compound is an enzyme classified into at least one of GT2 enzyme and GT28 enzyme in the CAZy classification. <<7>> The method for producing a glycoside of the cytidine residue-containing compound according to <<4>> or <<5>> above, wherein the protein having an activity of transferring a sugar from a sugar nucleotide to the cytidine residue-containing compound is at least any one selected from the following [1] to [3]. [1] A protein containing the amino acid sequence represented by SEQ ID NO: 8 or 10. [2] A mutant protein containing an amino acid sequence in which 1 to 20 amino acids are deleted, substituted, inserted or added in the amino acid sequence represented by SEQ ID NO: 8 or 10, and having an activity of transferring a sugar from a sugar nucleotide to a cytidine residue-containing compound. [3] A homologous protein containing an amino acid sequence having 60% or more identity with the amino acid sequence represented by SEQ ID NO: 8 or 10, and having an activity of transferring a sugar from a sugar nucleotide to a cytidine residue-containing compound. <<8>> The following genetically modified microorganism of (A) or (B). (A) A genetically modified microorganism having an activity of a protein having an activity of transferring a sugar from a sugar nucleotide to a cytidine residue-containing compound reduced or lost as compared with the activity of the parent strain, and having a production ability of a cytidine residue-containing compound. (B) A genetically modified microorganism having an activity of a protein having an activity of transferring a sugar from a sugar nucleotide to a cytidine residue-containing compound reduced or lost as compared with the activity of the parent strain. <<9>> The genetically modified microorganism according to <<8>> above, wherein the cytidine residue-containing compound is cytidine diphosphate choline. <<10>> The genetically modified microorganism according to < <8>> or <<9>> above, wherein the protein having an activity of transferring a sugar from a sugar nucleotide to the cytidine residue-containing compound is at least any one selected from the following [1] to [3]. [1] A protein comprising the amino acid sequence represented by SEQ ID NO: 8 or 10. [2] A mutant protein comprising an amino acid sequence in which 1 to 20 amino acids are deleted, substituted, inserted or added in the amino acid sequence represented by SEQ ID NO: 8 or 10, and having an activity of transferring a sugar from a sugar nucleotide to a cytidine residue-containing compound. [3] A homologous protein comprising an amino acid sequence having 60% or more identity with the amino acid sequence represented by SEQ ID NO: 8 or 10, and having an activity of transferring a sugar from a sugar nucleotide to a cytidine residue-containing compound. <<11>> The genetically modified microorganism according to <<8>> or <<9>> above, wherein the protein having an activity of transferring a sugar from a sugar nucleotide to the cytidine residue-containing compound is an enzyme classified into at least one of GT2 enzyme and GT28 enzyme in the CAZy classification. <<12>> The genetically modified microorganism according to any one of <<8>> to <<11>> above, wherein the protein having an activity of transferring a sugar from a sugar nucleotide to the cytidine residue-containing compound is Glucans biosynthesis glucosyltransferase H. <<13>> The genetically modified microorganism according to any one of <<8>> to <<12>> above, wherein the genetically modified microorganism is Escherichia coli. <<14>> A method for producing a cytidine residue-containing compound, comprising preparing the genetically modified microorganism according to any one of <<8>> to <<13>> above, and producing a cytidine residue-containing compound in at least one of the culture supernatant and the microbial cells using the genetically modified microorganism. <<15>> The method for producing a cytidine residue-containing compound according to <<14>> above, wherein the cytidine residue-containing compound is cytidine diphosphate choline. <<16>> A method for suppressing the production of a glycoside of a cytidine residue-containing compound, comprising preparing the genetically modified microorganism according to any one of <<8>> to <<13>> above. < <17> > The glycoside of the cytidine residue-containing compound is the cytidine diphosphate choline glycoside described in the following general formula (1), as described above. <16> A method for suppressing the formation of glycosides of cytidine residue-containing compounds as described above.
[0231] [ka]
[0232] (In formula (1), R is a sugar residue.)
[0233] < <18> > Above< <8> >~< <13> A composition comprising cytidinediphosphate choline produced using a genetically modified microorganism described in any one of the above, wherein the ratio of the amount of cytidinediphosphate choline glycoside produced to the amount of cytidinediphosphate choline produced is 35% or less. < <19> > Above< <8> >~< <13> >Prepare a genetically modified microorganism according to any one of the items, This includes producing a composition using the aforementioned microorganisms, In the above composition, the ratio of cytidinediphosphate choline glycosides to cytidinediphosphate choline is 35% or less. A method for producing a composition. < <20> The ratio of the amount of cytidinediphosphate choline glycoside produced to the amount of cytidinediphosphate choline produced is between 0.0005% and 35%. <18> The composition described above. < <21> > In the above composition, the ratio of cytidinediphosphate choline glycosides to cytidinediphosphate choline is 0.0005% or more and 35% or less. <19> A method for producing the composition described above. [Examples]
[0234] The present invention will be specifically described below with reference to examples, but the present invention is not limited to the following examples unless it exceeds the gist of the invention.
[0235] [Example of analysis] In the examples, CDP-choline and CDP-choline glycosides were analyzed using a Shimadzu SPD-M20A analyzer under the following conditions. ·Analysis conditions Column: Shodex Asahipak Analysis temperature: 50℃ Flow rate: 0.5ml / min Eluent composition: 30 mM potassium dihydrogen phosphate / 10% acetonitrile (pH 3.5) Detector: SPD-M20A
[0236] [Example 1] Creation of opgH-nonexpressing strains (1) The opgH gene was disrupted using Escherichia coli BL21(DE3) strain (Novagen) as the host. For the disruption, the kanamycin resistance gene cassette, including the upstream and downstream of opgH, was amplified using the genomic DNA of an opgH disruption strain from the KEIO collection (Baba T. et al. (2006) Mol Systems Biol, doi:10.1038 / msb4100050.) as a template and primers SEQ ID NO: 1 and SEQ ID NO: 2.
[0237] Using this fragment, the opgH gene of the BL21(DE3) strain was disrupted using the Lambda-Red recombination system (Datsenko KA and Wanner BL (2000) Proc NatlAcad Sci USA 97:6640-6645). Specifically, the pKD46 plasmid was introduced into the BL21(DE3) strain, and this strain was cultured in the presence of arabinose to express the λ phage-derived recombinant enzyme on pKD46. A kanamycin resistance gene cassette containing the upper and lower regions of opgH was then introduced by electroporation, and an opgH knockout strain was obtained by selection in the presence of kanamycin. The obtained opgH knockout strain was cultured at 37°C to remove pKD46, resulting in a loss of the opgH gene and the acquisition of an opgH-non-expressing strain (BL21 (DE3) opgH::kan) in which opgH was not expressed.
[0238] [Example 2] Creation of opgH expression plasmid A plasmid for expressing the opgH gene (SEQ ID NO: 3) of Escherichia coli was prepared by the following procedure. An opgH gene fragment was obtained by amplifying genomic DNA of Escherichia coli using primers of SEQ ID NO: 4 and SEQ ID NO: 5 as a template. Next, PCR was performed using plasmid pET21a (Novagen) as a template with primers of SEQ ID NO: 6 and SEQ ID NO: 7. Using the obtained fragment and the Escherichia coli opgH gene fragment prepared previously, the expression plasmid pET21a-opgH was obtained by ligation using an In-Fusion HD Cloning Kit (manufactured by Takara Bio Inc.).
[0239] [Example 3] Generation of opgH non-expression strain and opgH expression strain For the opgH non-expression strain (BL21 (DE3) opgH::kan) obtained in Example 1, one strain was transformed by electroporation using pET21a, which is an empty vector, as a control, and the other strain was transformed by electroporation using the opgH expression plasmid (pET21a-opgH) constructed in Example 2, and selected with ampicillin. Thus, an opgH non-expression strain into which an empty vector had been introduced (BL21 (DE3) opgH::kan / pET21a) and an opgH expression strain into which an opgH expression plasmid had been introduced (BL21 (DE3) opgH::kan / pET21a-opgH) were obtained.
[0240] [Example 4] Evaluation of the effect of the presence or absence of opgH expression on the amounts of CDP-choline and CDP-choline glycosides The above-mentioned BL21(DE3)opgH::kan / pET21a and BL21(DE3)opgH::kan / pET21a-opgH were inoculated into a large test tube containing 5 ml of LB medium [bactotryptone (Difco) 10 g / l, yeast extract (Difco) 5 g / l, sodium chloride 10 g / l] containing 100 mg / ml ampicillin, and incubated at 30°C for 16 hours. 500 μL of this culture solution was inoculated into a baffled Erlenmeyer flask containing 50 ml of TB+Glc medium [bactotryptone (Difco) 12 g / L, yeast extract (Difco) 24 g / L, glucose 10 g / L, potassium dihydrogen phosphate 2.31 g / L, dipotassium monohydrogen phosphate 12.54 g / L] containing 100 mg / ml ampicillin, and incubated at 30°C at 220 rpm for 24 hours. Two hours after the start of culture, IPTG was added to a final concentration of 0.1 mM. 50 ml of the culture solution was centrifuged to obtain wet cells. 50 ml of the culture solution of each strain was suspended in 5 ml of suspension buffer (50 mM phosphate buffer (pH 7.0)) and sonication was performed. After sonication, the cells were centrifuged at 5,800 × g for 10 minutes to precipitate undisrupted cells, and the supernatant was collected. The protein content of the supernatant was quantified using the Bradford method and used in the reaction.
[0241] The reaction was carried out by adding the aforementioned supernatant protein solution to a reaction mixture containing 100 mM Tris-HCl (pH 8.0) (manufactured by Fujifilm Wako Pure Chemical Industries), 10 mM CDP-choline (manufactured by Kyowa Hakko Bio Co., Ltd.), and 10 mM UDP-glucose (manufactured by Sigma-Aldrich Corporation) so that the total soluble protein concentration reached a final level of 1 mg / ml, and allowing the mixture to stand at 30°C. After 16 hours from the start of the reaction, the reaction was stopped by heating at 99°C for 10 minutes, and the amounts of CDP-choline and CDP-choline glycosides were analyzed using the method described in [Analysis Example] with an analyzer SPD-M20A manufactured by Shimadzu Corporation.
[0242] The results are shown in Table 1. As shown in Table 1, it was demonstrated that CDP-choline glycosides were produced from CDP-choline in opgH-expressing strains. On the other hand, no CDP-choline glycoside production was observed in strains in which opgH was disrupted.
[0243] [Table 1]
[0244] Therefore, it was revealed that when microorganisms express the E. coli enzyme opgH, CDP-choline is transglycosylated from UDP-glucose, producing CDP-choline glycosides, and that the production of CDP-choline glycosides is suppressed when microorganisms do not express opgH. This finding is thought to contribute to the production and suppression of CDP-choline glycosides.
[0245] [Example 5] Use of opgH-non-expressing strains in CDP-choline production Microorganisms capable of producing CDP-choline are manufactured using Escherichia coli as a host, based on known methods described in Applied Microbiological Biotechnology, 101: 2017, 1409-1417, etc. These CDP-choline-producing microorganisms are opgH-expressing strains. Using these microorganisms as a host, genetically modified microorganisms with reduced or deleted opgH activity, i.e., opgH-non-expressing strains, are created. When these opgH-non-expressing strains are cultured and the culture medium is analyzed after the culture period, it can be confirmed that CDP-choline production and the generation of CDP-choline glycosides are suppressed. When using an opgH-expressing strain, the ratio of CDP-choline glycosides to the amount of CDP-choline produced is 36%, but when using an opgH-non-expressing strain, the ratio of CDP-choline glycosides to the amount of CDP-choline is 0%. In another embodiment, when an opgH-expressing strain was used, the ratio of CDP-choline glycosides to the amount of CDP-choline produced was 4.3%, but when an opgH-non-expressing strain was used, the ratio of CDP-choline glycosides to the amount of CDP-choline was 0%.
[0246] In other words, in the production of cytidine residue-containing compounds, it is shown that the formation of glycosides of cytidine residue-containing compounds can be suppressed in strains in which the activity of opgH, a protein that has the activity to transfer sugar from sugar nucleotides to cytidine residue-containing compounds, is reduced or absent compared to the parent strain. This demonstrates that CDP-choline can be efficiently produced by using a strain in which the activity of a protein that has the activity to transfer sugar from sugar nucleotides to a cytidine residue-containing compound is reduced or absent compared to the parent strain.
[0247] [Example 6] Structural analysis of CDP-choline glycoside CDP-choline glycosides were produced using the method described in Example 4, and then separated and purified by HPLC according to the analytical method shown in the analytical example. Based on the retention time of the HPLC analysis, the compound to be analyzed was named RT22.
[0248] The conditions for direct introduction-mass spectrometry (DI-MS) and nuclear magnetic resonance spectrometry (NMR), which will be discussed later, are described below. ·Direct introduction - mass spectrometry (DI-MS) Liquid Chromatography Section Equipment: Waters ACQUITY UPLC model Mobile phase: Water: Acetonitrile = 1:1 Flow rate: 0.2ml / min
[0249] Mass spectrometry department Equipment: Waters SynaptG2-S model Ionization method: Electrospray ionization method Measurement modes: Positive mode and negative mode Measurement mass range: m / z 50~1000
[0250] ·Nuclear magnetic resonance analysis (NMR) Equipment: Bruker BioSpin AVANCE 500 radionuclides: 1 H, 13 C Measurements: 1D-TOCSY, COSY, HMQC, HMBC, DEPT Solvent: Heavy water Standard: TSP (trimethylsilylpropanoate) was set to 0 ppm (internal standard). Frequency: 500MHz
[0251] 6-1. Estimation of the Molecular Formula To determine the molecular formula of RT22, direct introduction-mass spectrometry (DI-MS) was performed. The results showed that the mass difference between the ions detected in ESI positive mode and ESI negative mode (m / z 651 and m / z 649) was 2, indicating that the former is a protonated molecule ([M+H] + ), the latter being a deprotonated molecule ([MH] - It was estimated that the molecular formula is C. 20 H 36 N4O 16 It was estimated to be P2.
[0252] 6-2. Structural estimation by MS / MS measurement To investigate the structure of RT22, MS / MS analysis was performed on RT22 (molecular weight: 650) and citicoline (molecular weight: 488). The results showed similar patterns of product ions below m / z 489, suggesting that RT22 possesses a citicoline skeleton. Furthermore, the composition was estimated based on the mass difference of 162 between m / z 489 and m / z 651, which indicated C6H 10 Since O5 was identified as a candidate, RT22 was presumed to have a structure in which a monosaccharide is attached to the citicoline skeleton.
[0253] 6-3.Nuclear magnetic resonance analysis Based on the evaluation of the 1H-NMR and 13C-NMR spectra of RT22, the following structure was inferred.
[0254] [ka]
[0255] From the results of the 1D-TOSCY spectrum, when the signal supported by the 1-position of the monosaccharide was selectively excited, signals estimated to be at the 2-6 positions were detected, supporting the presence of the monosaccharide. Also, as a result of analyzing signals other than the monosaccharide, there was no contradiction as the choline skeleton. Also, when performing an analysis of the long-range correlation in the HMBC spectrum, there was a long-range correlation between the signal A of the monosaccharide and the signal B of the choline skeleton, suggesting that they are connected within a few bonds, and the connection was estimated as follows.
[0256] [Chemical formula]
[0257] 1H-NMR (D2O) δ ppm: δ = 8.10 (1H, d, J = 8.0 Hz), 6.26 (1H, d, J = 8.0 Hz), 6.22 (1H, d, J = 4.5 Hz), 4.66 (1H, d, J = 8.0 Hz), 4.54 (1H, t, J = 4.8 Hz), 4.49 (1H, t, J = 5.0 Hz), 4.45 - 4.15 (5H, m), 3.80 - 3.60 (4H, m), 3.55 - 3.30 (4H, m), 3.23 (9H, s)
[0258] 13C-NMR (D2O) δ ppm: 164.7, 154.8, 146.5, 106.0, 98.8, 91.0, 85.9, 84.8, 78.9, 78.4, 76.1, 72.2, 71.8, 68.9, 67.5, 63.4, 62.9, 56.9 ESI+MS m / z 651 ([M+H] + ) ESI-MS m / z 649 ([M-H] - )
[0259] It is clear to those skilled in the art that various modifications or alterations can be conceived within the scope of the claims, and these will naturally fall within the technical scope of the present invention. Furthermore, the components of the above embodiments may be combined in any way without departing from the spirit of the invention.
[0260] This application is based on Japanese Patent Application No. 2024-062224, filed on April 8, 2024, the contents of which are incorporated herein by reference. [Sequence Listing Free Text]
[0261] Sequence ID 1: Base sequence of primer Fw for amplifying the opgH disruption fragment Sequence ID 2: Base sequence of primer Rv for opgH disruption fragment amplification Sequence ID 3: Nucleotide sequence of opgH from Escherichia coli (Accession No.: CP081489.1 2449812-2452352) Sequence ID 4: Base sequence of primer Fw for opgH fragment amplification Sequence ID 5: Base sequence of primer Rv for opgH fragment amplification Sequence ID 6: Base sequence of primer Fw for amplifying the pET21a fragment Sequence ID 7: Base sequence of primer Rv for amplifying pET21a fragment Sequence ID 8: Amino acid sequence of opgH derived from Escherichia coli (Accession No.: WP_001295445.1) Sequence ID 9: Base sequence of UgtP from Bacillus subtilis (Accession No.: NC_000964.3 2306514-2307662) Sequence ID 10: Amino acid sequence of UgtP from Bacillus subtilis (Accession No.: NP_390075.1)
Claims
1. A cytidine diphosphate choline glycoside represented by the following general formula (1), its salt, its N-oxide, or its solvate. 【Chemistry 1】 (In formula (1), R is a sugar residue.)
2. The cytidinediphosphate choline glycoside according to claim 1, wherein the cytidinediphosphate choline glycoside is a cytidinediphosphate choline glucose glycoside represented by the following general formula (2), a salt thereof, its N-oxide, or its solvate. 【Chemistry 2】
3. A composition containing at least one of the cytidinediphosphate choline glycoside, a salt thereof, its N-oxide, and its solvate, as described in claim 1 or 2.
Citation Information
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