Method for producing aromatic compounds

By enhancing the expression of multi-pass transmembrane polypeptides in transformed cells, the production of aromatic compounds like gallic acid and protocatechuic acid is improved, addressing inefficiencies in existing methods and achieving efficient, low-impact fermentation.

JP7839081B2Active Publication Date: 2026-04-01KAO CORP
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Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-12-07
Publication Date
2026-04-01

AI Technical Summary

Technical Problem

Existing methods for producing aromatic compounds such as gallic acid from glucose using microorganisms like Corynebacterium glutamicum are inefficient, and multi-pass transmembrane polypeptides belonging to the MFS family have not been shown to enhance productivity.

Method used

Enhancing the expression of multi-pass transmembrane polypeptides in transformed cells, specifically those with amino acid sequences similar to GALT0, GALT1, GALT2, or GALT3, improves the production of aromatic compounds like gallic acid and protocatechuic acid through the shikimic acid pathway.

Benefits of technology

This approach allows for efficient production of aromatic compounds and their salts with a low environmental impact, using a fermentation method that enhances the productivity of compounds like protocatechuic acid, gallic acid, and others.

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Abstract

To provide a method for producing an aromatic compound or a salt thereof using a transformed cell capable of producing an aromatic compound or a salt thereof and the transformed cell.SOLUTION: Provided is a method for producing an aromatic compound or a salt thereof comprising a step of culturing a transformed cell in which expression of a multi-pass transmembrane polypeptide shown in (A) or (B) below is enhanced. (A) Polypeptide consisting of the amino acid sequence shown in SED ID NO: 2. (B) Polypeptide consisting of an amino acid sequence having at least 76% identity with the amino acid sequence shown in SEQ ID NO: 2.SELECTED DRAWING: None
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Description

Technical Field

[0001] The present invention relates to a method for producing an aromatic compound using a transformed cell having the ability to produce an aromatic compound and to the cell.

Background Art

[0002] In recent years, it has been desired to produce useful aromatic compounds such as gallic acid from glucose, which is an inexpensive raw material, using microorganisms. Among them, Corynebacterium glutamicum is a useful industrial microorganism that has been used for the production of various amino acids and nucleic acids. In recent years, gene recombination technology targeting Corynebacterium glutamicum has been established, and various organic compounds such as aromatic amino acids (Non-Patent Document 1) such as tyrosine and tryptophan, gallic acid, 4-hydroxybenzoic acid (Non-Patent Document 1), 4-aminobenzoic acid (Non-Patent Document 2), etc. aromatic compounds can be produced. Among them, gallic acid is used as a raw material for the production of photographic developers and blue inks because of its strong reducing property, and esters such as propyl gallate are used as antioxidants for oils and fats and butter. Furthermore, pyrogallol synthesized by decarboxylating gallic acid is used as an electronic material, an organic synthesis reagent, a photographic developer, a mordant for wool fabrics, etc., so it is beneficial to efficiently produce gallic acid.

[0003] The shikimic acid pathway is an important metabolic pathway by which plants and microorganisms biosynthesize aromatic compounds. Specifically, phosphoenolpyruvic acid produced in glycolysis combines with erythritol 4-phosphate supplied from the pentose phosphate pathway to form 3-deoxy-D-arabinopeptulosonic acid 7-phosphate (DAHP), which then proceeds to 3-dehydroquinic acid (DHQ) and 3-dehydroshikimic acid (DHS) to become shikimic acid. Furthermore, shikimic acid undergoes a phosphate group transfer from adenosine 3-phosphate to become 3-phosphoshikimic acid, which then proceeds to 3-phosphoenolpyruvirshikimic acid and finally to chorismic acid. In the shikimic acid pathway, a six-membered carbon ring is formed, followed by the formation of a double bond. From protocatechuic acid derived from DHS, aromatic compounds such as gallic acid, 2,4-pyridinedicarboxylic acid (2,4-PDCA), 2,5-pyridinedicarboxylic acid (2,5-PDCA), catechol, and L-DOPA are produced (Figure 1). On the other hand, it has been reported that multi-pass transmembrane polypeptides belonging to the MFS family (major facilitator superfamily) include proteins involved in stress resistance and tolerance (Patent Document 1), but these proteins are not known to improve the productivity of aromatic compounds. [Prior art documents] [Patent Documents]

[0004] [Patent Document 1] U.S. Patent No. 6,822,084 [Non-patent literature]

[0005] [Non-Patent Document 1] Metab. Eng. 2018. 50:122-141. [Non-Patent Document 2] Metab. Eng. 2016. 38:322-330. [Disclosure of the Invention] [Problems that the invention aims to solve]

[0006] The present invention relates to a method for producing aromatic compounds or salts thereof using transformed cells capable of producing aromatic compounds or salts thereof, and to providing such transformed cells. [Means for solving the problem]

[0007] The inventors have found that in transformed cells in which the expression of multi-pass transmembrane polypeptides belonging to the MFS family (major facilitator superfamily) is enhanced, the productivity of aromatic compounds, including gallic acid, is improved, and that aromatic compounds or their salts can be efficiently produced using these transformed cells.

[0008] In other words, the present invention relates to the following: 1) A method for producing an aromatic compound or a salt thereof, comprising the step of culturing transformed cells in which the expression of a multi-pass transmembrane polypeptide as shown in (A) or (B) below is enhanced. (A) Polypeptide consisting of the amino acid sequence shown in Sequence ID No. 2 (B) Polypeptide consisting of an amino acid sequence having at least 76% identity with the amino acid sequence shown in Sequence ID No. 2 2) Transformed cells in which the expression of a multi-pass transmembrane polypeptide, as shown in (A) or (B) below, is enhanced, using microbial cells with improved 3-dehydroshikimic acid production activity as the host. (A) Polypeptide consisting of the amino acid sequence shown in Sequence ID No. 2 (B) Polypeptide consisting of an amino acid sequence having at least 76% identity with the amino acid sequence shown in Sequence ID No. 2 [Effects of the Invention]

[0009] According to the present invention, it becomes possible to efficiently produce aromatic compounds such as protocatechuic acid, gallic acid, 2,4-pyridinedicarboxylic acid, 2,5-pyridinedicarboxylic acid, catechol, L-DOPA, 4-hydroxybenzoic acid, and 4-aminobenzoic acid, or their salts, by a fermentation method with low environmental impact. [Brief explanation of the drawing]

[0010] [Figure 1] A schematic diagram showing the production pathways of various aromatic compounds when Corynebacterium is used as a host. In the diagram, aroG and aroF are 2-dehydro-3-deoxyarabinoheptonate aldolase, aroB is 3-dehydroquinate synthase, aroD and qsuC are dehydroquinate dehydratase, qsuD is quinate / shikimate dehydrogenase, aroE3 is shikimate dehydrogenase, hfm145 is 3,4-dihydroxybenzoate hydroxylase, qsuB is dehydroshikimate dehydratase, aroA is 5-enolate pyruvylshikimate-3-phosphate synthase, aroC is colismyate synthase, and aroK is shikimate kinase. [Figure 2] Analysis results from a transmembrane region prediction program. [Modes for carrying out the invention]

[0011] In this invention, the identity of amino acid sequences or nucleotide sequences is calculated by the Lipman-Pearson method (Science, 1985, 227:1435-1441). Specifically, it is calculated by performing the analysis using the homology analysis (Search homology) program of the genetic information processing software GENETYX Ver.12 with a unit size to compare (ktup) of 2.

[0012] In the present invention, "amino acid sequence in which one or more amino acids are deleted, substituted, added, or inserted" means an amino acid sequence in which one to ten, preferably one to eight, more preferably one to five, and even more preferably one to three amino acids are deleted, substituted, added, or inserted. Also, "nucleotide sequence in which one or more nucleotides are deleted, substituted, added, or inserted" means a nucleotide sequence in which one to thirty, preferably one to twenty-four, more preferably one to fifteen, and even more preferably one to nine nucleotides are deleted, substituted, added, or inserted. In the present invention, "addition" of amino acids or nucleotides includes the addition of amino acids or nucleotides to one end and both ends of a sequence.

[0013] In the present invention, "operable linkage" between a regulatory region and a gene means that the gene and the regulatory region are linked in such a way that the gene can be expressed under the control of the regulatory region. The procedure for "operable linkage" between a gene and a regulatory region is well known to those skilled in the art.

[0014] In this invention, the term "original" used in relation to the function, properties, and traits of a cell is used to indicate that such function, property, or trait is present in the wild type of the cell. In contrast, the term "external" is used to indicate a function, property, or trait that is not originally present in the cell but has been introduced from outside. For example, an "external" gene or polynucleotide is a gene or polynucleotide that has been introduced into a cell from outside. The external gene or polynucleotide may originate from the same species of organism as the cell into which it was introduced, or from a different species of organism (i.e., a different gene or polynucleotide).

[0015] In the present invention, an aromatic compound is an organic aromatic compound that is biosynthesized within a host cell, and more specifically, an aromatic compound synthesized via the shikimic acid pathway, preferably an aromatic compound derived from 3-dehydroshikimic acid (DHS) or chorismic acid (Figure 1). Specifically, examples include protocatechuic acid, catechol, gallic acid, phenylalanine, L-DOPA, tyrosine, pretyrosine, tryptophan, 4-hydroxybenzoic acid, 4-aminobenzoic acid, 2,3-dihydroxybenzoic acid, 2,4-pyridinedicarboxylic acid, 2,5-pyridinedicarboxylic acid, 4-amino 3-hydroxybenzoic acid, and the like. Among these, protocatechuic acid derived from DHS; gallic acid, 2,4-pyridinedicarboxylic acid (2,4-PDCA), 2,5-pyridinedicarboxylic acid (2,5-PDCA), catechol, L-DOPA derived from protocatechuic acid; 4-hydroxybenzoic acid, 4-aminobenzoic acid, 4-amino 3-hydroxybenzoic acid, tyrosine, tryptophan, etc. derived from chorismic acid are preferable. More preferably, they are protocatechuic acid, aromatic compounds derived from protocatechuic acid (preferably gallic acid, L-DOPA), 4-hydroxybenzoic acid, 4-amino 3-hydroxybenzoic acid, and more preferably gallic acid.

[0016] Examples of the salt of the aromatic compound include base addition salts, acid addition salts, and the like. Examples of the base addition salts include salts with alkali metals such as sodium and potassium, salts with alkaline earth metals such as calcium and magnesium, etc. Examples of the acid addition salts include mineral acid salts such as hydrochloride, sulfate, nitrate, phosphate, etc. [[ID=*8]]

[0017] In the present invention, the transformed cell is a cell in which the expression of a multiple transmembrane polypeptide represented by the following (A) or (B) is enhanced. (A) A polypeptide consisting of the amino acid sequence shown in SEQ ID NO: 2 <* (B) A polypeptide consisting of an amino acid sequence having at least 76% identity with the amino acid sequence shown in SEQ ID NO: 2 Here, the polypeptide consisting of the amino acid sequence shown in SEQ ID NO: 2 refers to a membrane transport protein belonging to the MFS family derived from Corynebacterium glutamicum (referred to as "GALT0" in the present invention).

[0018] Please note that there seems to be an asterisk added to the ID in the original text for line 13 which was not present in the original. I have left it as it is in the translation for the sake of following the rules. If this is an error, you may want to correct it in the original text before translation. In polypeptide (B), the identity with the amino acid sequence shown in SEQ ID NO: 2 is at least 76%, preferably 70% or more, more preferably 80% or more, more preferably 85% or more, more preferably 90% or more, more preferably 95% or more, more preferably 96% or more, more preferably 97% or more, more preferably 98% or more, and more preferably 99% or more. An example of an amino acid sequence having at least 76% identity with the amino acid sequence shown in Sequence ID No. 2 is an amino acid sequence in which one or more amino acids are deleted, substituted, added, or inserted from the amino acid sequence shown in Sequence ID No. 2.

[0019] Polypeptides (A) and (B) were confirmed to have multiple transmembrane helical structures through analysis using a transmembrane region prediction program, as shown in the reference examples described later, and can be estimated to be "multiple transmembrane polypeptides." Examples of transmembrane region prediction programs include TMHMM Server, v.2.0 (Journal of Molecular Biology, 2001, 305:567-580), DAS-TMfilter (Protein Eng., 2002, Volume 15, Issue 9:745-752), and PRED-TMR2 (Protein Eng., 1999, Volume 12, Issue 8:631-634), which are analysis programs using prediction methods. As shown in the examples described later, in cells into which polynucleotides encoding polypeptides (A) and (B) have been introduced to express these polypeptides, the productivity of aromatic compounds such as gallic acid and protocatechuic acid is improved. Therefore, it is considered that the multi-pass transmembrane polypeptides shown in (A) and (B) possess transporter activity (referred to as "aromatic compound transporter activity") involved in the transport of these aromatic compounds or their salts.

[0020] Examples of multi-pass transmembrane polypeptides consisting of an amino acid sequence having at least 76% identity with the amino acid sequence shown in Sequence ID No. 2 of (B) include the following polypeptides (B1) to (B3). (B1) A polypeptide comprising the amino acid sequence shown in SEQ ID NO: 4 or an amino acid sequence having 90% or more, preferably 92% or more, more preferably 95% or more, more preferably 97% or more, more preferably 98% or more, and more preferably 99% or more identity with said amino acid sequence. (B2) A polypeptide comprising the amino acid sequence shown in SEQ ID NO: 6 or an amino acid sequence having 90% or more, preferably 92% or more, more preferably 95% or more, more preferably 97% or more, more preferably 98% or more, and more preferably 99% or more identity with said amino acid sequence. (B3) A polypeptide comprising the amino acid sequence shown in SEQ ID NO: 8 or an amino acid sequence having 90% or more, preferably 92% or more, more preferably 95% or more, more preferably 97% or more, more preferably 98% or more, and more preferably 99% or more identity with said amino acid sequence.

[0021] Here, the polypeptide consisting of the amino acid sequence shown in Sequence ID No. 4 is a membrane transport protein derived from Corynebacterium crenatum, and is referred to as "GALT1" in this invention. The amino acid sequence identity between GALT1 and GALT0 is 98%. The polypeptide consisting of the amino acid sequence shown in Sequence ID No. 6 is a membrane transport protein derived from Corynebacterium glutamicum and is referred to as "GALT2" in this invention. The amino acid sequence identity between GALT2 and GALT0 is 90%. The polypeptide consisting of the amino acid sequence shown in Sequence ID No. 8 is a membrane transport protein derived from Corynebacterium crudilactis, and is referred to as "GALT3" in this invention. The amino acid sequence identity between GALT3 and GALT0 is 85.4%. In addition, another membrane transport protein belonging to the MFS family is the polypeptide derived from Corynebacterium callunae (DSM 20147) ("GALT4"; amino acid sequence: SEQ ID NO: 10, nucleotide sequence: SEQ ID NO: 9), which has 75.5% amino acid sequence identity with GALT0.

[0022] Methods for introducing mutations such as deletion, substitution, addition, or insertion of amino acids into the amino acid sequence of the above polypeptide include, for example, introducing mutations such as deletion, substitution, addition, or insertion of nucleotides into the nucleotide sequence encoding the amino acid sequence. Methods for introducing mutations into nucleotide sequences include, for example, mutagenesis using chemical mutagens such as ethyl methanesulfonate, N-methyl-N-nitrosoguanidine, and nitrite, or physical mutagens such as ultraviolet light, X-rays, gamma rays, and ion beams, site-directed mutagenesis, and the method described by Dieffenbach et al. (Cold Spring Harbor Laboratory Press, New York, 581-621, 1995). Site-directed mutagenesis methods include Splicing overlap extension (SOE) PCR (Horton et al., Gene 77, 61-68, 1989), ODA method (Hashimoto-Gotoh et al., Gene 152, 271-276, 1995), and Kunkel method (Kunkel, TA, Proc. Natl. Acad. Sci. USA, 1985, 82, 488). Alternatively, there are Site-Directed Mutagenesis System Mutan-SuperExpress Km kits (Takara Bio Inc.) and Transformer TM Commercially available site-directed mutagenesis kits, such as the Site-Directed Mutagenesis Kit (Clonetech) and the KOD-Plus-Mutagenesis Kit (Toyobo), can also be used.

[0023] In the present invention, transformed cells in which the expression of the polypeptide shown in (A) or (B) above is enhanced include not only cells in which the expression level of the polypeptide has increased, but also cells in which the activity of the polypeptide (aromatic compound transporter activity) has been enhanced. Specifically, the transformed cells are cells into which the polynucleotide necessary for the expression of the polypeptide has been introduced so that it can be expressed, and the polypeptide may be foreign or naturally present in the cell. For example, examples include cells into which the polynucleotide has been introduced so that it can be expressed, and cells in which the degree of expression of the polynucleotide has been enhanced. Specifically, examples include cells into which a vector or DNA fragment containing the polynucleotide and a regulatory region operably linked thereto has been introduced, and cells in which the regulatory region of the polynucleotide has been replaced with a strongly regulatory region such as a high-expression promoter or an inductive promoter described later.

[0024] Here, examples of polynucleotides include polynucleotides encoding multi-pass transmembrane polypeptides as shown in (A) or (B) above, and preferably the polynucleotides of (a) or (b) below (these polynucleotides are also referred to as "the polynucleotides of the present invention"). (a) A polynucleotide consisting of the nucleotide sequence shown in Sequence ID No. 1, (b) A polynucleotide comprising a nucleotide sequence having at least 76% identity with the nucleotide sequence shown in Sequence ID No. 1. Here, (a) the polynucleotide consisting of the nucleotide sequence shown in Sequence ID No. 1 refers to the gene (cg3038) that encodes the aforementioned multi-pass transmembrane polypeptide GALT0.

[0025] In the polynucleotide of (b), the identity with the nucleotide sequence shown in SEQ ID NO: 1 is at least 76%, preferably 80% or more, more preferably 85% or more, more preferably 90% or more, more preferably 95% or more, more preferably 96% or more, more preferably 97% or more, more preferably 98% or more, and more preferably 99% or more. An example of a nucleotide sequence having at least 76% identity with the nucleotide sequence shown in SEQ ID NO: 1 is a nucleotide sequence in which one or more nucleotides are deleted, substituted, added, or inserted from the nucleotide sequence shown in SEQ ID NO: 1. The method for introducing mutations such as nucleotide deletion, substitution, addition, or insertion into a nucleotide sequence is as described above. The above polynucleotide may be in single-stranded or double-stranded form, and may be DNA or RNA. The DNA may be artificial DNA such as cDNA or chemosynthetic DNA.

[0026] Examples of polynucleotides consisting of nucleotide sequences having at least 76% identity with the nucleotide sequence shown in Sequence ID No. 1 of (b) include the following polynucleotides (b1) to (b3). (b1) A polynucleotide consisting of the nucleotide sequence shown in SEQ ID NO: 3 or a nucleotide sequence having 90% or more identity with said nucleotide sequence, preferably 92% or more, more preferably 95% or more, more preferably 97% or more, more preferably 98% or more, and more preferably 99% or more. (b2) A polynucleotide consisting of the nucleotide sequence shown in SEQ ID NO: 5 or a nucleotide sequence having 90% or more identity with said nucleotide sequence, preferably 92% or more, more preferably 95% or more, more preferably 97% or more, more preferably 98% or more, and more preferably 99% or more. (b3) A polynucleotide consisting of the nucleotide sequence shown in SEQ ID NO: 7 or a nucleotide sequence having 90% or more identity with said nucleotide sequence, preferably 92% or more, more preferably 95% or more, more preferably 97% or more, more preferably 98% or more, and more preferably 99% or more.

[0027] Here, the polynucleotide consisting of the nucleotide acid sequence shown in SEQ ID NO: 3 is the polynucleotide encoding GALT1, the polynucleotide consisting of the nucleotide sequence shown in SEQ ID NO: 5 is the polynucleotide encoding GALT2, and the polynucleotide consisting of the nucleotide sequence shown in SEQ ID NO: 7 is the polynucleotide encoding GALT3.

[0028] The polynucleotide described above may be incorporated into a vector. Preferably, the vector containing the polynucleotide of the present invention is an expression vector. Also preferably, the vector is an expression vector that can introduce the polynucleotide of the present invention into a host microorganism and express the polynucleotide within the host microorganism. Preferably, the vector includes the polynucleotide of the present invention and a control region operably linked thereto. The vector may be an extrachromosomal vector capable of autonomous growth and replication, such as a plasmid, or it may be a vector incorporated into a chromosome.

[0029] Specific examples of vectors include, for example, pUC vectors such as pBluescript II SK(-) (Stratagene), pUC18 / 19, pUC118 / 119 (Takara Bio), pET vectors (Takara Bio), pGEX vectors (GE Healthcare), pCold vectors (Takara Bio), pHY300PLK (Takara Bio), pUB110 (Mckenzie, T. et al., 1986, Plasmid 15(2):93-103), pBR322 (Takara Bio), pRS403 (Stratagene), pMW218 / 219 (Nippon Gene), pRI vectors such as pRI909 / 910 (Takara Bio), pBI vectors (Clontech), IN3 vectors (Implanta Innovations), pPTR1 / 2 (Takara Bio), and pDJB2 (DJBallance et al.). al., Gene, 36, 321-331, 1985), pAB4-1 (van Hartingsveldt W et al., Mol Gen Genet, 206, 71-75, 1987), pLeu4 (MIGRoncero et al., Gene, 84, 335-343, 1989), pPyr225 (CDSkory et al., Mol Genet Genomics, 268, 397-406, 2002), pFG1 (Gruber, F. et al., Curr Genet, 18, 447-451, 1990), and the like.

[0030] Furthermore, the polynucleotide may be constructed as a DNA fragment containing it. Examples of such DNA fragments include PCR-amplified DNA fragments and restriction enzyme-cleared DNA fragments. Preferably, the DNA fragment may be an expression cassette containing the polynucleotide of the present invention and a regulatory region operably linked thereto.

[0031] The regulatory region contained in the above-mentioned vector or DNA fragment is a sequence for expressing the polynucleotide of the present invention in the host cell into which the vector or DNA fragment has been introduced, and examples include expression regulatory regions such as promoters and terminators, and replication initiation sites. The type of regulatory region can be appropriately selected depending on the type of host microorganism into which the vector or DNA fragment has been introduced. If necessary, the vector or DNA fragment may further contain selection markers such as antibiotic resistance genes and amino acid synthesis-related genes.

[0032] Common transformation methods, such as electroporation, transformation, transfection, conjugation, protoplast, particle gun, and Agrobacterium, can be used to introduce vectors or DNA fragments into host cells.

[0033] Transformed cells into which the target vector or DNA fragment has been introduced can be selected using a selection marker. For example, if the selection marker is an antibiotic resistance gene, cells into which the target vector or DNA fragment has been introduced can be selected by culturing them in a medium containing the antibiotic. Alternatively, if the selection marker is an amino acid synthesis-related gene, cells into which the target vector or DNA fragment has been introduced can be selected after gene transfer into host cells that require the amino acid, using the presence or absence of the amino acid requirement as an indicator. Alternatively, the introduction of the target vector or DNA fragment can be confirmed by examining the DNA sequence of the transformed cells by PCR or other methods.

[0034] Examples of strongly regulatory regions include, but are not limited to, well-known high-expression promoters such as the T7 promoter, lac promoter, tac promoter, trp promoter, tu promoter, and gap promoter. Furthermore, prokaryotic inducible promoters can be used as strongly regulatory regions. Examples include the vanA(cg2616) promoter, which is induced by the addition of ferulic acid, vanillic acid, or vanillin; the rhcH promoter, which is induced by the addition of resorcinol or 2,4-dihydroxybenzoic acid; the pcaI promoter, which is induced by the addition of 4-hydroxybenzoic acid; the nagI(cg3351) gene promoter, which is induced by the addition of 3-hydroxybenzoic acid; the benA(cg2637) gene promoter (hereinafter abbreviated as Pben), which is induced by the addition of benzoic acid; or the cg2118 gene promoter or ptsS(cg2925) gene promoter, which are induced by the addition of either fructose or sucrose. However, the system is not limited to these examples. Methods for replacing the regulatory regions of polynucleotides present on the genome of host cells with strongly regulatory regions include introducing a DNA fragment containing the strongly regulatory region and the polynucleotide sequence of a selection marker into host cells and selecting cells transformed by homologous or non-homologous recombination.

[0035] In the present invention, the host cell can be any cell suitable for the production of aromatic compounds or salts thereof, and may be a microbial cell, a plant cell, or an animal cell, but a microbial cell is preferred. From the viewpoint of the production efficiency of aromatic compounds or their salts, and particularly from the viewpoint of the production efficiency of aromatic compounds derived from 3-dehydroshikimic acid such as protocatechuic acid, gallic acid, shikimic acid, 2,4-pyridinedicarboxylic acid, 2,5-pyridinedicarboxylic acid, catechol, L-DOPA, chorismic acid, 4-hydroxybenzoic acid, 4-aminobenzoic acid, and 4-amino3-hydroxybenzoic acid, or their salts, it is even more preferable to use microbial cells with improved 3-dehydroshikimic acid production activity as the host cells.

[0036] As microbial cells, any of the following may be used: Escherichia coli, Bacillus subtilis, Actinomycetes, Pseudomonas bacteria, Streptococcus bacteria, Lactobacillus bacteria, fungi (Neurospora, Aspergillus, Trichoderma, etc.), yeasts (Saccharomyces, Cliveromyces, Schizosaccharomyces, Yarowia, Trichosporon, Rhodosporidium, Pichia, Candida, etc.). However, prokaryotic cells are preferred, Gram-positive bacteria are more preferred, and Actinomycetes are even more preferred.

[0037] As actinomycetes, a group of microorganisms defined as coryneform bacteria (Bergey's Manual of Determinative Bacteriology, Vol. 8, 599 (1974)) are preferred, specifically including Corynebacterium, Brevibacterium, Arthrobacter, Mycobacterium, Rhodococcus, Streptomyces, and Micrococcus. Examples of Corynebacterium species include Corynebacterium glutamicum, Corynebacterium efficiens, Corynebacterium ammoniagenes, Corynebacterium halotolerance, Corynebacterium alkanolyticum, Corynebacterium crenatum, Corynebacterium crudilactis, and Corynebacterium callunae. Examples of bacteria belonging to the genus Brevibacterium include Brevibacterium ammoniagenes. Examples of Arthrobacter species include Arthrobacter globiformis. Examples of Mycobacterium species include Mycobacterium bovis, while examples of Micrococcus species include Micrococcus freudenreichii, Micrococcus leuteus, Micrococcus ureae, and Micrococcus roseus. Among coryneform bacteria, those of the genus Corynebacterium are preferred, and more preferably Corynebacterium glutamicum. The microbial cells mentioned above may be wild-type, mutant, or genetically modified.

[0038] Microbial cells with improved 3-dehydroshikimic acid production activity include microbial cells in which the genes necessary for producing 3-dehydroshikimic acid have been strengthened. Specifically, these include microbial cells that have undergone one or more of the following genetic modifications: (i), (ii), (iii), and (iv). Preferably, two or more of (i), (ii), (iii), and (iv) have been modified, more preferably three or more, and even more preferably, microbial cells that have undergone all of the following genetic modifications. Here, gene enhancement includes introducing a specific gene in a state where it can be expressed, and introducing mutations into a specific gene or its regulatory region. (i) Enhancement of one or more genes selected from the dehydroshikimate dehydratase gene, dehydroquinate dehydratase gene, quinate dehydrogenase gene, and shikimate dehydrogenase gene. (ii) Enhancement of one or more genes selected from the group of genes involved in the shikimate synthesis pathway, which consists of the 2-dehydro-3-deoxyarabinoheptonate aldolase gene, the 3-dehydroquinate synthase gene, and the shikimate dehydrogenase gene. (iii) Enhancement of one or more genes selected from the group of genes involved in the pentose phosphate pathway, which consists of the glucose-6-phosphate dehydrogenase gene, the 6-phosphogluconolactose gene, the phosphogluconate dehydrogenase gene, the ribose-5-phosphate isomerase gene, the ribulose-5-phosphate-3-epimerase gene, the transketolase gene, and the transaldolase gene. (iv) Enhancement of genes encoding polypeptides with 3,4-dihydroxybenzoate hydroxylase activity.

[0039] The enhanced expression of the multi-pass transmembrane polypeptide indicated by (A) or (B) in the transformed cells can be confirmed, for example, by the increased transcription level of the gene encoding the polypeptide in the transformed cells compared to the host cells (parental cells). The transcription level of the gene can be measured by quantitative PCR for mRNA quantity measurement, RNA-Seq analysis using a next-generation sequencer, DNA microarray analysis, etc. Then, by culturing the transformed cells, evaluating the productivity of aromatic compounds or their salts, and selecting appropriate transformed cells, useful aromatic compound or salt-producing cells can be obtained. The method for measuring the products can be carried out according to the method described in the reference examples below.

[0040] The present invention's method for producing aromatic compounds or salts thereof is carried out by culturing the transformed cells described above, preferably in the presence of sugars, and recovering the target aromatic compound or salt thereof. Glucose is preferred as the sugar, but monosaccharides such as fructose, mannose, arabinose, xylose, and galactose, as well as sugars that can produce glucose through metabolism, can also be used. Such sugars include oligosaccharides or polysaccharides that have glucose units, and examples include disaccharides such as cellobiose, sucrose, lactose, maltose, trehalose, cellobiose, and xylobiose; and polysaccharides such as dextrin or soluble starch. Furthermore, molasses can also be used as a raw material containing these raw material compounds, for example. In addition, saccharified liquids containing multiple sugars such as glucose can be used, obtained by saccharifying non-edible agricultural waste such as straw (rice straw, barley straw, wheat straw, rye straw, oat straw, etc.), bagasse, corn stover, energy crops such as switchgrass, napier grass, miscanthus, wood chips, waste paper, etc., with saccharifying enzymes.

[0041] The culture medium for culturing transformed cells may be either a natural medium or a synthetic medium, as long as it contains a carbon source, a nitrogen source, inorganic salts, etc., and is capable of efficiently culturing the transformed cells of the present invention. As a carbon source, the above-mentioned sugars or molasses or saccharified liquids containing them can be used. In addition to the above-mentioned sugars, sugar alcohols such as mannitol, sorbitol, xylitol, and glycerin; organic acids such as acetic acid, citric acid, lactic acid, fumaric acid, maleic acid, and gluconic acid; alcohols such as ethanol and propanol; and hydrocarbons such as normal paraffin can also be used. The carbon source can be used individually or in mixtures of two or more types. The concentration of sugars, which are the raw material compounds, in the culture medium is preferably 1 to 20 w / v%, more preferably 2 to 10 w / v%, and even more preferably 2 to 5 w / v%.

[0042] As nitrogen sources, for example, peptone, meat extract, yeast extract, casein hydrolysate, soybean meal alkali extract, alkylamines such as methylamine, nitrogen-containing organic compounds such as amino acids, ammonia or its salts (inorganic or organic ammonium compounds such as ammonium chloride, ammonium sulfate, ammonium nitrate, and ammonium acetate), urea, aqueous ammonia, sodium nitrate, potassium nitrate, etc. can be used.

[0043] Examples of inorganic salts include monopotassium phosphate, dipotassium phosphate, magnesium sulfate, sodium chloride, ferrous nitrate, manganese sulfate, zinc sulfate, cobalt sulfate, and calcium carbonate. Furthermore, vitamins and antifoaming agents can be added as needed. Examples of vitamins include biotin, thiamine (vitamin B1), pyridoxine (vitamin B6), pantothenic acid, inositol, and nicotinic acid.

[0044] Examples of culture media for Corynebacteria include Medium A [J. Mol. Microbiol. Biotechnol. 7:182-196 (2004)], Medium BT [J. Mol. Microbiol. Biotechnol. 8:91-103 (2004)], and Medium CGXII [Patent No. 6322576]. These media should be used with sugar concentrations within the above range.

[0045] Prior to reactions or cultures involving sugars, it is preferable to culture the transformants in the same medium under aerobic conditions at a temperature of approximately 25-38°C for approximately 12-48 hours to allow them to grow.

[0046] The culture temperature or reaction temperature is preferably 15 to 45°C, and more preferably 25 to 37°C. Furthermore, the incubation or reaction time can be 24 to 168 hours, preferably 24 to 96 hours, more preferably 24 to 72 hours, while stirring or shaking as necessary. During incubation, antibiotics such as ampicillin or kanamycin may be added to the culture medium as needed. The culture can be carried out using a batch, fed-batch, or continuous method. Of these, the batch method is preferred. The culture or reaction may be carried out under aerobic or reducing conditions, but it is preferable to carry it out under aerobic conditions. When carrying out the reaction or culture under aerobic conditions, it is preferable to do so under conditions that suppress excessive growth of the transformants, from the viewpoint of the efficiency of producing aromatic compounds or their salts. When aromatic compounds are susceptible to oxidation, it is preferable to carry out the culture under conditions with a low dissolved oxygen concentration. For example, in the production of gallic acid, a dissolved oxygen concentration of 0.1 to 3 ppm is preferred, and 0.1 to 1 ppm is more preferred.

[0047] The method for recovering and purifying aromatic compounds or their salts from cultures is not particularly limited. That is, it can be carried out by combining well-known methods such as ion exchange resin methods, precipitation methods, crystallization methods, recrystallization methods, concentration methods, and others. For example, after removing microbial cells by centrifugation or the like, aromatic compounds or their salts can be obtained by removing ionic substances with cation and anion exchange resins and then concentrating the mixture. Aromatic compounds or their salts accumulated in the culture may be used directly without isolation.

[0048] With regard to the embodiments described above, the present invention further discloses the following embodiments. <1> A method for producing an aromatic compound or a salt thereof, comprising the step of culturing transformed cells in which the expression of a multi-pass transmembrane polypeptide as shown in (A) or (B) below is enhanced. (A) Polypeptide consisting of the amino acid sequence shown in Sequence ID No. 2 (B) Polypeptide consisting of an amino acid sequence having at least 76% identity with the amino acid sequence shown in Sequence ID No. 2 <2> A polypeptide consisting of an amino acid sequence having at least 76% identity with the amino acid sequence shown in Sequence ID No. 2 of (B) above is the polypeptide shown in (B1) to (B3) below. <1> Methods used. (B1) Polypeptide consisting of the amino acid sequence shown in Sequence ID No. 4 or an amino acid sequence having 90% or more identity with said amino acid sequence. (B2) Polypeptide consisting of the amino acid sequence shown in Sequence ID No. 6 or an amino acid sequence having 90% or more identity with said amino acid sequence. (B3) Polypeptide consisting of the amino acid sequence shown in Sequence ID No. 8 or an amino acid sequence having 90% or more identity with said amino acid sequence. <3> The polynucleotide comprising a polynucleotide encoding a multi-pass transmembrane polypeptide as described in (A) or (B) above, in an expressible state, <1> or <2> Methods used. <4> A polynucleotide encoding a multi-pass transmembrane polypeptide represented by (A) or (B) is a polynucleotide represented by (a) or (b) below. <3> Methods used. (a) A polynucleotide consisting of the nucleotide sequence shown in Sequence ID No. 1, (b) A polynucleotide comprising a nucleotide sequence having at least 76% identity with the nucleotide sequence shown in Sequence ID No. 1. <5> (b) A polynucleotide consisting of a nucleotide sequence having at least 76% identity with the nucleotide sequence shown in Sequence ID No. 1 is a polynucleotide shown in (b1) to (b3) below. <4> Methods used. (b1) A polynucleotide consisting of the nucleotide sequence shown in Sequence ID No. 3 or a nucleotide sequence having 90% or more identity with said nucleotide sequence. (b2) A polynucleotide consisting of the nucleotide sequence shown in Sequence ID No. 5 or a nucleotide sequence having 90% or more identity with said nucleotide sequence. (b3) A polynucleotide consisting of the nucleotide sequence shown in Sequence ID No. 7 or a nucleotide sequence having 90% or more identity with said nucleotide sequence. <6> It is cultured in the presence of sugars. <1> ~ <5> One of the methods described above. <7> The host of the transformed cells is a microbial cell with enhanced 3-dehydroshikimic acid production activity. <1> ~ <6> One of the methods described above. <8> Microbial cells with improved 3-dehydroshikimic acid production activity are cells that have undergone one or more of the following genetic modifications: (i), (ii), (iii), and (iv). <7> Methods used. (i) Enhancement of one or more genes selected from the dehydroshikimate dehydratase gene, dehydroquinate dehydratase gene, quinate dehydrogenase gene, and shikimate dehydrogenase gene. (ii) Enhancement of one or more genes selected from the group of genes involved in the shikimate synthesis pathway, which consists of the 2-dehydro-3-deoxyarabinoheptonate aldolase gene, the 3-dehydroquinate synthase gene, and the shikimate dehydrogenase gene. (iii) Enhancement of one or more genes selected from the group of genes involved in the pentose phosphate pathway, which consists of the glucose-6-phosphate dehydrogenase gene, the 6-phosphogluconolactose gene, the phosphogluconate dehydrogenase gene, the ribose-5-phosphate isomerase gene, the ribulose-5-phosphate-3-epimerase gene, the transketolase gene, and the transaldolase gene. (iv) Enhancement of genes encoding polypeptides with 3,4-dihydroxybenzoate hydroxylase activity. <9> Microbial cells with improved 3-dehydroshikimic acid production activity are microbial cells that have undergone two or more of the genetic modifications described in (i), (ii), (iii), and (iv) above. <8> Methods used. <10> Microbial cells with improved 3-dehydroshikimic acid production activity are microbial cells that have undergone three or more of the genetic modifications described in (i), (ii), (iii), and (iv) above. <8> Methods used. <11> Microbial cells with improved 3-dehydroshikimic acid production activity are microbial cells that have undergone the genetic manipulations described in (i), (ii), (iii), and (iv) above. <8> Methods used. <12> The microbial cells are Corynebacteria. <7> ~ <11> One of the methods described above. <13> Corynebacteria are bacteria of the genus Corynebacterium. <12> Methods used. <14> The bacteria of the genus Corynebacterium include Corynebacterium glutamicum, Corynebacterium efficiens, Corynebacterium ammoniagenes, Corynebacterium halotolerance, Corynebacterium alkanoritycum, Corynebacterium crenatum, Corynebacterium crudylactis, or Corynebacterium carnae. <13> Methods used. <15> Corynebacterium glutamicum is a bacterium of the genus Corynebacterium. <13> Methods used. <16> The aromatic compound or salt thereof is an aromatic compound or salt thereof derived from 3-dehydrosikimic acid. <1> ~ <15> One of the methods described above. <17> The aromatic compound or its salt is gallic acid, protocatechuic acid, catechol, L-DOPA, 2,4-pyridinedicarboxylic acid, 2,5-pyridinedicarboxylic acid, 4-hydroxybenzoic acid, 4-aminobenzoic acid, 4-amino3-hydroxybenzoic acid, or a salt thereof. <16> Methods used. <18> The aromatic compound or its salt is gallic acid, protocatechuic acid, L-DOPA, 4-hydroxybenzoic acid, 4-amino-3-hydroxybenzoic acid, or a salt thereof. <15> Methods used. <19> The aromatic compound or its salt is gallic acid, protocatechuic acid, or a salt thereof. <18> Methods used. <20> Transformed cells in which the expression of a multi-pass transmembrane polypeptide, as shown in (A) or (B) below, is enhanced, using microbial cells with improved 3-dehydroshikimic acid production activity as the host. (A) Polypeptide consisting of the amino acid sequence shown in Sequence ID No. 2 (B) Polypeptide consisting of an amino acid sequence having at least 76% identity with the amino acid sequence shown in Sequence ID No. 2 <21> Microbial cells with improved 3-dehydroshikimic acid production activity are cells that have undergone one or more of the following genetic modifications: (i), (ii), (iii), and (iv). <20> Transformed cells as described above. (i) Enhancement of one or more genes selected from the dehydroshikimate dehydratase gene, dehydroquinate dehydratase gene, quinate dehydrogenase gene, and shikimate dehydrogenase gene. (ii) Enhancement of one or more genes selected from the group of genes involved in the shikimate synthesis pathway, which consists of the 2-dehydro-3-deoxyarabinoheptonate aldolase gene, the 3-dehydroquinate synthase gene, and the shikimate dehydrogenase gene. (iii) Enhancement of one or more genes selected from the group of genes involved in the pentose phosphate pathway, which consists of the glucose-6-phosphate dehydrogenase gene, the 6-phosphogluconolactose gene, the phosphogluconate dehydrogenase gene, the ribose-5-phosphate isomerase gene, the ribulose-5-phosphate-3-epimerase gene, the transketolase gene, and the transaldolase gene. (iv) Enhancement of genes encoding polypeptides with 3,4-dihydroxybenzoate hydroxylase activity. <22> Microbial cells with improved 3-dehydroshikimic acid production activity are microbial cells that have undergone two or more of the genetic modifications described in (i), (ii), (iii), and (iv) above. <21> Transformed cells as described above. <23> Microbial cells with improved 3-dehydroshikimic acid production activity are microbial cells that have undergone three or more of the genetic modifications described in (i), (ii), (iii), and (iv) above. <21> Transformed cells as described above. <24> Microbial cells with improved 3-dehydroshikimic acid production activity are microbial cells that have undergone the genetic manipulations described in (i), (ii), (iii), and (iv) above. <21> Transformed cells as described above. <25> A polypeptide consisting of an amino acid sequence having at least 76% identity with the amino acid sequence shown in Sequence ID No. 2 of (B) above is the polypeptide shown in (B1) to (B3) below. <20> ~ <24> Transformed cells as described in any of the following. (B1) Polypeptide consisting of the amino acid sequence shown in Sequence ID No. 4 or an amino acid sequence having 90% or more identity with said amino acid sequence. (B2) Polypeptide consisting of the amino acid sequence shown in Sequence ID No. 6 or an amino acid sequence having 90% or more identity with said amino acid sequence. (B3) Polypeptide consisting of the amino acid sequence shown in Sequence ID No. 8 or an amino acid sequence having 90% or more identity with said amino acid sequence. <26> The polynucleotide comprising a polynucleotide encoding a multi-pass transmembrane polypeptide as described in (A) or (B) above, in an expressible state, <20> ~ <25> Transformed cells as described in any of the following. <27> The polynucleotide encoding the multi-pass transmembrane polypeptide shown in (A) or (B) above is the polynucleotide shown in (a) or (b) below. <26> Transformed cells as described above. (a) A polynucleotide consisting of the nucleotide sequence shown in Sequence ID No. 1, (b) A polynucleotide comprising a nucleotide sequence having at least 76% identity with the nucleotide sequence shown in Sequence ID No. 1. <28> (b) A polynucleotide consisting of a nucleotide sequence having at least 76% identity with the nucleotide sequence shown in Sequence ID No. 1 is a polynucleotide shown in (b1) to (b3) below. <27> Transformed cells as described above. (b1) A polynucleotide consisting of the nucleotide sequence shown in Sequence ID No. 3 or a nucleotide sequence having 90% or more identity with said nucleotide sequence. (b2) A polynucleotide consisting of the nucleotide sequence shown in Sequence ID No. 5 or a nucleotide sequence having 90% or more identity with said nucleotide sequence. (b3) A polynucleotide consisting of the nucleotide sequence shown in Sequence ID No. 7 or a nucleotide sequence having 90% or more identity with said nucleotide sequence. <29> The microbial cells are Corynebacteria. <20> ~ <28> Transformed cells as described in any of the following. <30> Corynebacteria are bacteria of the genus Corynebacterium. <29> Transformed cells as described above. <31> The bacteria of the genus Corynebacterium include Corynebacterium glutamicum, Corynebacterium efficiens, Corynebacterium ammoniagenes, Corynebacterium halotolerance, Corynebacterium alkanoritycum, Corynebacterium crenatum, Corynebacterium crudylactis, or Corynebacterium carnae. <30> Transformed cells as described above. <32> Corynebacterium glutamicum is a bacterium of the genus Corynebacterium. <31> Transformed cells as described above. [Examples]

[0049] The present invention will be described in more detail below using examples, but the technical scope of the present invention is not limited to the following examples.

[0050] (1) Preparation of gallic acid (sometimes called GAL) producing bacteria 1) Construction of a plasmid for replacing the cg0620 gene region with a polypeptide gene possessing 3,4-dihydroxybenzoate hydroxylase activity. The base numbers shown in the following examples are the base numbers of the genome sequence of strain ATCC13032. This genome sequence information was obtained from the NCBI GB database under accession number NC_006958. For PCR, we used PrimeSTAR Max DNA Polymerase (TaKaRa).

[0051] The genomic DNA of strain ATCC13032 (=NBRC 12168) was amplified using primers OT20 and OT21 to obtain the 5' DNA fragment of the cg0620 gene region. The genomic DNA was also amplified using primers OT23 and OT24 to obtain the 3' DNA fragment of the cg0620 gene region. Furthermore, a DNA fragment (OT25) containing the promoter of the tuf gene (cg0587) present in Corynebacterium glutamicum strain ATCC13032 (hereinafter referred to as the tu promoter) was synthesized artificially. This was amplified using primers OT26 and OT27 to obtain the promoter region DNA fragment. Additionally, two types of DNA fragments (SEQ ID NOs. 11 and 12) containing a polypeptide gene with 3,4-dihydroxybenzoate hydroxylase activity (hereinafter abbreviated as hfm145VF) were synthesized artificially. Each DNA fragment was used as a template and amplified using two types of DNA primers (OT30 and OT31, and OT32 and OT33) to obtain two types of DNA fragments. In addition, the vector fragment was amplified using pHKPsacB1 as a template with primers OT34 and OT35. The obtained PCR products were treated with DpnI (Takara Bio). Each DNA fragment was purified from the six obtained PCR products using NucleoSpin Gel and PCR Clean-up (Takara Bio), and the plasmid pHKPsacB_cg0620-Ptu-hfm145VF-hfm145VFopt was constructed by ligation using In-Fusion HD Cloning Kit (Takara Bio). The obtained plasmid solution was used to transform ECOS Competent E. coli DH5α strain (Nippon Gene Co., Ltd.), and the cell suspension was spread on LB agar medium containing kanamycin and left to stand overnight at 37°C. Transformants containing the plasmid were inoculated into 2 mL of LB liquid medium containing kanamycin and incubated overnight at 37°C. Plasmid purification was performed from this culture medium using NucleoSpin Plasmid EasyPure (TaKaRa), yielding pHKPsacB_cg0620-Ptu-hfm145VF-hfm145VFopt.

[0052] 2) Creation of polypeptide gene transfection strains possessing 3,4-dihydroxybenzoate hydroxylase activity Using a transformation method by electroporation (Bio-rad), the above-mentioned plasmid pHKPsacB_cg0620-Ptu-hfm145VF-hfm145VFopt was introduced into the CY44 strain (the CY44 strain is the tkt strain described in Reference Example 14 of Japanese Patent No. 6322576, in which the expression of the transketolase (sometimes called tkt) gene is enhanced by controlling the transcription of the transketolase gene by the tu promoter. Furthermore, the transcription of the dehydroshikimate dehydratase gene (sometimes called qsuB) and the vanR(cg2615) gene can be induced by the addition of benzoic acid. In addition, the shikimate dehydrogenase (sometimes called aroE3) gene is controlled by the VanR repressor.) and selected for kanamycin resistance to obtain the KC148sr strain. Analysis of the KC148sr strain using PCR with primers OT20 and OT36 (Sapphire Amp (Takara Bio)) yielded the expected results, confirming that the KC148sr strain is a one-time crossover homologous recombinant in which the plasmid pHKPsacB_cg0620-Ptu-hfm145VF-hfm145VFopt is introduced into the cg0620 gene region. The KC148 strain was cultured in 1 mL of LB liquid medium (10 g / L tryptone, 5 g / L yeast extract, 10 g / L sodium chloride) for 24 hours, and a portion of the culture medium was streaked onto LB agar containing 20% ​​sucrose to obtain the KC148 strain. PCR using primers OT36 and OT37 (Sapphire Amp (Takara Bio)) confirmed that the KC148 strain is a double-crossover homologous recombinant in which the Ptu-hfm145VF-hfm145VFop gene is introduced into the cg0620 gene region, as expected.

[0053] (2) Creation of a lactate dehydrogenase gene (hereinafter sometimes referred to as the ldh gene) knockout strain 1) Creation of a plasmid to disrupt the ldh(cg3219) gene PrimeSTAR Max DNA Polymerase (TaKaRa) was used as the enzyme for PCR. Using pHKPsacB1 (described in Japanese Patent Publication No. 6322576) as a template, the vector fragment was amplified with primers pHKPsacB-F2 and pHKPsacB-R2. Using the genomic DNA of strain ATCC13032 (=NBRC strain 12168) as a template, the 5' DNA fragment of the cg3219 gene was amplified with primers 3219-up-F and 3219-up-R, and the 3' DNA fragment of the cg3219 gene was amplified using the genomic DNA as a template with primers 3219-down-F and 3219-down-R. The obtained PCR products were treated with DpnI (Takara Bio). The three obtained PCR products were purified using NucleoSpin Gel and PCR Clean-up (Takara Bio), and then ligated using the In-Fusion HD cloning kit (clontech) to produce pHKBsacB-Δldh. The obtained plasmid solution was used to transform ECOS Competent E. coli DH5α strain (Nippon Gene), and the cell suspension was spread onto LB agar medium containing kanamycin and incubated overnight at 37°C. Colony PCR was performed using the obtained colonies as templates and Sapphire Amp (TaKaRa) as the enzyme. The introduction of the target DNA fragment was confirmed using primers 3219-up-F and 3219-down-R. Transformants containing plasmids in which gene introduction was confirmed were inoculated into 2 mL of LB liquid medium containing kanamycin and incubated overnight at 37°C. Plasmid purification was performed using NucleoSpin Plasmid EasyPure (TaKaRa Co.) from this culture medium to obtain pHKBsacB-Δldh.

[0054] 2) Obtaining a knockout strain of the LDH gene (CG3219) Using the plasmid pHKBsacB-Δldh obtained above, KC148 was transformed by electroporation (Bio-rad). By selecting for kanamycin resistance, KC148Δldh-sr was obtained. Using the obtained colonies as a template, PCR (Sapphire Amp) was performed using primers sacB-1 and 3219-up1500, and the expected results were obtained, confirming that the plasmid pHKBsacB-Δldh was introduced into the cg3219 gene region by one crossover homologous recombination. KC148Δldh-sr was cultured in 1 mL of LB liquid medium for 24 hours, and a portion of the culture medium was streaked onto LB agar containing 20% ​​sucrose to obtain the KC148Δldh strain. Colony PCR (Sapphire Amp) using primers 3219-coloP-F and 3219-coloP-R confirmed the deletion of the ldh gene (cg3219) by two cross-recombination homologous recombinations. Additionally, deletions of the kanamycin resistance gene and the sacB gene were also confirmed.

[0055] (3) Creation of a knock-in strain of the GALT0 gene at the cg3219 locus 1) Plasmid construction for knocking in the GALT0 gene to the cg3219 locus. PrimeSTAR Max DNA Polymerase (TaKaRa) was used as the PCR enzyme. Using pHKBsacB-Δldh as a template, the vector fragment was amplified with primers ocJK83 and ocJK84. Using the genomic DNA of strain ATCC13032 (=NBRC 12168) as a template, a DNA fragment containing the ORF region of the GALT0 gene (SEQ ID NO: 1) was obtained by amplified using primers ocJKT85 and ocJKT86. After purifying the two obtained PCR products using NucleoSpin Gel and PCR Clean-up (Takara Bio), the DNA fragments were ligated using the In-Fusion HD cloning kit (clontech) to construct pHKBsacB-Δldh::GALT0. This plasmid has the ORF of the GALT0 gene ligated downstream of the plasmid region upstream of the ldh gene. The obtained plasmid solution was used to transform ECOS Competent E. coli DH5α strain (Nippon Gene Co., Ltd.), and the cell suspension was spread onto LB agar medium containing kanamycin and left to stand overnight at 37°C. The resulting colonies were used as templates, and colony PCR was performed using Sapphire Amp (TaKaRa Co., Ltd.) as the enzyme. The introduction of the target DNA fragment was confirmed using primers ocJK105 and ocJK106. The transformants containing the plasmid in which gene introduction was confirmed were inoculated into 2 mL of LB liquid medium containing kanamycin and cultured overnight at 37°C. Plasmid purification was performed from this culture medium using NucleoSpin Plasmid EasyPure (TaKaRa Co., Ltd.) to obtain pHKBsacB-Δldh::GALT0. 2) Obtaining a knock-in strain of the GALT0 gene at the cg3219 locus Using the plasmid pHKBsacB-Δldh::GALT0 obtained above, KC148 was transformed by electroporation (Bio-rad). By selecting for kanamycin resistance, KC148Δldh::GALT0-sr was obtained. Using the obtained colonies as a template, PCR (Sapphire Amp) was performed using primers ocJK107 and ocJK87, and the expected results were obtained, confirming that the plasmid pHKBsacB-Δldh::GALT0 was introduced into the cg3219 gene region by one crossover homologous recombination. KC148Δldh::GALT0-sr was cultured in 1 mL of LB liquid medium for 24 hours, and a portion of the culture medium was streaked on 20% sucrose-containing LB agar to obtain the KC148Δldh::GALT0 strain. Colony PCR (Sapphire Amp) using primers ocJK107 and ocJK110 confirmed knock-in of the GALT0 gene to the cg3219 locus. Additionally, deletions of the kanamycin resistance gene and the sacB gene were also confirmed.

[0056] (4) Creation of a knock-in strain of the GALT3 gene at the cg3219 locus 1) Plasmid creation for knocking in the GALT3 gene to the cg3219 locus. PrimeSTAR Max DNA Polymerase (TaKaRa) was used as the enzyme for PCR. Using pHKBsacB-Δldh as a template, the vector fragment was amplified with primers ocJK83 and ocJK84. Using the DNA fragment indicated by Sequence ID No. GALT3_nuc, which was artificially synthesized by Eurofins Genomics, as a template, a DNA fragment containing the ORF region of the GALT3 gene (Sequence ID No. 7) was obtained by amplified with primers ocJKT87 and ocJKT88. After purifying each DNA fragment using NucleoSpin Gel and PCR Clean-up (Takara Bio) for the two obtained PCR products, they were ligated using the In-Fusion HD cloning kit (clontech) to construct pHKBsacB-Δldh::GALT3. In this plasmid, the ORF of the GALT3 gene is ligated downstream of the plasmid region upstream of the ldh gene. The obtained plasmid solution was used to transform ECOS Competent E. coli DH5α strain (Nippon Gene Co., Ltd.), and the cell suspension was spread onto LB agar medium containing kanamycin and left to stand overnight at 37°C. The resulting colonies were used as templates, and colony PCR was performed using Sapphire Amp (TaKaRa Co., Ltd.) as the enzyme. The introduction of the target DNA fragment was confirmed using primers ocJK105 and ocJK106. The transformants containing the plasmid in which gene introduction was confirmed were inoculated into 2 mL of LB liquid medium containing kanamycin and cultured overnight at 37°C. Plasmid purification was performed from this culture medium using NucleoSpin Plasmid EasyPure (TaKaRa Co., Ltd.) to obtain pHKBsacB-Δldh::GALT3. 2) Obtaining a knock-in strain of the GALT3 gene at the cg3219 locus. Using the plasmid pHKBsacB-Δldh::GALT3 obtained above, KC148 was transformed by electroporation (Bio-rad). By selecting for kanamycin resistance, KC148Δldh::GALT3-sr was obtained. Using the obtained colonies as a template, PCR (Sapphire Amp) was performed using primers ocJK107 and ocJK98, and the expected results were obtained, confirming that the plasmid pHKBsacB-Δldh::GALT3 was introduced into the cg3219 gene region by one crossover homologous recombination. KC148Δldh::GALT3-sr was cultured in 1 mL of LB liquid medium for 24 hours, and a portion of the culture medium was streaked on 20% sucrose-containing LB agar to obtain the KC148Δldh::GALT3 strain. Colony PCR (Sapphire Amp) using primers ocJK107 and ocJK110 confirmed knock-in of the GALT3 gene to the cg3219 locus. Additionally, deletions of the kanamycin resistance gene and the sacB gene were also confirmed.

[0057] [Table 1]

[0058] (5) Evaluation of Aromatic Compound Productivity KC148Δldh strain, KC148Δldh::GALT0 strain, and KC148Δldh::GALT3 strain were streaked onto LB plates and cultured at 30°C for 3 days. The cells grown on the plates were inoculated into round-bottom tubes (Eiken Chemical) containing 4 mL of LB medium and cultured with shaking at 30°C and 200 rpm for 24 hours (pre-culture). Sodium benzoate was added to CGXII medium shown in Table 2 to a final concentration of 1 mM, and 100 mL was placed in a Bio Jr.8 culture tank (Able Co., Ltd.). 1 mL of the pre-culture solution was inoculated, and cultured with shaking at 32°C, 700 rpm, and an aeration rate of 100 mL / min for 18 hours to evaluate the productivity of aromatic compounds. The culture solution was appropriately diluted with dilute sulfuric acid, the cells were removed by centrifugation, and the supernatant was collected. The concentrations of gallic acid (GAL) and protocatechuic acid (sometimes referred to as PCA) in the supernatant were quantified. The results are shown in Table 3. Compared to the KC148Δldh strain, the KC148Δldh::GALT0 strain showed a 3.1-fold increase in gallic acid concentration and a 4.8-fold increase in protocatechuic acid concentration, confirming its effect on improving the productivity of aromatic compounds. Similarly, the KC148Δldh::GALT3 strain showed a 2.7-fold increase in gallic acid concentration and a 3.1-fold increase in protocatechuic acid concentration, confirming its effect on improving the productivity of aromatic compounds. Furthermore, GALT1 and GALT2 strains, which are created by introducing the GALT1 or GALT2 gene in place of the GALT0 gene, also show superior improvements in protocatechuic acid and gallic acid productivity compared to the original strain.

[0059] [Table 2]

[0060] [Table 3]

[0061] Reference Example 1: Determination of gallic acid and protocatechuic acid The recovered supernatant was subjected to HPLC to remove insoluble matter using an AcroPrep 96 filter plate (0.2 μm GHP membrane, Nippon Pall), and the reaction mixture was subjected to HPLC. An HPLC system, specifically a Chromaster (Hitachi High-Tech Science), was used. An L-column ODS (4.6 mm ID × 150 mm, Chemicals Evaluation and Research Institute) was used, and gradient elution was performed with eluent A as a 0.1% phosphoric acid solution of 0.1 M potassium dihydrogen phosphate and eluent B as 70% methanol, at a flow rate of 1.0 mL / min and a column temperature of 40°C. A UV detector (detection wavelength 210 Hz) was used for detection.

[0062] Reference Example 2: Analysis of transmembrane helix structure using a transmembrane region prediction program. The target polypeptide sequence (in this case, GALT0) is sent to http: / / www.cbs.dtu.dk / services / TMHMM / . As a result, the transmembrane helix (transmembrane region) is predicted, and the regions before and after it are analyzed as inside and outside the cell membrane (Figure 2). This predicts that GALT0 is a 12-transmembrane polypeptide with 12 transmembrane regions. Similarly, the transmembrane regions of GALT1 and subsequent sequences can also be predicted.

Claims

1. A method for producing aromatic compounds derived from 3-dehydroshikimic acid or salts thereof, comprising the step of culturing transformed cells having the ability to produce aromatic compounds, wherein the expression level of a multi-pass transmembrane polypeptide selected from (A), (B), (B1), (B2), and (B3) below is increased compared to that of host cells, wherein the host of the transformed cells is a bacterium of the genus Corynebacterium. A method for producing an aromatic compound derived from 3-dehydroshikimic acid or a salt thereof, selected from gallic acid, protocatechuic acid, and salts thereof. (A) Polypeptide consisting of the amino acid sequence shown in Sequence ID No. 2 (B) A polypeptide having aromatic compound transporter activity, comprising an amino acid sequence having at least 90% identity with the amino acid sequence shown in Sequence ID No.

2. (B1) A polypeptide having aromatic compound transporter activity, consisting of the amino acid sequence shown in Sequence ID No. 4 or an amino acid sequence having 90% or more identity with said amino acid sequence. (B2) A polypeptide having aromatic compound transporter activity, consisting of the amino acid sequence shown in Sequence ID No. 6 or an amino acid sequence having 90% or more identity with said amino acid sequence. (B3) A polypeptide having aromatic compound transporter activity, comprising the amino acid sequence shown in Sequence ID No. 8 or an amino acid sequence having 90% or more identity with said amino acid sequence.

2. The method according to claim 1, comprising a polynucleotide encoding a multi-pass transmembrane polypeptide selected from (A), (B), (B1), (B2), and (B3) in an expressible state.

3. The method according to claim 1, wherein the culture is performed in the presence of sugars.

4. The method according to claim 1, wherein the microbial cells having the ability to produce aromatic compounds are cells that have undergone one or more of the following genetic manipulations (i), (ii), (iii), and (iv). (i) Enhancement of one or more genes selected from the dehydroshikimate dehydratase gene, dehydroquinate dehydratase gene, quinate dehydrogenase gene, and shikimate dehydrogenase gene. (ii) Enhancement of one or more genes selected from the group of genes involved in the shikimate synthesis pathway, consisting of the 2-dehydro-3-deoxyarabinoheptonate aldolase gene, the 3-dehydroquinate synthase gene, and the shikimate dehydrogenase gene. (iii) Enhancement of one or more genes selected from the group of genes involved in the pentose phosphate pathway, consisting of glucose-6-phosphate dehydrogenase gene, 6-phosphogluconolactose gene, phosphogluconate dehydrogenase gene, ribose-5-phosphate isomerase gene, ribulose-5-phosphate-3-epimerase gene, transketolase gene, and transaldolase gene. (iv) Enhancement of the gene encoding a polypeptide with 3,4-dihydroxybenzoate hydroxylase activity

5. The method according to claim 1, wherein the Corynebacterium species is Corynebacterium glutamicum, Corynebacterium efficiency, Corynebacterium ammoniagenes, Corynebacterium halotolerance, Corynebacterium alkanoritycum, Corynebacterium crenatum, Corynebacterium crudylactis, or Corynebacterium carnae.

6. The method according to claim 5, wherein the bacterium of the genus Corynebacterium is Corynebacterium glutamicum.

7. Transformed cells used for the production of gallic acid and protocatechuic acid, Cells whose host is a microbial cell in which the gene necessary for producing 3-dehydroshikimic acid has been enhanced, and in which the expression level of a multi-pass transmembrane polypeptide selected from (A), (B), (B1), (B2), and (B3) below is increased compared to the host cell, Transformed cells in which the microbial cells, in which the genes necessary for producing 3-dehydroshikimic acid have been enhanced, are Corynebacterium species that have undergone one or more of the following genetic modifications: (i), (ii), (iii), and (iv). (A) Polypeptide consisting of the amino acid sequence shown in Sequence ID No. 2 (B) A polypeptide having aromatic compound transporter activity, comprising an amino acid sequence having at least 90% identity with the amino acid sequence shown in Sequence ID No.

2. (B1) A polypeptide having aromatic compound transporter activity, consisting of the amino acid sequence shown in Sequence ID No. 4 or an amino acid sequence having 90% or more identity with said amino acid sequence. (B2) A polypeptide having aromatic compound transporter activity, consisting of the amino acid sequence shown in Sequence ID No. 6 or an amino acid sequence having 90% or more identity with said amino acid sequence. (B3) A polypeptide having aromatic compound transporter activity, comprising the amino acid sequence shown in Sequence ID No. 8 or an amino acid sequence having 90% or more identity with said amino acid sequence. (i) Enhancement of one or more genes selected from the dehydroshikimate dehydratase gene, dehydroquinate dehydratase gene, quinate dehydrogenase gene, and shikimate dehydrogenase gene. (ii) Enhancement of one or more genes selected from the group of genes involved in the shikimate synthesis pathway, consisting of the 2-dehydro-3-deoxyarabinoheptonate aldolase gene, the 3-dehydroquinate synthase gene, and the shikimate dehydrogenase gene. (iii) Enhancement of one or more genes selected from the group of genes involved in the pentose phosphate pathway, consisting of glucose-6-phosphate dehydrogenase gene, 6-phosphogluconolactose gene, phosphogluconate dehydrogenase gene, ribose-5-phosphate isomerase gene, ribulose-5-phosphate-3-epimerase gene, transketolase gene, and transaldolase gene. (iv) Enhancement of the gene encoding a polypeptide with 3,4-dihydroxybenzoate hydroxylase activity

8. The transformed cell according to claim 7, comprising a polynucleotide capable of expressing a polynucleotide encoding a multi-pass transmembrane polypeptide selected from (A), (B), (B1), (B2), and (B3).

9. The transformed cell according to claim 7, wherein the Corynebacterium species is Corynebacterium glutamicum, Corynebacterium efficiency, Corynebacterium ammoniagenes, Corynebacterium halotolerance, Corynebacterium alkanoritycum, Corynebacterium crenatum, Corynebacterium crudylactis, or Corynebacterium carnae.

10. The transformed cell according to claim 9, wherein the Corynebacterium species is Corynebacterium glutamicum.

Citation Information

Patent Citations

  • New polynucleotide

    JP2002191370A

  • Lactobacillus acidophilus nucleic acid sequences encoding carbohydrate utilization-related proteins and uses thereof

    JP2007527727A

  • Microbial host cells for production of steviol glycosides

    US20200347425A1

  • Increasing export of 2'fucosyllactose from microbial cells through the expression of a heterologous nucleic acid

    US20210238574A1

  • Corynebacterium glutamicum genes encoding stress, resistance and tolerance proteins

    US6822084B1