L-histidine efflux protein and method for producing L-histidine using the same
A mutant L-histidine efflux protein with specific amino acid substitutions addresses inefficiencies in current production methods by dramatically increasing L-histidine yield, enabling large-scale industrialization.
Patent Information
- Application Number
- JP2024575607
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-06-23
- Filing Date
- 2023-06-22
- Publication Date
- 2026-04-16
- Estimated Expiration
- 2043-06-22
AI Technical Summary
Current methods for producing L-histidine, such as protein hydrolysis and microbial fermentation, face inefficiencies and environmental pollution, and large-scale industrialization has not been achieved due to competitive biosynthesis with phosphoribosyl pyrophosphate (PRPP) and complex regulatory mechanisms.
Development of a mutant L-histidine efflux protein with enhanced L-histidine excretion ability, expressed in microorganisms like Helcobacillus massiliensis, through specific amino acid substitutions at positions 72nd and 124th residues, increasing L-histidine production capacity.
The mutant L-histidine efflux protein significantly enhances L-histidine production by up to 80% or more compared to wild-type proteins, facilitating large-scale industrial production.
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Abstract
Description
Technical Field
[0001] [Cross - reference to Related Applications] This application claims the benefit of priority based on Korean Patent Application No. 10 - 2022 - 0076773 filed on June 23, 2022, and all the contents disclosed in the literature of the Korean patent application are included as part of this specification.
[0002] This application relates to a novel protein having histidine excretion activity, an L - histidine - producing microorganism modified to express the protein, and a method for producing L - histidine using the microorganism.
Background Art
[0003] L - histidine is one of the 20 standard amino acids. From a nutritional perspective, it is not required in large amounts for adults, but it is classified as an essential amino acid required for growing children. Also, L - histidine is involved in important physiological processes such as antioxidant and immune regulation, and is used in the medical industry such as gastric ulcer treatment agents, raw materials for cardiovascular system treatment agents, and amino acid infusion preparations.
[0004] L - histidine is particularly abundant in hemoglobin and is mainly produced by the protein hydrolysis extraction method using blood as a raw material. However, such a method has disadvantages such as low efficiency and environmental pollution. On the other hand, it is possible to produce L - histidine by the microbial fermentation method, but large - scale industrialization has not yet been carried out. This is because the biosynthesis of L - histidine is in a competitive relationship with phosphoribosyl pyrophosphate (PRPP), which is a nucleotide synthesis precursor, and has a complex biosynthesis process and regulatory mechanism that require high energy.
[0005] Examples are known where the production of an amino acid increases when the expression and / or function of a protein having the ability to excrete other types of amino acids is enhanced, but little prior research has been conducted on proteins having L - histidine - specific excretion ability.
[0006] Against this backdrop, there is a need to discover proteins with histidine-specific efflux ability and to develop histidine production technologies utilizing these proteins. [Overview of the project] [Problems that the invention aims to solve]
[0007] The purpose of this application is, (1) The amino acid corresponding to the 72nd amino acid residue in the amino acid sequence of SEQ ID NO: 43 is substituted with another amino acid, (2) The amino acid corresponding to the 124th residue of the amino acid sequence of SEQ ID NO: 43 is replaced by another amino acid, (3) To provide a mutant L-histidine efflux protein in which all of (1) and (2) are substituted.
[0008] Another object of this application is to provide a microorganism comprising the protein or a polynucleotide encoding the protein.
[0009] Another object of this application is to provide a composition for L-histidine production comprising the protein, the polynucleotide encoding the protein, or the microorganism.
[0010] Another object of this application is to provide uses for the protein, the polynucleotide encoding the protein, or the microorganism for L-histidine production.
[0011] Another object of this application is to provide uses for the protein, the polynucleotide encoding the protein, or the microorganism for the production of a composition for L-histidine production.
[0012] Another object of this application is to provide a method for producing L-histidine, comprising the step of culturing the microorganism in a culture medium. [Means for solving the problem]
[0013] This application proposes that by discovering a mutant of a histidine efflux protein that possesses L-histidine efflux ability and expressing it in microorganisms capable of producing L-histidine, it is possible to dramatically increase L-histidine production.
[0014] In this specification, it has been confirmed that microorganisms expressing AzlC family ABC transporter permease derived from Helcobacillus massiliensis have superior L-histidine production capacity, and that L-histidine production capacity is further increased when amino acid substitution mutations are introduced at specific positions in the AzlC family ABC transporter permease.
[0015] Proteins, polynucleotides, and recombinant vectors
[0016] One embodiment provides a mutant protein (or polypeptide) having L-histidine efflux activity. The protein may also be a protein having L-histidine-specific efflux ability. In this specification, the mutant protein can be represented as a mutant L-histidine efflux protein. The mutant protein may also have AzlC-system ABC transporter permeabilization activity.
[0017] In one example, the mutant protein may have L-histidine efflux activity equivalent to or more enhanced than that of a wild-type L-histidine efflux protein (e.g., an AzlD domain-containing protein, or an AzlC family ABC transporter permease). The AzlD domain-containing protein or AzlC family ABC transporter permease protein may be derived from Helcobacillus massiliensis. In this specification, an AzlD domain-containing protein derived from Helcobacillus massiliensis may be referred to as HmaE protein (or HmaE), and an AzlC family ABC transporter permease protein derived from Helcobacillus massiliensis may be referred to as HmaF protein (or HmaF).
[0018] In one example, the mutant protein (for example, a mutant protein of an AzlD domain-containing protein, specifically a mutant protein of an AzlD domain-containing protein derived from Helcobacillus masiliensis) may be expressed together with the AzlC system ABC transporter permease protein in the same operon gene. In another example, the mutant protein may bind to the AzlC system ABC transporter permease protein and have L-histidine efflux activity.
[0019] In one example, the mutant protein may be a mutant protein of the AzlC system ABC transporter permease protein derived from Helcobacillus massiliensis.
[0020] The aforementioned mutant protein may be a mutant protein in which one or more amino acid residues of the wild-type AzlC system ABC transporter permease protein derived from Helcobacillus maciliensis are substituted, deleted, or inserted.
[0021] The wild-type AzlC family ABC transporter permease protein derived from Helicobacter pylori may contain the amino acid sequence of SEQ ID NO: 43 (WP_055090792.1) or may consist of said sequence.
[0022] In one example, the mutant protein has the amino acid sequence of SEQ ID NO: 43, and from the N-terminus (1) the amino acid corresponding to the 72nd residue is substituted with another amino acid, (2) the amino acid corresponding to the 124th residue is substituted with another amino acid, or (3) it may contain an amino acid sequence in which both (1) and (2) are substituted.
[0023] Counting amino acids from the N-terminus in the amino acid sequence as described above can mean counting with the methionine (Met, M) translated from the start codon as the 1st amino acid.
[0024] In one example, the mutant protein has the amino acid sequence of SEQ ID NO: 43, and from the N-terminus (1) the amino acid corresponding to the 72nd residue is another amino acid, that is, an amino acid different from the original amino acid, and is substituted with leucine (Leu, L), arginine (Arg, R), histidine (His, H), lysine (Lys, K), aspartic acid (Asp, D), glutamic acid (Glu, E), serine (Ser, S), threonine (Thr, T), asparagine (Asn, N), glutamine (Gln, Q), cysteine (Cys, C), glycine (Gly, G), proline (Pro, P), alanine (Ala, A), valine (Val, V), methionine (Met, M), phenylalanine (Phe, F), tyrosine (Tyr, Y), or tryptophan (Trp, W), or (2) The amino acid corresponding to the 124th residue is an amino acid different from the original amino acid, that is, a different amino acid, and is replaced by valine, arginine, histidine, lysine, aspartic acid, glutamic acid, serine, threonine, asparagine, glutamine, cysteine, glycine, proline, alanine, leucine, methionine, phenylalanine, tyrosine, or tryptophan, or (3) It may include a sequence in which all of the above (1) and (2) are substituted.
[0025] In one example, the mutant protein has the amino acid sequence of SEQ ID NO: 43, starting from the N-terminus (1) The amino acid corresponding to the 72nd residue is substituted with leucine, glycine, proline, alanine, valine, or methionine; (2) The amino acid corresponding to the 124th residue is substituted with valine, glycine, proline, alanine, leucine, or methionine; or (3) It may include a sequence in which all of the above (1) and (2) are substituted.
[0026] In one specific example, the mutant protein may have the amino acid sequence of SEQ ID NO: 43, where the amino acid corresponding to the 72nd residue from the N-terminus is substituted with leucine and the amino acid corresponding to the 124th residue is substituted with valine. Even if a part of the amino acid sequence excluding the amino acids corresponding to the 72nd and / or 124th amino acid residues from the N-terminus of SEQ ID NO: 43 in the mutant protein is deleted, modified, substituted, or added, as long as it exhibits the AzlC-type ABC transporter permease activity, it is obvious that it can be included in the mutant protein of the present application.
[0027] Furthermore, in one example, the mutant protein is an amino acid sequence having at least 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 99.5% sequence homology or sequence identity with the amino acid sequence described in SEQ ID NO: 43, and starting from the N-terminus (1) The amino acid corresponding to the 72nd residue is replaced by another amino acid, (2) The amino acid corresponding to the 124th residue is replaced by another amino acid, or (3) Polypeptides in which all of (1) and (2) above are substituted may be included. That is, polypeptides that include substitutions to other amino acids at positions corresponding to the 72nd and / or 124th residues from the N-terminus in the amino acid sequence of SEQ ID NO: 43, and that have at least 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 99.5% sequence homology or sequence identity with the amino acid sequence of SEQ ID NO: 43, and that have AzlC system ABC transporter permease activity may be included in the mutant proteins of this application.
[0028] In one specific example, the mutant protein includes, but is not limited to, the amino acid sequence of SEQ ID NO: 56 or consists of the sequence. It is obvious that a mutant protein consisting of the amino acid sequence of SEQ ID NO: 56 may be included in the mutant protein of this application even if some of the amino acid sequence, excluding the amino acid corresponding to the 72nd and / or 124th residues from the N-terminus of the amino acid sequence of SEQ ID NO: 56, is deleted, modified, substituted, or added, as long as it exhibits AzlC-system ABC transporter permease activity. In one example, the mutant protein may contain a polypeptide in which the amino acids corresponding to the 72nd and / or 124th residues from the N-terminus in the amino acid sequence of SEQ ID NO: 56 are fixed, and which has at least 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 99.5% sequence homology or sequence identity with the amino acid sequence of SEQ ID NO: 56. In other words, a polypeptide having AzlC-type ABC transporter permease activity, in which the amino acid corresponding to the 72nd and / or 124th residue from the N-terminus in the amino acid sequence of SEQ ID NO: 56 is substituted with another amino acid, and having at least 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 99.5% homology or identity with the amino acid sequence of SEQ ID NO: 56, may be included in the mutant proteins of this application.
[0029] In one example, the mutant protein may have enhanced L-histidine efflux activity compared to the wild-type protein (e.g., a wild-type AzlD domain-containing protein). In another example, the mutant protein may have even more enhanced L-histidine efflux activity when expressed together with a wild-type AzlC system ABC transporter permease protein.
[0030] The wild-type L-histidine efflux protein may be a protein having 60% or more sequence homology with SEQ ID NO: 43 (wild-type AzlC-system ABC transporter permease protein from Helcobacillus masiliensis), SEQ ID NO: 44 (wild-type AzlD domain-containing protein from Helcobacillus masiliensis), or a combination thereof. For example, in one specific example, the wild-type L-histidine efflux protein may have 60% or more, 65% or more, 70% or more, 75% or more, 80% or more, 85% or more, 90% or more, 91% or more, 92% or more, 93% or more, 94% or more, 95% or more, 96% or more, 97% or more, 98% or more, 99% or more, or 99.5% or more homology with SEQ ID NO: 43, 44, or a combination thereof. The protein represented by SEQ ID NO: 43 may be encoded by the nucleic acid sequence of SEQ ID NO: 45, the protein represented by SEQ ID NO: 44 may be encoded by the nucleic acid sequence of SEQ ID NO: 46, or the protein represented by SEQ ID NO: 43 and / or SEQ ID NO: 44 may be encoded by the nucleic acid sequence of SEQ ID NO: 47 (an operon sequence fused at the overlapping site of the 3' end of SEQ ID NO: 45 and the 5' end of SEQ ID NO: 46).
[0031] Another embodiment provides a polynucleotide that encodes the mutant protein.
[0032] In this application, the term "polynucleotide" means a polymer of nucleotides in which nucleotide units (monomers) are covalently linked in a long chain, and is a DNA or RNA strand of a certain length or longer, and more specifically, a polynucleotide fragment encoding the mutant polypeptide.
[0033] The polynucleotide encoding the mutant protein of this application may include a base sequence encoding the amino acid sequence of SEQ ID NO: 56.
[0034] In this specification, when a polynucleotide (which may be used interchangeably with "gene") or polypeptide (which may be used interchangeably with "protein") is described as "consisting of a specific nucleic acid sequence or amino acid sequence, comprising a specific nucleic acid sequence or amino acid sequence, or represented by a specific nucleic acid sequence or amino acid sequence," it can be interpreted as meaning that the polynucleotide or polypeptide must include the specific nucleic acid sequence or amino acid sequence, and includes (or does not exclude) a "substantially equivalent sequence" to which the specific nucleic acid sequence or amino acid sequence has been mutated (deleted, substituted, modified, and / or added) to the extent that it maintains the original function and / or intended function of the polynucleotide or polypeptide.
[0035] In one example, nucleic acid sequences or amino acid sequences provided herein may include those modified by conventional mutagenesis methods, such as direct evolution and / or site-directed mutagenesis, to the extent that they maintain their original or intended functions. In one example, if a polynucleotide or polypeptide is described as "containing or consisting of a specific nucleic acid sequence or amino acid sequence," it may mean that the polynucleotide or polypeptide (i) essentially contains the specific nucleic acid sequence or amino acid sequence, or (ii) consists of or essentially contains an amino acid sequence having 60% or more, 65% or more, 70% or more, 75% or more, 80% or more, 85% or more, 90% or more, 91% or more, 92% or more, 93% or more, 94% or more, 95% or more, 96% or more, 97% or more, 98% or more, 99% or more, or 99.5% or more homology with the specific nucleic acid sequence or amino acid sequence, while maintaining its original and / or intended functions. In this specification, the function described above may mean a function that confers or increases the L-histidine efflux activity and / or L-histidine production capacity of microorganisms.
[0036] The nucleic acid sequences described herein can be modified in various ways within the limits that do not alter the amino acid sequence and / or function of the protein expressed from the coding region, taking into account the codons preferred by the microorganisms in which the protein is to be expressed, based on codon degeneracy.
[0037] In this specification, the terms "homology" and "identity" refer to the degree of agreement with a given nucleic acid sequence or amino acid sequence, expressed as a percentage (%). Identity with respect to nucleic acid sequences can be determined using, for example, the BLAST algorithm (see Karlin and Altschul, Pro. Natl. Acad. Sci. USA, 90, 5873, 1993) or Pearson's FASTA algorithm (see Methods Enzymol., 183, 63, 1990). Programs called BLASTN and BLASTX have been developed based on such algorithms as BLAST (see http: / / www.ncbi.nlm.nih.gov).
[0038] In one example, a polynucleotide comprising a specific nucleic acid sequence provided herein may be interpreted to include not only the specific nucleic acid sequence or a substantially equivalent nucleic acid sequence, but also a polynucleotide fragment comprising a nucleic acid sequence complementary to the specific nucleic acid sequence. Specifically, such complementary polynucleotides can be hybridized at a Tm value that can be appropriately adjusted by those skilled in the art depending on the purpose, for example, a Tm value of 55°C, 60°C, 63°C, or 65°C, and analyzed under the conditions described below: such conditions are specifically described in known literature. For example, this could involve hybridizing genes with high complementarity of 60% or more, 65% or more, 70% or more, 75% or more, 80% or more, 85% or more, 90% or more, 91% or more, 92% or more, 93% or more, 94% or more, 95% or more, 96% or more, 97% or more, 98% or more, 99% or more, or 99.5% or more, while preventing hybridization of genes with lower complementarity. Alternatively, it could involve washing once, specifically two to three times, at a salt concentration and temperature equivalent to the standard Southern hybridization washing conditions of 60°C, 1×SSC (saline-sodium citrate buffer), and 0.1% (w / v)SDS (Sodium Dodecyl Sulfate); 60°C, 0.1×SSC, and 0.1%SDS; or 68°C, 0.1×SSC, and 0.1%SDS. However, it is not limited to these conditions. Hybridization requires that the two nucleotides have complementary sequences, or that the stringency of the hybridization allows for mismatches between the bases. The term “complementary” can be used to describe the relationship between nucleotide bases that can be hybridized with each other. For example, in DNA, adenine is complementary to thymine, and cytosine is complementary to guanine. The appropriate stringency for hybridizing polynucleotides depends on the length and degree of complementarity of the polynucleotides, which is well known in the relevant technical field (see Sambrook et al., supra, 9.50-9.51, 11.7-11.8).
[0039] The introduction of the polynucleotide or vector can be carried out by a person skilled in the art using a known transformation method as appropriate. In this specification, the term "transformation" means the process of introducing a specific polynucleotide or a vector containing the same into a host cell, and the transformed polynucleotide can be located either inserted into a chromosome or outside a chromosome within the host cell. For example, transformation may involve introducing a polynucleotide encoding a target protein (foreign protein) or a vector containing the same into a host cell so that the protein encoded by the polynucleotide can be expressed in the host cell. The polynucleotide may also include DNA and / or RNA encoding the target protein. The form in which the polynucleotide is introduced into the host cell is not limited, as long as it can be introduced into the host cell and expressed. For example, the polynucleotide may be introduced into the host cell in the form of an expression cassette of a gene structure containing all the elements necessary for its own expression. The expression cassette may include expression regulatory elements such as a promoter, transcription termination signal, ribosome binding site and / or translation termination signal, which are usually operably linked to the polynucleotide. The expression cassette may also be in the form of a self-replicating expression vector. Furthermore, the polynucleotide may be introduced into a host cell in its own form and operably linked to a sequence necessary for expression in the host cell. In the foregoing, the term "operably linked" can mean that the expression regulator (e.g., promoter) and the polynucleotide are functionally linked so that the expression regulator can perform transcriptional regulation (e.g., transcription initiation) of the polynucleotide encoding the target protein (foreign protein). Operable linking can be performed using genetic engineering techniques known in the art, for example, by conventional site-directed DNA cleavage and linking, but is not limited thereto.
[0040] The method for transforming host cells with the aforementioned polynucleotides can be any method for introducing nucleic acids into cells (microorganisms), and any transformation technique known in this field can be appropriately selected depending on the host cell. Examples of known transformation methods include, but are not limited to, electroporation, calcium phosphate (CaPO4) precipitation, calcium chloride (CaCl2) precipitation, microinjection, polyethylene glycol (PEG) precipitation (polyethylene glycol-mediated uptake), DEAE-dextran method, cationic liposome method, lipofection, and lithium acetate-DMSO method.
[0041] The introduction (insertion) of the polynucleotide into the host cell genome (chromosome) can be carried out by a person skilled in the art using a known method selected as appropriate, for example, an RNA-guided endonuclease system or a CRISPR system; for example, using, but not limited to, a mixture (for example, a mixture of RNA-guided endonuclease protein and guide RNA) or a complex (for example, one or more selected from the group consisting of ribonucleic acid fusion protein (RNP), recombinant vector (for example, a vector containing an RNA-guided endonuclease coding gene and guide RNA coding DNA)) including (a) an RNA-guided endonuclease (e.g., Cas9 protein), its coding DNA, or a vector containing the DNA.
[0042] Another embodiment provides a recombinant vector comprising the polynucleotide. The recombinant vector can be used as an expression vector for the polypeptide. The recombinant vector may be used to insert the polynucleotide into the genome of a host cell or to replace a corresponding gene in the genome of a host cell.
[0043] In this specification, the term “vector” means a DNA product containing a polynucleotide sequence encoding a target protein, operably linked to a suitable regulatory sequence so as to enable expression of the target protein in a suitable host. The regulatory sequence may include a promoter capable of initiating transcription, an optional operator sequence for regulating transcription, a sequence encoding a suitable mRNA-ribosome binding site, and / or sequences regulating the termination of transcription and / or decoding. After being transformed into a suitable host cell, the vector may be expressed independently of the host cell’s genome or integrated into the host cell’s genome.
[0044] In this specification, the vectors that can be used are not particularly limited as long as they can replicate in host cells, and can be selected from all commonly used vectors. Examples of commonly used vectors include plasmids, cosmids, viruses, and bacteriophages, either in their native or recombinant state. For example, as phage vectors or cosmid vectors, pWE15, M13, MBL3, MBL4, IXII, ASHII, APII, t10, t11, Charon4A, and Charon21A can be used, and as plasmid vectors, pBR, pUC, pBluescriptII, pGEM, pTZ, pCL, and pET series can be used. Specifically, examples include, but are not limited to, pDZ, pACYC177, pACYC184, pCL, pECCG117, pUC19, pBR322, pMW118, and pCC1BAC vectors.
[0045] In this specification, usable vectors may be known expression vectors and / or vectors for intrachromosome insertion of polynucleotides into host cell chromosomes. Insertion of the polynucleotide into the host cell chromosome is performed by any method known in the art, for example, homologous recombination or a CRISPR system. The vector may further include a selection marker for confirming whether or not the polynucleotide has been inserted into the chromosome. The selection marker is for selecting cells transformed with the vector, i.e., confirming whether or not the polynucleotide insertion is necessary, and can be selected from genes that confer selectable phenotypes such as drug resistance, nutritional requirements, resistance to cytotoxic agents, or expression of surface proteins. Transformed cells can be selected because, in an environment treated with a selective agent, only cells expressing the selection marker survive or exhibit a different phenotype.
[0046] microorganisms
[0047] Another embodiment provides a microorganism comprising one or more (one, two, or all three) selected from the group consisting of the mutant protein, the polynucleotide encoding the mutant protein, and the recombinant vector comprising the polynucleotide. The microorganism may have L-histidine efflux activity and / or L-histidine production ability. The L-histidine efflux activity and / or L-histidine production ability of the microorganism is enhanced (or increased, improved) compared to a microorganism that does not contain one or more selected from the group consisting of the mutant protein, the polynucleotide encoding the mutant protein, and the recombinant vector comprising the polynucleotide.
[0048] The aforementioned mutant protein may be foreign. In this specification, "foreign" means that it is not endemic to the microorganism but originates from a species different from the microorganism.
[0049] In this specification, "microorganisms with enhanced L-histidine efflux activity and / or L-histidine production ability" may be microorganisms that have been manipulated (mutated) to express the aforementioned mutant protein, thereby acquiring L-histidine efflux activity and / or L-histidine production ability from microorganisms that previously lacked L-histidine efflux activity and / or L-histidine production ability, or acquiring L-histidine efflux activity and / or L-histidine production ability that is higher than their original L-histidine efflux activity and / or L-histidine production ability.
[0050] In this specification, "microorganism" includes single-celled bacteria and can be used interchangeably with "cell".
[0051] In this application, the term "microorganism (or strain)" includes all wild-type microorganisms and microorganisms that have undergone natural or artificial genetic modification, and may include microorganisms in which a particular mechanism has been weakened or strengthened due to causes such as the insertion of external genes or the enhancement or inactivation of the activity of endogenous genes, and which may include genetic modification for the production of the target polypeptide, protein or product (e.g., L-histidine).
[0052] The microorganisms of this application are, but are not limited to, microorganisms (e.g., recombinant microorganisms) that have been genetically modified via a vector to enhance the activity of L-histidine efflux protein or the polynucleotide encoding it. The vectors are as described above.
[0053] In this specification, a microorganism prior to being mutated to express the mutant protein may be referred to as a "parent microorganism or parentstrain" or "host cell" to distinguish it from the mutated microorganism.
[0054] The statement that the microorganism (or strain, recombinant cell) has L-histidine efflux activity and / or L-histidine production ability, or that its L-histidine efflux activity and / or L-histidine production ability is enhanced, can mean that, unlike unmodified microorganisms, pre-recombination cells, parent strains, and / or wild-type strains that lack L-histidine efflux activity and / or L-histidine production ability, it is conferred L-histidine efflux activity and / or L-histidine production ability, or that its L-histidine efflux activity and / or L-histidine production ability is improved compared to unmodified microorganisms, pre-recombination cells, parent strains, and / or wild-type strains.
[0055] The microorganisms of this application include, but are not limited to, microorganisms comprising one or more of the mutant protein of this application, polynucleotides encoding the mutant protein of this application, and vectors comprising the polynucleotide of this application; microorganisms modified to express the mutant protein of this application or the polynucleotide of this application; microorganisms expressing the mutant protein of this application or the polynucleotide of this application (e.g., recombinant strains); or microorganisms having the mutant protein activity of this application (e.g., recombinant strains).
[0056] In one example, the microorganism may be one or more species selected from the group consisting of the genus Corynebacterium, the genus Escherichia, etc. The genus Corynebacterium may include, but is not limited to, Corynebacterium glutamicum, Corynebacterium ammoniagenes, Brevibacterium lactofermentum, Brevibacterium flavum, Corynebacterium thermoaminogenes, Corynebacterium efficiens, etc. More specifically, the Corynebacterium microorganism may be Corynebacterium glutamicum. The Escherichia strain may be Escherichia coli.
[0057] The microorganism may contain one or more (one, two, or all three) selected from the group consisting of a mutant protein, a polynucleotide encoding the mutant protein, and a recombinant vector containing the polynucleotide. In one example, the mutation that causes the expression of the mutant protein may be carried out by introducing the polynucleotide encoding the mutant protein or a recombinant vector containing it, or by artificial mutation (e.g., error-prone PCR). The polynucleotide encoding the mutant protein introduced into the parent strain in this way may replace the AzlC system ABC transporter permease encoding gene inherent in the parent strain, or may be included in addition to it.
[0058] In one example, if the microorganism contains the mutant protein together with the wild-type AzlC-system ABC transporter permease protein, its L-histidine efflux activity and / or L-histidine production capacity may be further enhanced.
[0059] In one example, the microorganisms with enhanced L-histidine efflux activity and / or L-histidine production capacity are those in which L-histidine production capacity has increased by approximately 10% or more, 15% or more, 20% or more, 30% or more, 40% or more, 50% or more, 60% or more, 70% or more, or 80% or more compared to the pre-mutant parent strain, unmodified microorganisms, or microorganisms containing wild-type L-histidine efflux protein. However, this is not limited to these examples.
[0060] In another example, the microorganisms with enhanced L-histidine efflux activity and / or L-histidine production capacity are those in which L-histidine production capacity increases by approximately 1 g / L or more, 1.5 g / L or more, 2 g / L or more, 2.5 g / L or more, 3 g / L or more, 3.5 g / L or more, or 4 g / L or more compared to the pre-mutation parent strain, the unmodified microorganism, or the microorganism containing the wild-type L-histidine efflux protein.
[0061] The term "about" includes, but is not limited to, all numerical values within a range equivalent to or similar to the numerical value following the term "about," such as ±0.5, ±0.4, ±0.3, ±0.2, ±0.1, etc.
[0062] Another embodiment provides a composition for L-histidine production comprising the mutant protein, the polynucleotide, the recombinant vector, or the microorganism.
[0063] Another embodiment provides applications for using the mutant protein, the polynucleotide, the recombinant vector, or the microorganism for L-histidine production.
[0064] Another embodiment provides applications for using the mutant protein, the polynucleotide, the recombinant vector, or the microorganism in the production of a composition for L-histidine production.
[0065] Another embodiment provides a method for producing (manufacturing) L-histidine, comprising the step of culturing the microorganism in a culture medium. The manufacturing method may further include, after the culturing step, a step of recovering L-histidine from the cultured microorganism, the culture medium, or all of these.
[0066] Another embodiment provides a method for increasing the L-histidine efflux activity and / or L-histidine production capacity of a microorganism, or a method for conferring L-histidine efflux activity and / or L-histidine production capacity to a microorganism, comprising the step of enhancing the L-histidine efflux activity and / or L-histidine production capacity of the microorganism.
[0067] The step of introducing the mutation may include introducing (transforming) a polynucleotide encoding a mutant protein or a recombinant vector containing the polynucleotide into a microorganism, or it may include a step of artificially inducing a mutation (e.g., error-prone PCR).
[0068] Another example provides a method for producing L-histidine, comprising the step of culturing a microorganism with enhanced L-histidine efflux activity and / or L-histidine production capacity in a culture medium. The method may further include, after the culturing step, a step of recovering L-histidine from the cultured microorganism, the culture medium, or all of these.
[0069] In the above method, the step of culturing the microorganism is not particularly limited, but can be carried out by known batch culture methods, continuous culture methods, fed-batch culture methods, etc. At this time, the culture conditions are not particularly limited, but an appropriate pH (e.g., pH 5-9, specifically pH 6-8) can be adjusted using a basic compound (e.g., sodium hydroxide, potassium hydroxide, or ammonia) or an acidic compound (e.g., phosphoric acid or sulfuric acid), and exhaled conditions can be maintained by introducing oxygen or an oxygen-containing gas mixture into the culture. The culture temperature can be maintained at 20-45°C or 25-40°C, and the culture can be carried out for about 10-160 hours, but is not limited thereto. The L-histidine produced by the culture can be secreted into the culture medium or remain in the cells.
[0070] The culture medium usable for the above-mentioned culture may, but is not limited to, use one or more selected from the group consisting of sugars and carbohydrates (e.g., glucose, sucrose, lactose, fructose, maltose, molasses, starch, and cellulose), oils and fats (e.g., soybean oil, sunflower seed oil, peanut oil, and coconut oil), fatty acids (e.g., palmitic acid, stearic acid, and linoleic acid), alcohols (e.g., glycerol and ethanol), and organic acids (e.g., acetic acid) individually or in combination of two or more as a carbon source. As a nitrogen source, may, but is not limited to, use one or more selected from the group consisting of nitrogen-containing organic compounds (e.g., peptone, yeast extract, meat juice, malt extract, corn maceration, soybean meal, and urea), inorganic compounds (e.g., ammonium sulfate, ammonium chloride, ammonium phosphate, ammonium carbonate, and ammonium nitrate) individually or in combination of two or more as a nitrogen source. As a phosphorus source, one or more selected from the group consisting of potassium dihydrogen phosphate, dipotassium hydrogen phosphate, and equivalent sodium-containing salts may be used individually or in mixture of two or more, but is not limited thereto. The culture medium may also contain essential growth-promoting substances such as other metal salts (e.g., magnesium sulfate or ferrous sulfate), amino acids, and / or vitamins.
[0071] The step of recovering L-histidine may involve collecting the desired amino acid from a culture medium, culture solution, or microorganism using a suitable method known in the art, depending on the culture method. For example, the recovery step can be carried out by one or more methods selected from centrifugation, filtration, anion exchange chromatography, crystallization, HPLC, etc. The method for recovering L-histidine may further include a purification step before, during, or after the recovery. [Effects of the Invention]
[0072] This application describes how a histidine efflux protein or its variant possessing L-histidine efflux ability can be discovered and expressed in microorganisms capable of producing L-histidine, resulting in a dramatic increase in L-histidine production. [Modes for carrying out the invention]
[0073] The present invention will be described more specifically below with reference to the following embodiments. However, these embodiments are for illustrative purposes only, and the scope of the present invention is not limited by these embodiments.
[0074] Example 1. Searching for and selecting candidate genes for exogenous histidine efflux. To select candidate proteins with L-histidine-specific efflux ability, the amino acid sequences of efflux proteins (LysE (Arch Microbiol 180:155-160), Wex (Registered Patent No. 10-1968317 in Korea), BrnFE (Arch Microbiol 180:155-160)) for each classified amino acid (basic amino acid: L-lysine (L-lys), aromatic amino acid: tryptophan (Trp), side-chain amino acid: isoleucine (Ile)) were used as query sequences. Based on PSI-BLAST search results from the NCBI and Kegg databases, candidate genes predicted to be membrane proteins capable of effluxing L-histidine and the microorganisms possessing them were selected.
[0075] Of these, considering the biosafety level applicable to production strains and the feasibility of ensuring it, we selected one LysE-based protein, three Wex-based proteins, two BrnFE-based proteins, the genes encoding them, and the microorganisms containing them, as shown in Table 1 below:
[0076] [Table 1]
[0077] (In Table 1 above, biosafety levels are based on the microbial pathogenicity index (levels 1-4) defined by the Centers for Disease Control and Prevention in the United States (lower levels indicate greater safety).)
[0078] Example 2. Candidate vector for introducing foreign L-histidine efflux gene and production of recombinant Corynebacterium strains introduced therein. Six vectors were prepared for introducing the six candidate foreign L-histidine efflux genes selected in Example 1 into Corynebacterium strains.
[0079] Example 2-1. Fabrication of the target gene insertion vector pDZΔN2131 To introduce a candidate foreign L-histidine efflux gene, the NCgl2131 gene, which encodes a transposon of Corynebacterium glutamicum, was used as the insertion site (Journal of Biotechnology 104, 5-25 Jorn Kalinowski et al, 2003). Furthermore, the candidate foreign L-histidine efflux gene was designed to be expressed under the promoter of the Corynebacterium-derived gapA gene (hereinafter referred to as PgapA, SEQ ID NO: 17).
[0080] To replace the NCgl2131 gene with an excipient gene, NCgl2131 deletion and target gene insertion vectors were constructed. To construct the vectors, PCR was performed using the chromosome of Corynebacterium glutamicum strain ATCC13032 as a template, utilizing primer pairs of SEQ ID NOs. 18 and 19, and SEQ ID NOs. 20 and 21, respectively. PfuUltra™ high-reliability DNA polymerase (Stratagene) was used as the polymerase for the PCR reaction, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization at 72°C for 2 minutes, repeated 28 times, followed by polymerization at 72°C for 5 minutes. As a result, DNA fragments of 531 bp del-N2131L (SEQ ID NOs. 22) and 555 bp del-N2131R (SEQ ID NOs. 23) were obtained. After purifying the obtained DNA product using QIAGEN's PCR Purification Kit, the NCgl2131 gene deletion and target gene insertion vector pDZΔN2131 were produced by cloning using a pDZ vector (Registered Patent No. 10-0924065 in the Republic of Korea) and TaKaRa's Infusion Cloning Kit.
[0081] Example 2-2. Production of 6 candidate vectors for introducing foreign L-histidine efflux genes. The nucleotide sequence information for the gene encoding the Herbaspirillum aquaticum-derived protein (hereinafter referred to as Haq, SEQ ID NO: 1) (hereinafter referred to as haq, SEQ ID NO: 2) was obtained from the National Institutes of Health Gene Bank (NIH GenBank). To amplify haq, PCR was performed using chromosomal DNA from the Herbaspirillum aquaticum strain (KCTC42001) as a template, utilizing the primer pair of SEQ ID NO: 24 and SEQ ID NO: 25. PfuUltra™ high-reliability DNA polymerase (Stratagene) was used as the polymerase for the PCR reaction, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization reaction at 72°C for 2 minutes, repeated 28 times, followed by polymerization reaction at 72°C for 5 minutes. As a result, a 977bp haq fragment containing 945bp haq (SEQ ID NO: 2) was obtained. To obtain a PgapA fragment that can be linked to haq, PCR was performed using the ATCC13032 chromosome as a template and the primer pair of SEQ ID NOs. 26 and 27. PfuUltra™ high-reliability DNA polymerase (Stratagene) was used as the polymerase for the PCR reaction, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization at 72°C for 1 minute, repeated 28 times, followed by polymerization at 72°C for 5 minutes. As a result, a 441 bp PgapA fragment containing 409 bp of PgapA (SEQ ID NO: 17) was obtained. The obtained haq fragment, PgapA fragment, and the pDZΔN2131 vector, which had been cleaved with ScaI restriction enzyme, were cloned using the Gibson assembly method (DG Gibson et al., NATURE METHODS, VOL.6 NO.5, MAY 2009, NEBuilder HiFi DNA Assembly Master Mix) to obtain a recombinant plasmid, which was named pDZΔN2131-PgapA-Haq.
[0082] The nucleotide sequence information for the gene encoding the Cupriavidus pinatubonensis protein (hereinafter referred to as Cpi, SEQ ID NO: 3) (hereinafter referred to as cpi, SEQ ID NO: 4) was obtained from the National Institutes of Health Gene Bank (NIH GenBank). To amplify the Cupriavidus pinatubonensis-derived cpi, PCR was performed using the chromosomal DNA of the Cupriavidus pinatubonensis strain (KCTC22125) as a template and the primer pair of SEQ ID NO: 28 and SEQ ID NO: 29. PfuUltra™ high-reliability DNA polymerase (Stratagene) was used as the polymerase for the PCR reaction, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization reaction at 72°C for 2 minutes, repeated 28 times, followed by polymerization reaction at 72°C for 5 minutes. As a result, a 977bp cpi fragment containing 945bp cpi (SEQ ID NO: 4) was obtained. To obtain a PgapA fragment that can be linked to cpi, PCR was performed using the ATCC13032 chromosome as a template and the primer pair of SEQ ID NO: 26 and SEQ ID NO: 30. PfuUltra™ high-reliability DNA polymerase (Stratagene) was used as the polymerase for the PCR reaction, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization at 72°C for 1 minute, repeated 28 times, followed by polymerization at 72°C for 5 minutes. As a result, a 441 bp PgapA fragment containing 409 bp of PgapA (SEQ ID NO: 17) was obtained. The obtained cpi fragment, PgapA fragment, and the pDZΔN2131 vector cleaved with ScaI restriction enzyme were cloned using the Gibson assembly method to obtain a recombinant plasmid, which was named pDZΔN2131-PgapA-Cpi.
[0083] The nucleotide sequence information of the gene encoding the Kluyvera cryocrescens-derived protein (hereinafter referred to as Kcr, SEQ ID NO: 5) (hereinafter referred to as kcr, SEQ ID NO: 6) was obtained from the National Institutes of Health Gene Bank (NIH GenBank). To amplify the Kluyvera cryocrescens-derived kcr, PCR was performed using chromosomal DNA from the Kluyvera cryocrescens strain (KCTC2580) as a template, utilizing the primer pair of SEQ ID NO: 31 and SEQ ID NO: 32. PfuUltra™ high-reliability DNA polymerase (Stratagene) was used as the polymerase for the PCR reaction, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization reaction at 72°C for 2 minutes, repeated 28 times, followed by polymerization reaction at 72°C for 5 minutes. As a result, a 914 bp kcr fragment containing 882 bp kcr (SEQ ID NO: 6) was obtained. To obtain a PgapA fragment that can be linked to kcr, PCR was performed using the ATCC13032 chromosome as a template and the primer pair of SEQ ID NO: 26 and SEQ ID NO: 33. PfuUltra™ high-reliability DNA polymerase (Stratagene) was used as the polymerase for the PCR reaction, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization at 72°C for 1 minute, repeated 28 times, followed by polymerization at 72°C for 5 minutes. As a result, a 441 bp PgapA fragment containing 409 bp of PgapA (SEQ ID NO: 17) was obtained. The obtained kcr and PgapA fragments, along with the pDZΔN2131 vector cleaved with ScaI restriction enzyme, were cloned using the Gibson assembly method to obtain a recombinant plasmid, which was named pDZΔN2131-PgapA-Kcr.
[0084] The nucleotide sequence information for the gene encoding the Corynebacterium stationis-derived protein (hereinafter referred to as Cst, SEQ ID NO: 7) (hereinafter referred to as cst, SEQ ID NO: 8) was obtained from the National Institutes of Health Gene Bank (NIH GenBank). To amplify the Corynebacterium stationis-derived cst, PCR was performed using chromosomal DNA from the Corynebacterium stationis strain (ATCC6872) as a template, utilizing the primer pair of SEQ ID NO: 34 and SEQ ID NO: 35. PfuUltra™ high-reliability DNA polymerase (Stratagene) was used as the polymerase for the PCR reaction, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization reaction at 72°C for 2 minutes, repeated 28 times, followed by polymerization reaction at 72°C for 5 minutes. As a result, a 749 bp cst fragment containing 717 bp cst (SEQ ID NO: 8) was obtained. To obtain a PgapA fragment ligable to cst, PCR was performed using the ATCC13032 chromosome as a template and the primer pair of SEQ ID NOs. 26 and 36. PfuUltra™ high-reliability DNA polymerase (Stratagene) was used for the PCR reaction, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization at 72°C for 1 minute, repeated 28 times, followed by polymerization at 72°C for 5 minutes. As a result, a 441 bp PgapA fragment containing 409 bp of PgapA (SEQ ID NO. 17) was obtained. The obtained cst and PgapA fragments, along with the pDZΔN2131 vector cleaved with ScaI restriction enzyme, were cloned using Gibson assembly to obtain a recombinant plasmid, which was named pDZΔN2131-PgapA-Cst.
[0085] The nucleotide sequence information of the operon (hereinafter referred to as lsa, SEQ ID NO: 11) encoding Leucobacter salsicius-derived proteins (hereinafter referred to as LsaFE, SEQ ID NOs: 9 and 10) was obtained from the National Institutes of Health Gene Bank (NIH GenBank). To amplify the Leucobacter salsicius-derived lsa, PCR was performed using chromosomal DNA from the Leucobacter salsicius strain (KCTC19904) as a template, utilizing the primer pair of SEQ ID NOs: 37 and 38. PfuUltra™ high-reliability DNA polymerase (Stratagene) was used as the polymerase for the PCR reaction, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization reaction at 72°C for 2 minutes, repeated 28 times, followed by polymerization reaction at 72°C for 5 minutes. As a result, a 1080 bp lsa fragment containing 1048 bp lsa (SEQ ID NO: 11) was obtained. To obtain a PgapA fragment ligable to lsa, PCR was performed using the ATCC13032 chromosome as a template and the primer pair of SEQ ID NOs. 26 and 39. PfuUltra™ high-reliability DNA polymerase (Stratagene) was used for the PCR reaction, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization at 72°C for 1 minute, repeated 28 times, followed by polymerization at 72°C for 5 minutes. As a result, a 441 bp PgapA fragment containing 409 bp of PgapA (SEQ ID NO. 17) was obtained. The obtained lsa and PgapA fragments, along with the pDZΔN2131 vector cleaved with ScaI restriction enzyme, were cloned using Gibson assembly to obtain a recombinant plasmid, which was named pDZΔN2131-PgapA-Lsa.
[0086] The nucleotide sequence information of the operon (hereinafter referred to as dva, SEQ ID NO: 16) encoding Dermabacter vaginalis-derived proteins (hereinafter referred to as DvaFE, SEQ ID NOs: 12 and 13) was obtained from the National Institutes of Health GeneBank (NIH GenBank). To amplify the Dermabacter vaginalis-derived dva, PCR was performed using chromosomal DNA from the Dermabacter vaginalis strain (KCTC39585) as a template, utilizing the primer pair of SEQ ID NOs: 40 and 41. PfuUltra™ high-reliability DNA polymerase (Stratagene) was used as the polymerase for the PCR reaction, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization reaction at 72°C for 2 minutes, repeated 28 times, followed by polymerization reaction at 72°C for 5 minutes. As a result, an 1113 bp dva fragment containing 1081 bp of dva (SEQ ID NO: 16) was obtained. To obtain a PgapA fragment that can be linked to dva, PCR was performed using the ATCC13032 chromosome as a template and the primer pair of SEQ ID NO: 26 and SEQ ID NO: 42. PfuUltra™ high-reliability DNA polymerase (Stratagene) was used as the polymerase for the PCR reaction, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization at 72°C for 1 minute, repeated 28 times, followed by polymerization at 72°C for 5 minutes. As a result, a 441 bp PgapA fragment containing 409 bp of PgapA (SEQ ID NO: 17) was obtained. The obtained dva fragment and PgapA fragment, along with the pDZΔN2131 vector cleaved with ScaI restriction enzyme, were cloned using the Gibson assembly method to obtain a recombinant plasmid, which was named pDZΔN2131-PgapA-Dva.
[0087] Examples 2-3. Recombinant Corynebacterium strain preparation To confirm the L-histidine efflux ability of the aforementioned foreign L-histidine efflux gene candidates, the fabricated NCgl2131-deficient vector (pDZΔN2131) and six foreign L-histidine efflux gene candidate introduction vectors (pDZΔN2131-PgapA-Haq, pDZΔN2131-PgapA-Cpi, pDZΔN2131-PgapA-Kcr, pDZΔN2131-PgapA-Cst, pDZΔN2131-PgapA-Lsa, pDZΔN2131-PgapA-Dva) were introduced into the Corynebacterium glutamicum ATCC13032 strain. More specifically, the vectors were used to transform the ATCC13032 strain by electroporation, and seven recombinant strains were produced in which the NCgl2131 gene on the chromosome was either deleted or replaced with a candidate L-histidine efflux gene through a secondary crossover process. These were then divided into ATCC13032ΔN2131 (N2131 gene deletion), ATCC13032ΔN2131::Haq (N2131 gene replaced with haq), and ATCC13 These were named 032ΔN2131::Cpi (N2131 gene replaced with cpi), ATCC13032ΔN2131::Kcr (N2131 gene replaced with kcr), ATCC13032ΔN2131::Cst (N2131 gene replaced with cst), ATCC13032ΔN2131::Lsa (N2131 gene replaced with lsa), and ATCC13032ΔN2131::Dva (N2131 gene replaced with dva).
[0088] Example 3. Measurement of MIC of Corynebacterium strains into which a candidate foreign L-histidine efflux gene has been introduced. To confirm whether the seven recombinant Corynebacterium glutamicum strains (ATCC13032ΔN2131, ATCC13032ΔN2131::Haq, ATCC13032ΔN2131::Cpi, ATCC13032ΔN2131::Kcr, ATCC13032ΔN2131::Cst, ATCC13032ΔN2131::Lsa, and ATCC13032ΔN2131::Dva) prepared in Example 2 possessed L-histidine efflux activity, minimum inhibitory concentration (MIC) experiments using L-histidine were performed. After culturing the seven strains in a minimal liquid medium at 30°C for 24 hours, 1 × 10⁶ samples were taken. 3 and 1 x 10 4 The cells were diluted and spotted in a minimal solid medium supplemented with L-histidine. The composition of the minimal solid medium used was as follows:
[0089] Minimal medium (pH 7.2) Glucose 10g, KH2PO4 1g, K2HPO4 2g, MgSO47H2O 0.4g, Urea 2g, (NH4)2SO4 5g, NaCl 0.5g, Nicotinamide 5μg, Calcium-Pantothenic Acid 0.1μg, Biotin 0.2μg, Thiamine HCl 3μg, Trace elements solution* 1ml (based on 1 liter of distilled water), Agar 20g
[0090] *Trace Elements code Na2B4O710H2O 0.09g, (NH4)6Mo7O 27 4H2O 0.04g, ZnSO47H2O 0.01g, CuSO45H2O 0.27g, MnCl24H2O 0.01g, FeCl36H2O 1g, CaCl2 0.01g (based on 1 liter of distilled water)
[0091] For the minimum inhibitory concentration experiment, 1 g / L of L-histidine was added to a minimal solid culture medium, and cell growth was observed after 48 hours. The results are shown in Table 2 below:
[0092] [Table 2]
[0093] (In Table 2, the number of + indicates the relative growth degree of the strain, and each signifies the following: +: Single colonies are not formed, but heavy colonies (a form that cannot grow into single colonies and grows in a clump-like manner) are formed; ++: Heavy colonies are formed, and fewer than 5 single colonies are formed; +++: Heavy clusters are formed, and fewer than 50 single colonies are formed; ++++: (Formed so that heavy is not classified as a single colony)
[0094] As shown in Table 2 above, all strains except for the ATCC13032ΔN2131::Dva strain grew smoothly in the minimal medium without L-histidine. However, in the minimal medium containing 1 g / L of L-histidine, most strains into which candidate L-histidine efflux genes were introduced showed only slight growth, and only the ATCC13032ΔN2131::Dva strain into which the Dermabacter vaginalis-derived gene was introduced showed superior growth compared to ATCC13032ΔN2131. This indicates that the introduced Dermabacter vaginalis-derived protein can possess L-histidine efflux ability even in media containing L-histidine above the minimum inhibitory concentration.
[0095] Based on these findings, we selected the Dermabacter vaginalis-derived protein Dva as a protein that conferred resistance to L-histidine above the minimum inhibitory concentration to Corynebacterium strains and possesses L-histidine-specific efflux ability.
[0096] Example 4. Production of a strain of Dermabacter vaginalis-derived gene (dva) introduced into a Corynebacterium-derived L-histidine-producing strain (KCCM80179) and evaluation of its L-histidine production capacity. To confirm the L-histidine excretion ability of the Dermabacter vaginalis-derived protein Dva, the Dermabacter vaginalis-derived gene dva was introduced into the L-histidine-producing bacterial strain KCCM80179 (Republic of Korea Published Patent No. 10-2019-0065984).
[0097] To this end, the vectors pDZΔN2131 and pDZΔN2131-PgapA-Dva produced in Example 2 were used to transform the KCCM80179 strain by electroporation. Two strains were then produced in which the NCgl2131 gene on the chromosome was either deleted or replaced with a candidate L-histidine efflux gene (dva) through a secondary crossover process. These were named KCCM80179ΔN2131 (NCgl2131 gene deleted) and KCCM80179ΔN2131-PgapA-Dva (NCgl2131 gene replaced with dva), respectively.
[0098] To confirm the L-histidine production ability of the prepared KCCM80179ΔN2131 and KCCM80179ΔN2131-PgapA-Dva strains, they were cultured using the following method: The KCCM80179ΔN2131 and KCCM80179ΔN2131-PgapA-Dva strains were cultured in activated medium for 16 hours. Then, each strain was inoculated into a 250 ml square baffled flask containing 25 ml of seed medium and cultured at 30°C for 20 hours with shaking at 200 rpm. Subsequently, 1 ml of seed culture solution was inoculated into a 250 ml square baffled flask containing 25 ml of production medium and cultured at 30°C for 48 hours with shaking at 200 rpm. The culture medium composition used was as follows:
[0099] <Activation medium> Meat juice 1% (w / v), polypeptone 1% (w / v), sodium chloride 0.5% (w / v), yeast extract 1% (w / v), agar 2% (w / v), pH 7.2
[0100] <Seedling medium> Glucose 5% (w / v), bactopeptone 1% (w / v), sodium chloride 0.25% (w / v), yeast extract 1% (w / v), urea 0.4% (w / v), pH 7.2
[0101] <Production culture medium> Glucose 10% (w / v), ammonium sulfate 2% (w / v), monopotassium phosphate 0.1% (w / v), magnesium sulfate heptahydrate 0.05% (w / v), CSL (corn maceration solution) 2.0% (w / v), biotin 200 μg / L, calcium carbonate, pH 7.2
[0102] After the culturing was complete, the amount of L-histidine produced (histidine content in the culture medium) was measured by HPLC, and the results are shown in Table 3 below:
[0103] [Table 3]
[0104] As shown in Table 3 above, the NCgl2131-deficient strain had L-histidine production capacity equivalent to that of the parent strain KCCM80179, while the KCCM80179ΔN2131-PgapA-Dva strain, into which a gene derived from Dermabacter vaginalis was introduced, was confirmed to have L-histidine production capacity increased by 23% and 21% or more, respectively, compared to the NCgl2131-deficient strain and the parent strain KCCM80179.
[0105] The results from Examples 3 and 4 confirm that gene transfer from Dermabacter vaginalis not only increases tolerance to L-histidine concentrations above the minimum inhibitory concentration, but also significantly increases L-histidine production capacity. These results demonstrate that the Dermabacter vaginalis-derived protein is an L-histidine efflux protein capable of specifically effluxing L-histidine.
[0106] Example 5. Additional L-histidine excretory protein derived from Dermabacter vaginalis is secured. Since the L-histidine efflux ability of the Dermabacter vaginalis-derived protein was confirmed in Examples 3 and 4, a BLAST search was performed using the sequence of DvaF in DvaFE (SEQ ID NO: 12) as a query to additionally secure similar proteins with high amino acid sequence homology to the aforementioned protein (see Table 4).
[0107] [Table 4]
[0108] Based on the BLAST search results mentioned above, one additional L-histidine excipient candidate exhibiting more than 60% sequence homology and not belonging to the genus Dermabacter was selected and is shown in Table 5 below:
[0109] [Table 5]
[0110] Example 6. Production of a vector for introducing additional foreign L-histidine efflux gene candidates. Vectors were prepared to introduce the two L-histidine efflux gene candidates selected in Example 5 into Corynebacterium strains. Similar to Example 2, the NCgl2131 gene was used as the deletion site and PgapA was used as the promoter.
[0111] The nucleotide sequence information for the operon (hereinafter referred to as hma, SEQ ID NO: 47) encoding proteins derived from Helcobacillus massiliensis (hereinafter referred to as HmaFE, SEQ ID NOs: 43 and 44) was obtained from the National Institutes of Health Gene Bank (NIH GenBank). To obtain haqDNA, DNA was synthesized using Bionics' gene synthesis service. PCR was performed to amplify the synthesized DNA using the primer pair of SEQ ID NOs: 48 and 49. PfuUltra™ high-reliability DNA polymerase (Stratagene) was used as the polymerase for the PCR reaction, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization reaction at 72°C for 2 minutes, repeated 28 times, followed by polymerization reaction at 72°C for 5 minutes. As a result, an 1113 bp hma fragment containing 1081 bp hma (SEQ ID NO: 47) was obtained. To obtain a PgapA fragment ligable to hma, PCR was performed using the ATCC13032 chromosome as a template and the primer pair of SEQ ID NO: 26 and SEQ ID NO: 50. PfuUltra™ high-reliability DNA polymerase (Stratagene) was used as the polymerase for the PCR reaction, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization at 72°C for 1 minute, repeated 28 times, followed by polymerization at 72°C for 5 minutes. As a result, a 441 bp PgapA fragment containing 409 bp of PgapA (SEQ ID NO: 17) was obtained. The obtained hma and PgapA fragments, along with the pDZΔN2131 vector cleaved with ScaI restriction enzyme, were cloned using Gibson assembly to obtain a recombinant plasmid, which was named pDZΔN2131-PgapA-Hma.
[0112] Example 7. Production of a gene-modified (hma) strain derived from Helcobacillus massiliensis based on an L-histidine-producing strain (KCCM80179) and evaluation of its L-histidine production capacity. To confirm the L-histidine efflux ability of the Helcobacillus massiliensis-derived protein Hma, it was introduced into the L-histidine-producing strain KCCM80179.
[0113] To this end, the vector pDZΔN2131-PgapA-Hma produced in Example 6 was used to transform the KCCM80179 strain by electroporation. A strain was then produced in which the NCgl2131 gene on the chromosome was replaced with a candidate L-histidine efflux gene through a secondary crossover process. This strain was named KCCM80179ΔN2131-PgapA-Hma (NCgl2131 gene replaced with hma). To confirm the L-histidine production ability of the produced KCCM80179ΔN2131-PgapA-Hma strain, the strain was cultured using the method described in Example 4, and the amount of L-histidine produced was measured. As a control group, the KCCM80179ΔN2131 strain and the KCCM80179ΔN2131-PgapA-Dva strain prepared in Example 4 were cultured and their L-histidine production (histidine content in the culture medium) was measured using the same method. The results obtained are shown in Table 6.
[0114] [Table 6]
[0115] As shown in Table 6, the KCCM80179ΔN2131-PgapA-Hma strain produced 19% more L-histidine than the NCgl2131-deficient strain (KCCM80179ΔN2131) and the parent strain KCCM80179, respectively. These results indicate that proteins derived from Helcobacillus massiliensis are also selected as L-histidine excipients that can specifically excrete L-histidine.
[0116] Example 8: Production of an Hma mutation library using artificial mutation method To obtain a mutant Hma with increased L-histidine efflux, a primary crossover mutant protein expression vector library was constructed. For this purpose, using the constructed pDZΔN2131-PgapA-Hma as a template, hma operons with randomly introduced base substitution mutations were obtained using error-prone PCR with the primer pair of SEQ ID NOs. 48 and 49. Error-prone PCR was performed under conditions where 0 to 3.5 mutations per kb were introduced into the gene fragment amplified using the GenemorphII Random Mutagenesis Kit (Stratagene). The PCR conditions were denaturation at 96°C for 30 seconds; annealing at 53°C for 30 seconds; and polymerization at 72°C for 2 minutes, repeated 30 times. To obtain a PgapA fragment ligable to hma, PCR was performed using the ATCC13032 chromosome as a template and the primer pair of SEQ ID NOs. 26 and 50. For the PCR reaction, PfuUltra™ high-reliability DNA polymerase (Stratagene) was used, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization at 72°C for 1 minute, repeated 28 times. After that, polymerization was carried out at 72°C for 5 minutes to obtain the PgapA fragment. The obtained mutant hma operon and PgapA fragment, along with the pDZΔN2131 vector cleaved with ScaI restriction enzyme, were cloned using the Gibson assembly method (DG Gibson et al., NATURE METHODS, VOL.6 NO.5, MAY2009, NEBuilder HiFi DNA Assembly Master Mix), transformed into DH5α, and streaked onto LB solid medium containing kanamycin (25 mg / L). After selecting 20 transformed colonies, plasmids were obtained and their base sequences were analyzed. The results confirmed that mutations were introduced at different positions with an average frequency of 2 mutations / kb. Approximately 10,000 transformed E. coli colonies were taken, and the plasmid was extracted, which was named the pDZΔN2131-PgapA-Hma(mt) library.
[0117] Example 9: Introduction of Hma artificial mutation library and selection of strains with increased L-histidine production capacity The aforementioned ATCC13032ΔN2131 strain was used as the parent strain, and the aforementioned pDZΔN2131-PgapA-Hma(mt) library was transformed by homologous chromosome recombination. The transformed material was then spread onto a compound plate medium containing kanamycin (25 mg / L), and approximately 7,000 colonies were obtained. Each colony was named ATCC13032ΔN2131-PgapA-Hma(mt)-1 to ATCC13032ΔN2131-PgapA-Hma(mt)-7000.
[0118] <Composite agar plate medium (pH 7.0)> 10g glucose, 10g peptone, 5g beef extract, 5g yeast extract, 18.5g brain-heart infusion, 2.5g NaCl, 2g urea, 91g sorbitol, 20g agar (based on 1 liter of distilled water)
[0119] The 7,000 colonies obtained were subjected to the minimum inhibitory concentration (MIC) experiment for L-histidine conducted in Example 3. For efficient screening, the experiment was performed using a liquid minimal medium containing 3 g of L-histidine. The colonies were immediately inoculated into 300 ul of liquid minimal medium and cultured in a 96-dipwell plate at 32°C and 1000 rpm for approximately 18 hours. The OD600 value was then measured to select colonies with superior growth. As a control group, the prepared ATCC13032ΔN2131 strain and ATCC13032ΔN2131::Hma strain were used. 251 colonies were selected through the primary experiment, and 36 colonies were selected through repeated experiments. The culture medium components used are as follows.
[0120] Minimal liquid culture medium (pH 7.2) Glucose 10g, KH2PO4 1g, K2HPO4 2g, MgSO47H2O 0.4g, Urea 2g, (NH4)2SO4 5g, NaCl 0.5g, Nicotinamide 5μg, Calcium-Pantothenic Acid 0.1μg, Biotin 0.2μg, Thiamine HCl 3μg, Trace elements solution* 1ml (based on 1 liter of distilled water)
[0121] *Trace Elements code Na2B4O710H2O 0.09g, (NH4)6Mo7O 27 4H2O 0.04g, ZnSO47H2O 0.01g, CuSO45H2O 0.27g, MnCl24H2O 0.01g, FeCl36H2O 1g, CaCl2 0.01g (based on 1 liter of distilled water)
[0122] For the minimum inhibitory concentration experiment, 3 g / L of L-histidine was added to the culture medium and incubated for 18 hours.
[0123] The 36 selected colonies were subjected to solid medium substrate screening using the method described in Example 3. Six colonies with increased L-histidine efflux capacity were then subjected to final screening, and the results are shown in Table 7 below.
[0124] [Table 7]
[0125] (In Table 7, the number of + indicates the relative growth degree of the strain, and each represents the following: +: Single colonies are not formed, but heavy colonies (a form that cannot grow into single colonies and grows in a clump-like manner) are formed; ++: Heavy colonies are formed, and fewer than 5 single colonies are formed; +++: Heavy clusters are formed, and fewer than 50 single colonies are formed; ++++: (Heavy is formed without being distinguished from single colonies)
[0126] As shown in Table 7 above, the NCgl2131-deficient strain (ATCC13032ΔN2131) could not grow smoothly in minimal medium containing 1 g / L of L-histidine, but the ATCC13032ΔN2131::Hma strain, into which a gene derived from Helcobacillus massiliensis was introduced, grew smoothly, and six strains (ATCC13032ΔN2131-PgapA-Hma(mt)-1216, ATCC13032ΔN2131-PgapA-Hma(mt)-2305, ATCC1303) showed increased L-histidine efflux capacity after solid medium substrate screening. Strains 2ΔN2131-PgapA-Hma(mt)-3411, ATCC13032ΔN2131-PgapA-Hma(mt)-4426, ATCC13032ΔN2131-PgapA-Hma(mt)-5714, and ATCC13032ΔN2131-PgapA-Hma(mt)-6718 showed higher growth rates in minimal medium containing 1 g / L histidine.
[0127] Example 10. Preparation of a substrate-selected library-introduced strain of Corynebacterium-derived L-histidine-producing strain (KCCM80179) and evaluation of its L-histidine production capacity. A vector was prepared to introduce the mutant hma contained in the six colony strains selected in Example 9 into L-histidine-producing strains. To achieve this, mutant hma species were obtained by performing PCR using the primer pair of sequence numbers 48 and 49, with the chromosomal DNA of ATCC13032ΔN2131-PgapA-Hma(mt)-1216, ATCC13032ΔN2131-PgapA-Hma(mt)-2305, ATCC13032ΔN2131-PgapA-Hma(mt)-3411, ATCC13032ΔN2131-PgapA-Hma(mt)-4426, ATCC13032ΔN2131-PgapA-Hma(mt)-5714, and ATCC13032ΔN2131-PgapA-Hma(mt)-6718 as templates. The PCR conditions were denaturation at 96°C for 30 seconds; annealing at 53°C for 30 seconds; and polymerization at 72°C for 2 minutes, repeated 30 times. To obtain PgapA fragments that can be linked to mutant hma, PCR was performed using the ATCC13032 chromosome as a template and the primer pair of SEQ ID NO: 26 and SEQ ID NO: 50. PfuUltra™ high-reliability DNA polymerase (Stratagene) was used as the polymerase for the PCR reaction, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization at 72°C for 1 minute, repeated 28 times, followed by polymerization at 72°C for 5 minutes to obtain the PgapA fragments. The six mutant hma fragments and PgapA fragment obtained above, along with the pDZΔN2131 vector cleaved with ScaI restriction enzyme, were cloned using Gibson assembly to obtain recombinant plasmids, which were named pDZΔN2131-PgapA-Hma(mt)-1216, pDZΔN2131-PgapA-Hma(mt)-2315, pDZΔN2131-PgapA-Hma(mt)-3411, pDZΔN2131-PgapA-Hma(mt)-4426, pDZΔN2131-PgapA-Hma(mt)-5714, and pDZΔN2131-PgapA-Hma(mt)-6718 according to their respective origin libraries.
[0128] Subsequently, the prepared vectors were transformed into the KCCM80179 strain by electroporation, and six strains were created in which six mutant hma strains were introduced through a secondary cross-reaction process. These strains were named KCCM80179ΔN2131-PgapA-Hma(mt)-1216, KCCM80179ΔN2131-PgapA-Hma(mt)-2315, KCCM80179ΔN2131-PgapA-Hma(mt)-3411, KCCM80179ΔN2131-PgapA-Hma(mt)-4426, KCCM80179ΔN2131-PgapA-Hma(mt)-5714, and KCCM80179ΔN2131-PgapA-Hma(mt)-6718.
[0129] To confirm the L-histidine production ability of the six strains prepared, the KCCM80179ΔN2131-PgapA-Hma strain prepared in Example 7 was nourished as a control group and measured in the same manner as in Example 4. The results are shown in Table 8.
[0130] [Table 8]
[0131] As shown in Table 8 above, the NCgl2131-deficient strain (KCCM80179ΔN2131) had L-histidine production capacity comparable to that of the parent strain KCCM80179, while the ATCC13032ΔN2131::Hma strain, into which a gene derived from Helcobacillus massiliensis was introduced, showed increased L-histidine production capacity compared to both the NCgl2131-deficient strain and the parent strain KCCM80179.
[0132] Six strains, each introduced with one of the six mutant hma strains, showed increased L-histidine production capacity at levels equivalent to or higher than that of the KCCM80179ΔN2131-PgapA-Hma strain compared to the NCgl2131-deficient strain and the parent strain KCCM80179. In particular, the KCCM80179ΔN2131-PgapA-Hma(mt)-5714 and KCCM80179ΔN2131-PgapA-Hma(mt)-6718 strains showed increased L-histidine production capacity of 3.6% and 12.1%, respectively, compared to the wild-type hma-introduced KCCM80179ΔN2131-PgapA-Hma strain.
[0133] Example 11. Confirmation of Hma gene mutation with increased L-histidine production capacity. To confirm the mutation introduced into Hma in the KCCM80179ΔN2131-PgapA-Hma(mt)-6718 strain, which showed an increased L-histidine production effect in Example 10, the nucleotide sequence of the Hma mutant was analyzed. To determine the nucleotide sequence, PCR was performed using the gDNA of the KCCM80179ΔN2131-PgapA-Hma(mt)-6718 strain as a template, using the primer pairs of SEQ ID NO: 18 and SEQ ID NO: 21. The nucleotide sequence of the mutant hma operon and the protein sequence of HmaF or HmaE were confirmed by nucleotide sequence analysis and compared with the amino acid sequence of SEQ ID NO: 43 or SEQ ID NO: 44. The amino acid sequence mutation information of the mutant HmaFE confirmed by this method is shown in Table 9.
[0134] [Table 9]
[0135] Sequence analysis confirmed that the mutant HmaFE introduced into the KCCM80179ΔN2131-PgapA-Hma(mt)-6718 strain is a mutant efflux with increased L-histidine efflux ability, due to the introduction of the I72L mutation (where the 72nd isoleucine (Ile, I) in sequence number 43 is mutated to leucine (Leu, L)) and the I124V mutation (where the 124th isoleucine (Ile, I) in sequence number 43 is mutated to valine (Val, V)) into HmaF.
[0136] The results above confirm that introducing a mutant efflux protein derived from Helcobacillus massiliensis not only increases tolerance to L-histidine concentrations above the minimum inhibitory concentration compared to the wild type, but also significantly increases L-histidine production capacity. These results demonstrate that the selected mutant protein derived from Helcobacillus massiliensis is a mutant L-histidine efflux protein capable of specifically effluxing L-histidine.
[0137] Example 12. Production of a mutant strain derived from Helcobacillus massiliensis based on an L-histidine-producing strain (CA14-737) and evaluation of its L-histidine production capacity. To reconfirm the L-histidine efflux ability of the Helcobacillus massiliensis-derived protein Hma mutant, it was introduced into the L-histidine-producing strain CA14-737 (KCCM12411P, Published Patent No. 10-2019-0065984 of the Republic of Korea), which was derived from wild-type Corynebacterium glutamicum ATCC13032 and had its L-histidine biosynthesis gene strengthened by introducing the HisG polypeptide mutation that eliminates feedback restriction by L-histidine.
[0138] For this purpose, the three vectors produced in Examples 2 and 10 (pDZΔN2131, pDZΔN2131-PgapA-Hma, and pDZΔN2131-PgapA-Hma(mt)-6718) were each transformed into the CA14-737 strain by electroporation. Three strains were then produced in which the NCgl2131 gene on the chromosome was either deleted or replaced with an L-histidine efflux gene through a secondary crossover process, and these were named CA14-737ΔN2131, CA14-737ΔN2131-PgapA-Hma, and CA14-737ΔN2131-PgapA-Hma(mt)-6718, respectively.
[0139] To confirm the L-histidine production ability of the aforementioned CA14-737ΔN2131, CA14-737ΔN2131-PgapA-Hma, and CA14-737ΔN2131-PgapA-Hma(mt)-6718 strains, they were cultured using the method described in Example 4, and the amount of L-histidine produced (histidine content in the culture medium) was measured. The results are shown in Table 10 below:
[0140] [Table 10]
[0141] As shown in Table 10, the CA14-737ΔN2131-PgapA-Hma strain, into which a gene derived from Helcobacillus massiliensis was introduced, showed a 54% increase in L-histidine production compared to the NCgl2131-deficient strain (CA14-737ΔN2131) and the parent strain CA14-737, while the CA14-737ΔN2131-PgapA-Hma(mt)-6718 strain, into which the mutant hma was introduced, showed a 78% increase.
[0142] This confirmed that both wild-type and mutant proteins derived from Helcobacillus massiliensis can specifically excrete L-histidine, and that the selected mutant protein is an L-histidine excretor with higher excretion capacity than the wild-type protein.
[0143] Example 13. Production of vectors for expressing wild-type genes and mutant E. coli derived from Helcobacillus massiliensis. To confirm the L-histidine efflux ability of the Helcobacillus massiliensis-derived protein Hma and its mutants in various bacterial strains, vectors were constructed to express wild-type Hma and Hma mutants, respectively, in Escherichia coli. Each gene was cloned into the E. coli expression vector pCC1BAC (hereinafter, pBAC, Epicenter corp.), and the foreign L-histidine efflux gene candidate was designed to be expressed under the promoter of the E. coli strain MG1655-derived yccA gene (hereinafter, PyccA, Sequence ID No. 51).
[0144] To obtain the Hma protein and mutant gene fragments from Helcobacillus massiliensis, PCR was performed using chromosomal DNA from ATCC13032ΔN2131-PgapA-Hma and ATCC13032ΔN2131-PgapA-Hma(mt)-6718 as templates, utilizing the primer pairs of SEQ ID NOs. 52 and 53, respectively, to obtain wild-type and mutant hmaDNA fragments. The PCR conditions were denaturation at 96°C for 30 seconds; annealing at 53°C for 30 seconds; and polymerization at 72°C for 2 minutes, repeated 30 times. To obtain the PyccA fragment, PCR was performed using the chromosome of MG1655 as a template, utilizing the primer pairs of SEQ ID NOs. 54 and 55. For the PCR reaction, PfuUltra™ high-reliability DNA polymerase (Stratagene) was used, and the PCR conditions were as follows: denaturation at 95°C for 30 seconds; annealing at 55°C for 30 seconds; and polymerization at 72°C for 1 minute, repeated 28 times, followed by polymerization at 72°C for 5 minutes to obtain the PyccA fragment. The obtained wild-type and mutant hma fragments and the PyccA fragment, along with the pBAC vector cleaved with EcoRI restriction enzyme, were cloned using the Gibson assembly method to obtain recombinant plasmids, which were named pBAC-PyccA-Hma and pBAC-PyccA-Hma(mt)-6718.
[0145] Example 14. Production of L-histidine-producing strains derived from Escherichia coli, using the Hma wild-type gene from Helcobacillus massiliensis, and evaluation of L-histidine production capacity. To confirm the L-histidine efflux ability of the Helcobacillus massiliensis-derived protein Hma mutant based on an E. coli-derived L-histidine-producing strain, two vectors produced in Example 13 and a pBAC vector were used with the CA14-9003e strain (MG1655+hisGr hisL'_Δ) possessing the previously reported genotypes (purR-deficient, hisL-deficient, hisGr; The directed modification of Escherichia coli MG1655 to obtain histidine-producing mutants; Applied Biochemistry and Microbiology, 2013, Vol.49, No.2, pp.130-135). Three strains were prepared by introducing ΔpurR) and named CA14-9003e / pBAC, CA14-9003e / pBAC-PyccA-Hma, and CA14-9003e / pBAC-PyccA-Hma(mt)-6718, respectively.
[0146] To confirm the L-histidine production ability of the prepared CA14-9003e / pBAC, CA14-9003e / pBAC-PyccA-Hma, and CA14-9003e / pBAC-PyccA-Hma(mt)-6718 strains, they were cultured using the following method. After culturing the strains in LB solid medium (containing chloramphenicol 25 μg / ml) for 16 hours, each strain was inoculated into a 250 ml square baffled flask containing 25 ml of LB liquid medium and cultured with shaking at 37°C for 20 hours at 200 rpm. Subsequently, 1 ml of seed culture solution was inoculated into a 250 ml square baffled flask containing 25 ml of E. coli production medium (Applied Biochemistry and Microbiology, 2013, Vol.49, No.2, pp.130-135) and cultured with shaking at 37°C for 48 hours at 200 rpm. The culture medium used for the aforementioned culture was as follows:
[0147] <E. coli production medium> Glucose 4% (w / v), yeast extract 0.2% (w / v), ammonium sulfate 1.6% (w / v), dispotassium phosphate trihydrate 0.06% (w / v), ferrous sulfate heptahydrate 0.0005% (w / v), magnesium sulfate pentahydrate 0.0005% (w / v), calcium carbonate, pH 7.2.
[0148] After the culturing was complete, the amount of L-histidine produced (histidine content in the culture medium) was measured by HPLC, and the results are shown in Table 11.
[0149] [Table 11]
[0150] As shown in Table 11, the CA14-9003e / pBAC-PyccA-Hma(mt)-6718 strain, into which the mutant Hma was introduced, was found to have a 30% increase in L-histidine production capacity compared to the wild-type Hma-introduced CA14-9003e / pBAC-PyccA-Hma strain.
[0151] The results above confirm that when the L-histidine extrusion mutant derived from Helcobacillus massiliensis is introduced into microorganisms other than Corynebacterium strains, the ability to excrete L-histidine to the extracellular space is significantly increased.
[0152] From the above description, those skilled in the art will understand that the present invention can be implemented in other specific forms without altering its technical concept or essential features. In this regard, the embodiments described above should be understood to be illustrative and not limiting in all respects. The scope of the present invention should be interpreted as encompassing all modified or altered forms derived from the meaning and scope of the claims and their equivalent concepts described below, rather than from the above detailed description.
Claims
1. A sequence comprising an amino acid sequence having 90% or more sequence identity with the amino acid sequence of Sequence ID No. 43, (1) The amino acid corresponding to the 72nd amino acid residue in the amino acid sequence of SEQ ID NO: 43 is substituted with leucine, (2) A mutant L-histidine efflux protein in which the amino acid corresponding to the 124th residue of the amino acid sequence of SEQ ID NO: 43 is substituted with valine.
2. The protein according to claim 1, wherein the mutant L-histidine efflux protein comprises an amino acid sequence having 95% or more sequence identity with the amino acid sequence of SEQ ID NO:
43.
3. The aforementioned protein has 99% or more sequence identity with the amino acid sequence of Sequence ID No.
56. The protein according to claim 1.
4. A polynucleotide encoding a protein according to any one of claims 1 to 3.
5. A protein according to any one of claims 1 to 3, or a protein encoding the said protein. Microorganisms containing polynucleotides.
6. The microorganism according to claim 5, wherein the microorganism has the ability to produce L-histidine.
7. The microorganism is of the genus Corynebacterium or Escherichia, as described in claim 5. Microorganisms.
8. The microorganism in question is Corynebacterium glutamicum or Escherichia coli. The microorganism described in claim 7.
9. The protein according to any one of claims 1 to 3, The polynucleotide encoding the protein, or A composition for L-histidine production, comprising a recombinant microorganism containing the aforementioned polynucleotide.
10. A protein according to any one of claims 1 to 3, or a protein encoding the said protein. Production of L-histidine, comprising the step of culturing a microorganism containing polynucleotides in a culture medium. method.
11. After the culturing step, L-histidine is recovered from the cultured microorganisms or culture medium. A method for producing L-histidine according to claim 10, further comprising the step of [doing something].
Citation Information
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