Cyclic lipopeptide-producing microbial strains, and methods for producing cyclic lipopeptides

By engineering microbial strains lacking betainealdehyde dehydrogenase and choline dehydrogenase genes, the productivity of cyclic lipopeptides like surfactin is significantly improved, addressing the limitations of existing methods and enabling efficient industrial production.

JP7840316B2Active Publication Date: 2026-04-03KANEKA CORP
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Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-24
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Existing methods for producing cyclic lipopeptides, such as surfactin and iturin, by Bacillus genus microorganisms are inadequate in terms of productivity and economic efficiency, and known mutant strains lack stability and scalability for industrial applications.

Method used

Developing microbial strains deficient in the genes encoding betainealdehyde dehydrogenase (gbsA) and choline dehydrogenase (gbsB), which are involved in the biosynthesis pathway of glycine betaine, leading to enhanced surfactin productivity.

Benefits of technology

The modified microbial strains exhibit superior cyclic lipopeptide production capabilities compared to wild-type and known mutant strains, enabling stable and large-scale industrial production.

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Abstract

The present invention addresses the problem of improving the productivity of a cyclic lipopeptide such as Surfactin by microbial culture. The present invention provides: a cyclic lipopeptide-producing microbial strain that lacks a gene encoding betaine aldehyde dehydrogenase (EC: 1.2.1.8) and / or a gene encoding choline dehydrogenase (EC: 1.1.1.1); and a method for producing a cyclic lipopeptide that comprises culturing the microbial strain.
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Description

Technical Field

[0001] The present invention relates to a cyclic lipopeptide-producing microbial strain and a method for producing a cyclic lipopeptide using the microbial strain.

Background Art

[0002] Cyclic lipopeptides represented by surfactin and iturin are amphiphilic substances derived from microorganisms. For example, surfactin is widely used in pharmaceuticals, cosmetics, foods, etc. as a biosurfactant with high safety and biodegradability. In addition, the above cyclic lipopeptides exhibit not only a so-called surfactant action but also excellent antibacterial or antifungal actions against a wide range of bacteria or fungi. Therefore, they are expected to be utilized in various fields such as medical treatment, food production, agriculture, and environmental hygiene as antibacterial agents, antifungal agents, infectious disease therapeutic agents, plant disease control agents, etc.

[0003] Since cyclic lipopeptides such as surfactin and iturin are produced by microorganisms belonging to the genus Bacillus, the industrial production of cyclic lipopeptides is carried out by culturing Bacillus genus microorganisms (Patent Document 1, etc.). In the industrial production of useful substances by such microorganisms, improvement of their productivity is an important issue.

[0004] So far, various methods have been studied to improve the productivity of surfactin by culturing Bacillus genus microorganisms, but most of them are by adding special components to the medium or strictly controlling the culture conditions, and they have not been satisfactory in terms of productivity and economy.

[0005] Furthermore, several mutant strains of Bacillus subtilis with high surfactin production capacity have been reported. For example, Patent Document 2 discloses Bacillus subtilis strain ATCC55033, which can produce high concentrations of surfactin obtained by mutagenesis treatment of Bacillus subtilis ATCC21332 with NMG. Non-Patent Document 1 reports that a mutant strain of Bacillus subtilis ATCC21332 induced by UV irradiation has more than three times the surfactin production of the parent strain, and that the mutation is located between argC4 and hisA1 on the gene map. However, these are not microbial strains in which specific target genes involved in the mutation have been modified, and therefore cannot be supplied stably and in large quantities for industrial production. [Prior art documents] [Patent Documents]

[0006] [Patent Document 1] Patent No. 3635638 [Patent Document 2] Patent No. 3030789 [Non-patent literature]

[0007] [Non-Patent Document 1] Appl. Microbiol. Biotech., 31: 486-489 (1989) [Overview of the project] [Problems that the invention aims to solve]

[0008] Therefore, the present invention aims to provide a microbial strain that is excellent in producing cyclic lipopeptides such as surfactin and can stably supply large quantities of cyclic lipopeptides for industrial production, thereby improving the productivity of cyclic lipopeptides by microbial culture. [Means for solving the problem]

[0009] As a result of diligent research to solve the above problems, the present inventors have discovered that in microbial strains lacking at least one of the genes involved in the biosynthesis pathway of glycine betaine, an osmotic regulatory substance within cells, namely the gene encoding betainealdehyde dehydrogenase (EC:1.2.1.8) (gbsA gene) or the gene encoding choline dehydrogenase (EC:1.1.1.1) (gbsB gene), surfactin productivity is significantly improved, thus completing the present invention.

[0010] Specifically, the present invention encompasses the following inventions. [1] A cyclic lipopeptide-producing microbial strain lacking at least one of the following genes (1) or (2). (1) Gene encoding betainealdehyde dehydrogenase (EC: 1.2.1.8) (2) Gene encoding choline dehydrogenase (EC:1.1.1.1) [2] The microbial strain according to [1], wherein the microbial strain is a recombinant microbial strain that uses bacteria as a host. [3] The microbial strain described in [2], wherein the bacterium is a Gram-positive bacterium. [4] The microbial strain described in [3], wherein the Gram-positive bacterium is a bacterium of the genus Bacillus. [5] The microbial strain described in [4], wherein the bacterium of the genus Bacillus is Bacillus subtilis. [6] The microbial strain according to any one of [1] to [5], wherein the cyclic lipopeptide is one or more cyclic lipopeptides selected from surfactant-based cyclic lipopeptides, iturin-based cyclic lipopeptides, and phendisine-based cyclic lipopeptides. [7] A microbial strain according to any one of [1] to [6], wherein the cyclic lipopeptide is surfactin. A method for producing a cyclic lipopeptide, comprising culturing a microbial strain described in any of [8][1] to [7] in a culture medium. [9] The method for producing a cyclic lipopeptide according to [8], wherein the culture medium comprises a pulverized product of legumes or an extract thereof.

[10] The method for producing a cyclic lipopeptide according to [9], wherein the legume is soybean. This application claims priority to Japanese Patent Application No. 2021-56115, filed on 29 March 2021, and encompasses the contents described in the specification of said patent application. [Effects of the Invention]

[0011] According to the present invention, a microbial strain is provided that exhibits superior productivity of cyclic lipopeptides compared to wild-type strains and known mutant strains. By utilizing this microbial strain, the productivity of industrially useful cyclic lipopeptides can be improved. [Modes for carrying out the invention]

[0012] <Host microorganism> In one or more embodiments of the present invention, the host microorganism (parent strain) of a microbial strain lacking at least one of the genes (1) encoding betainealdehyde dehydrogenase (EC: 1.2.1.8) (gene name: gbsA) or (2) encoding choline dehydrogenase (EC: 1.1.1.1) (gene name: gbsB) is preferably a bacterium, more preferably a Gram-positive bacterium, even more preferably a bacterium belonging to the genera Bacillus, Paenibacillus, Brevibacillus, Tumebacillus, or Streptomyces, and even more preferably a bacterium of the genus Bacillus, particularly preferably Bacillus subtilis, Bacillus velezensis, Bacillus amyloliquefaciens, Bacillus siamensis, Bacillus atrophaeus, Bacillus These include vallismortis, Bacillus sonorensis, Bacillus halotolerans, Bacillus anthracis, Bacillus cereus, Bacillus thuringiensis, Bacillus mycoides, Bacillus licheniformis, Bacillus paralicheniformis, Bacillus swezeyi, Bacillus genomospecies, and Bacillus methylotrophicus, with Bacillus subtilis being the most preferred. The host microorganisms (parent strains) may be wild-type or mutated.

[0013] Microbial strains according to one or more embodiments of the present invention are transformants (recombinant microorganisms) in which at least one gene of betainealdehyde dehydrogenase (EC: 1.2.1.8) or choline dehydrogenase (EC: 1.1.1.1) is deleted in the host.

[0014] <Betaine aldehyde dehydrogenase (EC: 1.2.1.8)> In many bacteria, plants, and animals, betaine, which regulates intracellular osmotic pressure, is known to be synthesized via several pathways, one of which is a two-step pathway involving (i) the conversion of choline to betaine aldehyde and (ii) the conversion of betaine aldehyde to betaine. Betaine aldehyde dehydrogenase (EC: 1.2.1.8) is an enzyme that catalyzes the second step of this reaction and converts glycine betaine aldehyde to glycine betaine using NAD + as a coenzyme.

[0015] As an example of betaine aldehyde dehydrogenase, the nucleotide sequence of betaine aldehyde dehydrogenase derived from Bacillus subtilis and the amino acid sequence encoded by the nucleotide sequence are shown in SEQ ID NO: 1 and SEQ ID NO: 2, respectively.

[0016] Betaine aldehyde dehydrogenase is not limited to the betaine aldehyde dehydrogenase consisting of the amino acid sequence shown in SEQ ID NO: 2, and may also be other polypeptides having betaine aldehyde dehydrogenase activity, such as active variants and other species orthologs thereof. Other polypeptides having betaine aldehyde dehydrogenase activity are preferably polypeptides that exhibit an activity of 10% or more, preferably 40% or more, more preferably 60% or more, 80% or more, and still more preferably 90% or more with respect to the activity of the betaine aldehyde dehydrogenase consisting of the amino acid sequence shown in SEQ ID NO: 2.

[0017] Therefore, specific examples of betaine aldehyde dehydrogenase include (1A) a polypeptide consisting of the amino acid sequence shown in SEQ ID NO: 2; (1B) A polypeptide consisting of an amino acid sequence in which one or more amino acids are added, deleted, or substituted in the amino acid sequence shown in SEQ ID NO: 2 (particularly preferably, a polypeptide consisting of an amino acid sequence in which a total of one or more amino acids are substituted, deleted, and / or added, preferably deleted and / or added, at one or both of the N-terminus and C-terminus of the amino acid sequence shown in SEQ ID NO: 2), and having betaine aldehyde dehydrogenase activity; (1C) A polypeptide consisting of an amino acid sequence having 80% or more, preferably 85% or more, more preferably 90% or more, 95% or more, 97% or more, 98% or more, or 99% or more sequence identity to the amino acid sequence shown in SEQ ID NO: 2, and having betaine aldehyde dehydrogenase activity; or (1D) Fragments of the polypeptides of any one of (1A) to (1C) having betaine aldehyde dehydrogenase activity are included.

[0018] In the above (1B), "one or more" means, for example, 2 to 20, 2 to 15, 2 to 10, 2 to 7, 2 to 5, 2 to 4, or 2 to 3. Also, for amino acid substitution, conservative amino acid substitution is desirable. "Conservative amino acid substitution" means substitution between amino acids having similar properties such as charge, side chain, polarity, aromaticity, etc. Amino acids with similar properties can be classified, for example, into basic amino acids (arginine, lysine, histidine), acidic amino acids (aspartic acid, glutamic acid), uncharged polar amino acids (glycine, asparagine, glutamine, serine, threonine, cysteine, tyrosine), nonpolar amino acids (leucine, isoleucine, alanine, valine, proline, phenylalanine, tryptophan, methionine), branched-chain amino acids (leucine, valine, isoleucine), aromatic amino acids (phenylalanine, tyrosine, tryptophan, histidine), etc. Hereinafter, in this specification, the term "conservative amino acid substitution" is used in this meaning.

[0019] In (1C) above, "sequence identity" refers to the percentage of identical amino acid residues relative to the total number of amino acid residues of the protein shown in Sequence ID No. 2, after the two amino acid sequences have been aligned and gaps introduced as necessary to maximize the degree of amino acid agreement between them. Sequence identity can be calculated using protein search systems such as BLAST or FASTA (Karlin, S. et al., 1993, Proc. Natl. Acad. Sci. USA, 90: 5873-5877; Altschul, S. et al., 1990, J. Mol. Biol., 215: 403-410; Pearson, W. et al., 1988, Proc. Natl. Acad. Sci. USA, 85: 2444-2448). Hereafter, in this specification, "sequence identity" of amino acid sequences will be used with the same meaning.

[0020] In (1D) above, the fragment can be a polypeptide having preferably 200 or more amino acids, more preferably 300 or more, and even more preferably 400 or more.

[0021] The "gene encoding betainealdehyde dehydrogenase (EC:1.2.1.8)" refers to the nucleic acid (DNA or RNA, preferably DNA) encoding the amino acid sequence of betainealdehyde dehydrogenase, and the gene name is gbsA. The gbsA gene is contained in the genomic DNA on the chromosome of wild-type microorganisms before betainealdehyde dehydrogenase is deleted.

[0022] Sequence ID 1 shows an example of DNA encoding the amino acid sequence shown in Sequence ID 2 for betainealdehyde dehydrogenase, derived from Bacillus subtilis. The base sequence of the nucleic acid encoding the amino acid sequence of betainealdehyde dehydrogenase may be codon-optimized for the host. In the genomic DNA of a microbial strain, the base sequence of Sequence ID 1 may not be present as is; the base sequence of Sequence ID 1 may be an exon sequence with one or more intron sequences interposed in between.

[0023] Therefore, a specific example of the base sequence of the gene encoding the amino acid sequence of betaine aldehyde dehydrogenase is: (1E) The base sequence shown in Sequence ID No. 1; (1F) A nucleotide sequence in which one or more bases are added, deleted, or substituted in the nucleotide sequence shown in Sequence ID No. 1 (particularly preferably a nucleotide sequence in which a total of one or more bases are substituted, deleted, and / or added in one or both of the 5' and 3' ends of the nucleotide sequence shown in Sequence ID No. 1, preferably a nucleotide sequence in which deletion and / or addition are preferred), which encodes a polypeptide having betainealdehyde dehydrogenase activity; (1G) A nucleotide sequence having 80% or more, preferably 85% or more, more preferably 90% or more, 95% or more, 97% or more, 98% or more, or 99% or more sequence identity with the nucleotide sequence shown in Sequence ID No. 1, and which encodes a polypeptide having betainealdehyde dehydrogenase activity; A partial nucleotide sequence encoding the amino acid sequence of a polypeptide having betainealdehyde dehydrogenase activity, of any of the (1H)(1E)~(1G) nucleotide sequences; A nucleotide sequence in which a silent mutation (a nucleotide substitution that does not change the encoded amino acid residue) has been introduced in any of the (1I)(1E)~(1H) nucleotide sequences; A base sequence encoding the amino acid sequence of any polypeptide (1J)(1A)~(1D); or, Examples of nucleotide sequences include those in which one of the (1K)(1E)~(1J) nucleotide sequences is used as the exon sequence, with one or more intron sequences interposed in between.

[0024] In (1G) above, "sequence identity" refers to the percentage of identical bases relative to the total number of bases in the sequence shown in Sequence ID No. 1, after the two base sequences have been aligned and gaps introduced as necessary to maximize the degree of base agreement between them. Sequence identity can be calculated using base sequence lookup systems such as BLAST or FASTA (Karlin, S. et al., 1993, Proc. Natl. Acad. Sci. USA, 90: 5873-5877; Altschul, S. et al., 1990, J. Mol. Biol., 215: 403-410; Pearson, W. et al., 1988, Proc. Natl. Acad. Sci. USA, 85: 2444-2448). Hereafter, in this specification, "sequence identity" of base sequences will be used with the same meaning.

[0025] In the above (1F), "multiple items" means, for example, 2 to 60 items, 2 to 45 items, 2 to 30 items, 2 to 21 items, 2 to 15 items, 2 to 6 items, or 2 to 3 items.

[0026] <Choline dehydrogenase (EC:1.1.1.1)> Choline dehydrogenase (EC:1.1.1.1) is an enzyme that catalyzes the first step in the glycine betaine synthesis pathway mentioned above, and NAD + It uses as a coenzyme to convert choline to glycine betaine aldehyde.

[0027] As an example of choline dehydrogenase, the nucleotide sequence of choline dehydrogenase derived from Bacillus subtilis and the amino acid sequence encoded by said nucleotide sequence are shown in SEQ ID NO: 3 and SEQ ID NO: 4, respectively.

[0028] Choline dehydrogenase is not limited to choline dehydrogenase consisting of the amino acid sequence shown in SEQ ID NO: 4, but may also be other polypeptides having choline dehydrogenase activity, such as its active variants or other orthologs. The other polypeptide having choline dehydrogenase activity is preferably a polypeptide that exhibits 10% or more, preferably 40% or more, more preferably 60% or more, 80% or more, and even more preferably 90% or more of the activity of choline dehydrogenase consisting of the amino acid sequence shown in SEQ ID NO: 4.

[0029] Therefore, a specific example of choline dehydrogenase is: (2A) A polypeptide consisting of the amino acid sequence shown in Sequence ID No. 4; (2B) A polypeptide comprising an amino acid sequence in which one or more amino acids are added, deleted, or substituted in the amino acid sequence shown in SEQ ID NO: 4 (particularly preferred, a polypeptide comprising an amino acid sequence in which a total of one or more amino acids are substituted, deleted, and / or added in one or both of the N-terminus and C-terminus of the amino acid sequence shown in SEQ ID NO: 4, preferably deleted and / or added), which has choline dehydrogenase activity; (2C) A polypeptide comprising an amino acid sequence having 80% or more, preferably 85% or more, more preferably 90% or more, 95% or more, 97% or more, 98% or more, or 99% or more sequence identity with respect to the amino acid sequence shown in SEQ ID NO: 4, and having choline dehydrogenase activity; or Examples include fragments of any polypeptide (2D), (2A), to (2C) that possess choline dehydrogenase activity.

[0030] In (2B) above, "multiple" means, for example, 2 to 20, 2 to 15, 2 to 10, 2 to 7, 2 to 5, 2 to 4, or 2 to 3. Furthermore, conservative amino acid substitutions are preferred.

[0031] In (2C) above, "sequence identity" refers to the percentage of identical amino acid residues relative to the total number of amino acid residues of the protein shown in Sequence ID No. 4, after the two amino acid sequences have been aligned and gaps introduced as necessary to maximize the degree of amino acid agreement between them.

[0032] In (2D) above, the fragment can be a polypeptide having preferably 200 or more amino acids, more preferably 300 or more, and even more preferably 400 or more.

[0033] The "gene encoding choline dehydrogenase" refers to the nucleic acid (DNA or RNA, preferably DNA) that encodes the amino acid sequence of choline dehydrogenase, and the gene is named gbsB. The gbsB gene is contained in the genomic DNA on the chromosome of wild-type microorganisms before choline dehydrogenase is eliminated.

[0034] An example of DNA encoding the amino acid sequence shown in SEQ ID NO: 4 for choline dehydrogenase, derived from Bacillus subtilis, is shown in SEQ ID NO: 3. The base sequence of the nucleic acid encoding the amino acid sequence of choline dehydrogenase may be codon-optimized for the host. In the genomic DNA of a microbial strain, the base sequence of SEQ ID NO: 3 may not exist exactly as is; the base sequence of SEQ ID NO: 3 may be an exon sequence with one or more intron sequences interposed in between.

[0035] Therefore, a specific example of the base sequence of the gene encoding the amino acid sequence of choline dehydrogenase is: (2E) The base sequence shown in Sequence ID No. 3; (2F) A nucleotide sequence in which one or more bases are added, deleted, or substituted in the nucleotide sequence shown in Sequence ID No. 3 (particularly preferably a nucleotide sequence in which a total of one or more bases are substituted, deleted, and / or added at one or both of the 5' and 3' ends of the nucleotide sequence shown in Sequence ID No. 3, preferably a nucleotide sequence in which deletion and / or addition are preferred), which encodes a polypeptide having choline dehydrogenase activity; (2G) A nucleotide sequence having 80% or more, preferably 85% or more, more preferably 90% or more, 95% or more, 97% or more, 98% or more, or 99% or more sequence identity with the nucleotide sequence shown in Sequence ID No. 3, and which encodes a polypeptide having choline dehydrogenase activity; A partial nucleotide sequence encoding the amino acid sequence of a polypeptide having choline dehydrogenase activity, of any of the (2H)(2E)~(2G) nucleotide sequences; A nucleotide sequence in which a silent mutation (a nucleotide substitution that does not change the encoded amino acid residue) has been introduced in any of the (2I)(2E)~(2H) nucleotide sequences; A base sequence encoding the amino acid sequence of any polypeptide (2J)(2A)~(2D); or, This refers to a nucleotide sequence in which one of the (2K)(2E)~(2J) nucleotide sequences is used as the exon sequence, with one or more intron sequences interposed in between.

[0036] In the above (2F), "multiple items" means, for example, 2 to 60 items, 2 to 45 items, 2 to 30 items, 2 to 21 items, 2 to 15 items, 2 to 6 items, or 2 to 3 items.

[0037] <Microbial strain of the present invention> A microbial strain according to one or more embodiments of the present invention is a microbial strain lacking at least one of the following genes: (1) a gene encoding betainealdehyde dehydrogenase (EC: 1.2.1.8) (gbsA gene) or (2) a gene encoding choline dehydrogenase (EC: 1.1.1.1) (gbsB gene). The gene deficiency may be in either the gbsA gene or the gbsB gene, or in both genes.

[0038] In the present invention, "deletion" of the gbsA gene and the gbsB gene (which may be referred to as "target genes for deletion") means that the activity of the protein encoded by the target genes for deletion is reduced compared to the host strain, and includes cases where the activity is completely lost. Microbial strains according to one or more embodiments of the present invention are microbial strains in which the function of the target genes for deletion is lost or reduced. Specifically, these include microbial strains in which the expression level of mRNA, which is the transcript product of the target genes for deletion, or protein, which is the translation product, is reduced or nearly zero; microbial strains in which the mRNA, which is the transcript product of the target genes for deletion, or protein, which is the translation product, does not function normally as mRNA or protein; or microbial strains in which mRNA, which is the transcript product of the target genes for deletion, or protein, is not produced and does not function at all as mRNA or protein.

[0039] The deletion of the target gene can be achieved, for example, by artificially modifying the host strain's genes. Such modifications can be achieved, for example, by mutation, genetic recombination, or gene expression suppression.

[0040] Mutagenesis treatments include ultraviolet irradiation, radiation (such as gamma rays), or treatment with mutagens commonly used in mutagenesis treatments, such as N-methyl-N'-nitro-N-nitrosoguanidine (MNNG), ethyl methanesulfonate (EMS), and methyl methanesulfonate (MMS).

[0041] Known genetic engineering techniques can be used (e.g., FEMS Microbiology Letters 165(1998) 335-340, JOURNAL OF BACTERIOLOGY, Dec. 1995, p7171-7177, Curr Genet 1986; 10(8):573-578, WO 98 / 14600, etc.).

[0042] Methods for suppressing gene expression include using RNAi-inducing nucleic acids (siRNA, shRNA, dsRNA, etc.) that have RNA interference activity against the mRNA of the target gene to be deleted, nucleic acids that suppress the translation of the mRNA of the target gene to be deleted (antisense nucleic acids, miRNA, ribozyme nucleic acids, etc.), and nucleic acids that suppress the transcription of the target gene to be deleted (decoy nucleic acids, etc.). The aforementioned "RNAi-inducing nucleic acid" refers to a double-stranded RNA molecule that can induce RNA interference when introduced into a cell. RNA interference refers to the effect in which a double-stranded RNA containing the same base sequence (or a partial sequence) as mRNA suppresses the expression of said mRNA. Examples of RNAi-inducing nucleic acids include siRNA and shRNA (small hairpin RNA) which has a stem-loop structure in part, but siRNA is preferred due to the strength of its transcriptional activity suppression. Specifically, siRNA consists of a sense strand containing a continuous base sequence in mRNA corresponding to the base sequence of SEQ ID NO: 1 or 3, and an antisense strand containing its complementary sequence. The length of siRNA is not particularly limited as long as it can induce RNA interference, but it is usually around 18 to 25 strands. siRNA targeting the deletion gene may have 1 to 5 additional bases at the 5' or 3' ends of one or both of the sense strand and antisense strand.

[0043] Another method for suppressing gene expression is to use CRISPRi (CRISPR interference) technology, which suppresses transcription by recruiting a Cas9 (dCas9) protein without endonuclease activity to the promoter region or transcription start region of the target gene using gRNA (or crRNA and tracrRNA). The design methods for gRNA and crRNA are well known, and it is sufficient to design the approximately 20-mer at the 5' end of the gRNA or crRNA so that it can hybridize to the target sequence under physiological conditions.

[0044] The deletion of the target gene is more preferably a deletion of the target gene in the genomic DNA of the microbial strain. The deletion of the target gene may be a deletion of part or all of the expression regulatory sequence, or a deletion of part or all of the coding region of the amino acid sequence of each protein. Here, "deletion" means deletion or damage, and preferably deletion.

[0045] In the genomic DNA of the host strain, the entire gene may be deleted, including the sequences before and after the target gene. When deleting part or all of the coding region of the amino acid sequence of the protein encoded by the target gene, any region of the coding region, such as the N-terminal region, internal region, or C-terminal region, may be deleted, as long as a reduction in protein activity is achieved. Generally, a longer deleted region ensures more reliable gene inactivation. Furthermore, it is preferable that the sequences before and after the deleted region do not have matching reading frames. In a preferred embodiment, the genomic DNA of the target gene is characterized by the deletion of at least a portion of the coding region and / or regulatory expression sequence of the amino acid sequence, for example, a region consisting of preferably 50% or more, more preferably 60% or more, 70% or more, even more preferably 80% or more, even more preferably 90% or more, and most preferably 100% of the total number of bases of the coding region and / or regulatory expression sequence. Particularly preferred is the genomic DNA of the target gene in which the region from the start codon to the stop codon is deleted.

[0046] Furthermore, other examples of defects in the target gene that result in reduced protein activity include damage to the target gene, such as introducing amino acid substitutions (missense mutations) into the amino acid sequence coding region of the target gene on the genomic DNA, introducing stop codons (nonsense mutations), or introducing frameshift mutations that add or delete one or two bases.

[0047] Furthermore, the deletion of the target gene, which reduces the activity of the protein, can also be achieved, for example, by inserting another sequence into the gene's expression regulatory sequence or amino acid sequence coding region on the genomic DNA. The insertion site may be any region of the gene, but a longer insertion sequence ensures more reliable gene inactivation. It is also preferable that the sequences before and after the insertion site do not have matching reading frames. The other sequence is not particularly limited as long as it reduces or eliminates the function of the encoded protein, and may include, for example, marker genes, genes useful for the production of target substances (cyclic lipopeptides), or expression regulatory sequences of those genes.

[0048] Deleting the target gene on genomic DNA as described above can be achieved, for example, by creating an inactive gene that modifies the target gene so that it does not produce a normally functioning protein, transforming a host strain with recombinant DNA containing the inactive gene, and inducing homologous recombination between the inactive gene and the gene on genomic DNA, thereby replacing the gene on genomic DNA with the inactive gene. In this case, it is easier to handle if the recombinant DNA contains marker genes according to the host's nutritional requirements and other traits. Furthermore, if the recombinant DNA is made linear by cutting it with restriction enzymes, a strain in which the recombinant DNA has been incorporated into the genomic DNA can be efficiently obtained. Even if the protein encoded by the inactive gene is produced, it will have a different three-dimensional structure from the wild-type protein and its function will be reduced or lost.

[0049] Furthermore, for example, by transforming a microorganism with linear DNA containing an arbitrary sequence, wherein the arbitrary sequence has upstream and downstream sequences of the site to be replaced on genomic DNA (typically, part or all of the deleted gene) at both ends, or by directly linking the upstream and downstream sequences of the site to be replaced on genomic DNA, homologous recombination can be induced upstream and downstream of the site to be replaced on the host strain's genomic DNA, thereby replacing the site to be replaced with the sequence of the linear DNA in a single step. The arbitrary sequence may include, for example, a marker gene sequence. The marker gene may be removed thereafter if necessary. When removing the marker gene, homologous recombination sequences may be added to both ends of the marker gene to enable efficient removal of the marker gene.

[0050] The absence of the target gene in a microbial strain can be confirmed by a decrease in the activity of the protein encoded by that gene. The decrease in the protein's activity can be confirmed by measuring its activity.

[0051] The decrease in the transcription level of the target gene can be confirmed by comparing the amount of mRNA transcribed from that gene with that of the host strain. Methods for evaluating mRNA levels include Northern hybridization and RT-PCR (Molecular cloning (Cold Spring Harbor Laboratory Press, Cold Spring Harbor (USA), 2001)). It is preferable that the mRNA level is reduced to, for example, 50% or less, 20% or less, 10% or less, 5% or less, or 0% compared to the host strain.

[0052] The decrease in the amount of protein encoded by the target gene for deletion can be confirmed by Western blotting using an antibody (Molecular cloning (Cold Spring Harbor Laboratory Press, Cold Spring Harbor (USA), 2001)). In microbial strains according to one or more embodiments of the present invention, it is preferable that the amount of protein encoded by the target gene for deletion is reduced to, for example, 50% or less, 20% or less, 10% or less, 5% or less, or 0% compared to the host strain.

[0053] <Method for producing cyclic lipopeptides according to the present invention> One or more further embodiments of the present invention relate to a method for producing cyclic lipopeptides, comprising culturing microbial strains according to one or more embodiments of the present invention described above.

[0054] Examples of cyclic lipopeptides in the present invention include surfactant-based cyclic lipopeptides, iturin-based cyclic lipopeptides, and fengycin-based cyclic lipopeptides.

[0055] Surfactin-type cyclic lipopeptides are cyclic lipopeptides composed of seven amino acids linked to a β-hydroxy fatty acid with a chain length of C11 to C17. Examples include surfactin, esperin, lichenisin, and pumilacidine.

[0056] Iturin-type cyclic lipopeptides are cyclic lipopeptides composed of seven amino acids linked to a β-amino fatty acid with a chain length of C12 to C18. Examples include iturin A, iturin A1, iturin C, basilomycin D, basilomycin F, basilomycin L, basilomycin LC (basilopeptin), and mycosubtilin.

[0057] Phendisine-based cyclic lipopeptides are cyclic lipopeptides composed of 10 amino acids linked to a β-hydroxy fatty acid with a chain length of C14 to C21. Examples include phendisine A, phendisine B, prepastatin A, and prepastatin B.

[0058] The production of the target cyclic lipopeptide by the method of the present invention can be carried out by inoculating the above-mentioned microbial strain into a culture medium containing a carbon source, a nitrogen source, and other essential components that can be assimilated, culturing it using a conventional microbial culture method, and then purifying the target cyclic lipopeptide after the culturing is complete.

[0059] The composition of the culture medium and the culture conditions used can be appropriately selected by those skilled in the art, depending on the type of microbial strain used. For example, the culture medium may be either a synthetic medium or a natural medium, as long as it contains a carbon source, nitrogen source, inorganic salts, vitamins, etc. that can be assimilated by the microbial strain used in the present invention, and contains nutrients necessary for the growth of the microbial strain and the biosynthesis of the target substance.

[0060] Examples of carbon sources include carbohydrates such as glucose, maltose, fructose, sucrose, hydrolyzed starch, and molasses; alcohols such as ethanol and glycerol; organic acids such as acetic acid; and lipids such as vegetable oils, animal oils, and fatty acids. These carbon sources can be used individually or in combination, with glucose or maltose being preferred.

[0061] Examples of nitrogen sources include ammonium salts such as ammonium nitrate, ammonium sulfate, ammonium chloride, and ammonium acetate; nitrogen compounds such as ammonia, sodium nitrate, potassium nitrate, monosodium glutamate, urea, various amino acids, and amines; peptone; yeast extract; meat extract; soybean hydrolysate; and natural nitrogen sources such as ground legumes or their extracts. These nitrogen sources can be used individually or in combination, and it is preferable to use ground legumes or their extracts in combination with other nitrogen sources. As for legumes, soybeans, adzuki beans, peas, broad beans, chickpeas, flat beans, and kidney beans can be used, with soybeans being preferred.

[0062] Examples of inorganic salts include cations or anions such as potassium ions, sodium ions, magnesium ions, iron ions, manganese ions, calcium ions, zinc ions, cobalt ions, nickel ions, copper ions, molybdenum ions, phosphate ions, sulfate ions, chloride ions, and nitrate ions.

[0063] Examples of vitamins include biotin and thiamine. Furthermore, if necessary, substances required for growth by the microbial strain according to one or more embodiments of the present invention (for example, required amino acids in the case of an amino acid-requiring microbial strain) can be added.

[0064] Culturing is preferably carried out under aerobic conditions such as shaking culture or aerated stirring culture. If foaming occurs, a commonly used antifoaming agent can be added. The culture temperature is 20-50°C, preferably 20-42°C, more preferably 23-38°C. The pH during cultivation is 5-9, preferably 6-8. The cultivation time is 3 hours to 5 days, preferably 5 hours to 3 days.

[0065] In a preferred embodiment of the present invention, when producing cyclic lipopeptides using Bacillus bacteria, the composition of the culture medium and culture conditions used are those described in Japanese Patent Publication No. 3635638. Specifically, it is preferable to use a culture medium containing soybean flour or its extract for cultivation. Soybean flour or its extract refers to coarse soybean flour obtained by grinding soybeans or defatted soybeans into granules, ground soybean flour obtained by grinding soybeans into powder, their extracts (e.g., hot water extracts), hydrolysates (e.g., acid hydrolysates, enzyme hydrolysates), etc. There are no particular restrictions on the concentration of soybean flour or its extract, but since the amount of cyclic lipopeptide produced increases in proportion to the concentration of soybean flour or its extract in the culture medium, a concentration of 0.5 w / w% or higher is desirable to obtain a certain amount of production. However, on the other hand, if the concentration of soybean flour or its extract is too high, sterilization may become insufficient, so it is desirable not to exceed a concentration of 20 w / w%. Therefore, the concentration of soy flour or its extract for obtaining a high yield is 0.5 to 20 w / w%, preferably 2 to 15 w / w%, and more preferably 4 to 12 w / w%.

[0066] Furthermore, the culture medium may contain, in addition to soy flour or its extract, commonly used assimilated carbon sources, nitrogen sources, and inorganic salts. Amino acids and / or vitamins may also be added if necessary.

[0067] Suitable carbon sources include glucose, maltose, sucrose, hydrolyzed starch, molasses, potato extract, malt, peat, vegetable oil, corn steep liquor, fructose, syrup, liquid sugar, invert sugar, alcohol, organic acids, organic acid salts, alkanes, or other common carbon sources. These carbon sources can be used alone or in combination, with glucose or maltose being particularly preferred. The above carbon sources can typically be used at concentrations of 0.01 to 50 w / w%, preferably 1 to 40 w / w%.

[0068] As nitrogen sources, inorganic or organic nitrogen sources such as ammonium salts including ammonium nitrate, ammonium sulfate, ammonium chloride, ammonium acetate, ammonium carbonate, or ammonium bicarbonate, ammonia, sodium nitrate, potassium nitrate, monosodium glutamate, urea, peptone, meat extract, corn steep liquor, casein hydrolysate, feather meal, and yeast extract can be used. These nitrogen sources can be used alone or in combination, and yeast extract is preferred from the viewpoint of cyclic lipopeptide productivity. The above nitrogen sources are usually used at a concentration of about 0.01 to 30 w / w%, preferably about 0.1 to 10 w / w%.

[0069] Furthermore, it is preferable to add cations or anions such as potassium ions, sodium ions, magnesium ions, iron ions, manganese ions, calcium ions, zinc ions, cobalt ions, nickel ions, copper ions, molybdenum ions, phosphate ions, sulfate ions, chloride ions, or nitrate ions as inorganic salts. The concentration of inorganic salts added varies depending on the culture conditions, but is usually around 0.01 to 5 w / w% for phosphates, 10 ppm to 2 w / w% for magnesium salts, and 0.1 ppm to 1000 ppm for other salts.

[0070] Examples of amino acids include L-glycine, L-alanine, L-valine, L-leucine, L-isoleucine, L-serine, L-threonine, L-phenylalanine, L-tyrosine, L-cysteine, cystine, L-methionine, L-tryptophan, L-histidine, L-proline, L-aspartic acid, L-asparagine, L-glutamic acid, L-glutamine, L-arginine, L-lysine, D-valine, and D-isoleucine, and one or more of these can be added. In particular, in the present invention, it is preferable to add L-arginine and / or L-tryptophan. The concentration of added amino acids is usually 0.001 to 5 w / w%, preferably 0.01 to 1 w / w%.

[0071] Examples of vitamins include biotin, thiamine, riboflavin, pyridoxine, nicotinic acid, nicotinamide, pantothenic acid, pyridoxal, pyridoxine, myo-inositol, choline, folic acid, cobalamin, and cyanocobalamin, and one or more of these can be added. The concentration of added vitamins is usually 0.1 to 100 ppm, preferably 1 to 50 ppm.

[0072] For cultivation, add the above culture medium to a container such as a test tube, flask, or fermenter, and cultivate while aerating vigorously. When culturing using a container such as a test tube or flask, aeration is performed by shaking vigorously, and the initial pH of the culture medium is adjusted to 6.5-8.0. When producing high concentrations in a container such as a fermenter, aerate with sterile air and cultivate while stirring. If foaming occurs and cultivation is difficult, a commonly used antifoaming agent can be added.

[0073] The pH of the culture medium is maintained at 6-9, preferably 6.5-8.0, and more preferably 6.9-7.5. pH adjustment is performed, for example, by adding a basic aqueous solution such as ammonia, potassium hydroxide, sodium hydroxide, sodium carbonate, or aqueous potassium carbonate solution, with sodium hydroxide or aqueous ammonia being preferred. For sodium hydroxide, a concentration of about 20 w / w% is suitable, and for aqueous ammonia, about 8-25 w / w% is suitable. The culture temperature is 25-42°C, preferably 28-40°C, and more preferably 30-37°C.

[0074] After culturing the microbial strain of the present invention as described above, the cyclic lipopeptide accumulated in the culture can be collected by conventional purification methods. For example, after removing bacterial cells and solid matter by centrifugation or other means after the culturing is complete, it can be collected by ion exchange, concentration, crystal fractionation, etc. [Examples]

[0075] The present invention will be described in more detail below with reference to examples, but the present invention is not limited in any way to these examples.

[0076] The genetic manipulation described below can be carried out by referring to the description in Molecular Cloning (Cold Spring Harbor Laboratory Press 1989). Furthermore, the enzymes, cloning hosts, etc., used in the genetic manipulation can be purchased from market suppliers and used according to their instructions. Note that the enzymes are not particularly limited as long as they can be used for genetic manipulation.

[0077] (Manufacturing Example 1) Preparation of BL002 strain We created the BL002 strain, which serves as a host for cyclic lipopeptide-producing strains. Specifically, we created a strain by introducing lpa-14 (J. Ferment. Bioeng., 76:6, 445-450(1993)), which encodes 4-phosphopantetheinyl transferase, onto the chromosome of Bacillus subtilis strain 168 (hereinafter sometimes referred to as "strain 168") in order to confer the ability to produce cyclic lipopeptides.

[0078] First, DNA fragments were prepared to introduce lpa-14 onto the chromosomes of 168 strains. PCR using synthetic oligoDNA yielded a scaffold for homologous recombination to introduce lpa-14 into the sfp gene locus on the chromosome, as well as a DNA fragment (SEQ ID NO: 5: sfpUD-lpa14-cat) containing lpa-14 and a chloramphenicol-resistant cassette.

[0079] Next, using the DNA fragment described in Sequence ID No. 5, 168 strains were transformed using the CI / CII method (Experimental Methods in Microbial Genetics, Genetics Experiment Course 3, Kyoritsu Shuppan). After transformation, the resulting strains were spread on LB agar plates containing chloramphenicol 7.5 μg / mL and cultured at 37°C to obtain transformants. From the obtained transformants, one strain was isolated by PCR and DNA sequencing analysis, in which lpa-14 and a chloramphenicol-resistant cassette were inserted into the sfp gene locus on the chromosome of the 168 strains. This strain was named BL002.

[0080] (Manufacturing Example 2) Preparation of BL002 gbsA::spec strain First, a DNA fragment was prepared to insert a spectinomycin resistance cassette into the gbsA gene locus. PCR using synthetic oligoDNA yielded the upstream and downstream sequences of the gbsA gene and a DNA fragment containing the spectinomycin resistance cassette (SEQ ID NO: gbsAUD-spec).

[0081] Next, using the BL002 strain prepared in Production Example 1 as the parent strain, transformation was performed in the same manner as in Production Example 1 using the DNA fragment shown in Sequence ID No. 6. However, the transformed strain was plated on an LB agar plate containing chloramphenicol 5 μg / mL and spectinomycin dihydrochloride pentahydrate 150 μg / mL. From the transformants, one strain was isolated by PCR and DNA sequencing analysis, in which the intergenic region between the start and stop codons of the gbsA gene on the chromosome and gbsB downstream of gbsA was deleted, and a spectinomycin-resistant cassette was inserted. This strain was named BL002 gbsA::spec strain.

[0082] (Manufacturing Example 3) Preparation of BL002ΔgbsA strain First, a DNA fragment was prepared to remove the spectinomycin-resistant cassette from the BL002 gbsA::spec strain. By PCR using synthetic oligoDNA, a DNA fragment (SEQ ID NO: gbsAUD) containing the upstream and downstream sequences of the gbsA gene was obtained.

[0083] Next, the BL002 gbsA::spec strain prepared in Production Example 2 was used as the parent strain, and transformation was performed using the DNA fragment shown in Sequence ID No. 7 in the same manner as in Production Example 1. However, the transformed strain was plated on an LB agar plate containing 5 μg / mL chloramphenicol. Furthermore, the obtained colonies were replicated on an LB agar plate containing 5 μg / mL chloramphenicol and an LB agar plate containing 5 μg / mL chloramphenicol and 100 μg / mL spectinomycin dihydrochloride pentahydrate, respectively, and transformants showing susceptibility to spectinomycin were selected. From the transformants, one strain was isolated by PCR and DNA sequencing analysis, in which the start and stop codons of the gbsA gene on the chromosome and the intergenetic region between gbsA and gbsB downstream of gbsA were deleted. This gene knockout strain was named BL002ΔgbsA.

[0084] (Manufacturing Example 4) Preparation of BL002ΔgbsB strain First, we prepared DNA fragments to disrupt the gbsB gene. By PCR using synthetic oligoDNA, we obtained the upstream and downstream sequences of the gbsB gene and a DNA fragment (SEQ ID NO: gbsBUD-spec) containing a spectinomycin resistance cassette.

[0085] Next, using the BL002 strain prepared in Production Example 1 as the parent strain, and using the DNA fragment shown in Sequence ID No. 8, a strain was isolated in which the gbsB gene on the chromosome was deleted from the start codon to the stop codon and a spectinomycin-resistant cassette was inserted, in the same manner as in Production Example 2. This gene knockout strain was named BL002ΔgbsB strain.

[0086] (Manufacturing Example 5) Preparation of BL002ΔgbsAB strain First, DNA fragments were created to disrupt the gbsA and gbsB genes. PCR using synthetic oligoDNA yielded a DNA fragment (SEQ ID NO: gbsAU-spec-gbsBD) containing the upstream sequence of the gbsA gene, the downstream sequence of the gbsB gene, and a spectinomycin resistance cassette.

[0087] Next, using the BL002 strain prepared in Production Example 1 as the parent strain, and using the DNA fragment shown in Sequence ID No. 9, a strain was isolated in which the gbsA gene on the chromosome was deleted from the start codon to the gbsB gene stop codon, and a spectinomycin-resistant cassette was inserted, in the same manner as in Production Example 2. This gene knockout strain was named BL002ΔgbsAB strain.

[0088] (Example 1) Surfactin production by BL002ΔgbsA strain The BL002ΔgbsA strain obtained in Production Example 3 was cultured under the following conditions to produce surfactin.

[0089] First, the BL002ΔgbsA strain was inoculated into 3 mL of LB medium (containing 5 μg / mL chloramphenicol) and cultured with shaking at 37°C and 300 rpm for 16 hours. This culture solution was then inoculated into 2.5 mL of production medium (40 g / L soy flour, 5 g / L dipotassium hydrogen phosphate, 0.5 g / L magnesium sulfate heptahydrate, 0.18 g / L calcium chloride dihydrate, 0.025 g / L ferrous sulfate heptahydrate, 0.022 g / L manganese chloride tetrahydrate, 30 g / L maltose monohydrate) to achieve an OD600 of 0.1, and cultured with shaking at 35°C and 300 rpm for 72 hours. The obtained culture solution was used to analyze the surfactin concentration in the culture solution by HPLC under the following conditions.

[0090] (HPLC conditions) Sample volume: 20 μl Column: ODS-2, 4.6mm x 250mm, manufactured by GL Sciences Co., Ltd. Column temperature: 40℃ Eluent: 80 v / v% acetonitrile, 3.8 mM trifluoroacetic acid Flow rate: 1.5ml / min Detector: UV detector Wavelength: 205nm

[0091] Quantitative analysis was performed by creating a calibration curve using a standard sample of surfactant (Sigma-Aldrich).

[0092] (Example 2) Surfactin production by strain BL002ΔgbsB The BL002ΔgbsB strain obtained in Production Example 4 was cultured under the same conditions as in Example 1 to produce surfactin. However, the pre-culture LB medium used contained 5 μg / mL chloramphenicol and 100 μg / mL spectinomycin dihydrochloride pentahydrate. The obtained culture medium was used, and the surfactin concentration in the culture medium was analyzed in the same manner as in Example 1.

[0093] (Example 3) Surfactin production by BL002ΔgbsAB strain The BL002ΔgbsAB strain obtained in Production Example 5 was cultured under the same conditions as in Example 2 to produce surfactin. The surfactin concentration in the culture medium was analyzed in the same manner as in Example 1.

[0094] (Comparative Example 1) Surfactin production by BL002 strain The BL002 strain obtained in Production Example 1 was cultured under the same conditions as in Example 1 to produce surfactin. The surfactin concentration in the culture medium was analyzed in the same manner as in Example 1.

[0095] The analysis results of the surfactant concentration for Examples 1-3 and Comparative Example 1 are shown in Table 1 below.

[0096] [Table 1]

[0097] Comparing the results of Examples 1-3 and Comparative Example 1 in Table 1, it was shown that deletion of either the gbsA gene, the gbsB gene, or both significantly increased surfactant production. These results indicate that deletion of at least one gene encoding betainealdehyde dehydrogenase or choline dehydrogenase is effective in improving productivity in cyclic lipopeptide production by microbial culture. [Industrial applicability]

[0098] This invention can be used in the field of cyclic lipopeptide production. All publications, patents, and patent applications cited herein are incorporated herein by reference in their entirety.

Claims

1. A cyclic lipopeptide-producing microbial strain lacking at least one of the genes in (1) or (2) below, wherein the microbial strain is a Gram-positive bacterium belonging to the genus Bacillus, Paenibacillus, or Brevibacillus, and the cyclic lipopeptide is one or more cyclic lipopeptides selected from surfactant-based cyclic lipopeptides, iturin-based cyclic lipopeptides, and phendisine-based cyclic lipopeptides. (1) Gene encoding betainealdehyde dehydrogenase (EC: 1.2.1.8) (2) The gene encoding choline dehydrogenase (EC: 1.1.1.1)

2. The microbial strain according to claim 1, wherein the microbial strain is a bacterium of the genus Bacillus.

3. The microbial strain according to claim 2, wherein the Bacillus bacterium is Bacillus subtilis.

4. The microbial strain according to any one of claims 1 to 3, wherein the cyclic lipopeptide is a surfactant-based cyclic lipopeptide.

5. The microbial strain according to any one of claims 1 to 4, wherein the cyclic lipopeptide is surfactin.

6. A method for producing a cyclic lipopeptide, comprising culturing a microbial strain according to any one of claims 1 to 5 in a culture medium.

7. The method for producing a cyclic lipopeptide according to claim 6, wherein the culture medium comprises a pulverized product of legumes or an extract thereof.

8. The method for producing a cyclic lipopeptide according to claim 7, wherein the legume is soybean.

Citation Information

Patent Citations

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