Fermentative production method of guanidinoacetic acid
By engineering a microorganism to express L-arginine:glycine amidinotransferase and overexpressing related enzymes, the production of guanidinoacetic acid and subsequently creatine is enhanced, addressing the limitations of previous methods and enabling efficient fermentative production from basic substrates.
Patent Information
- Application Number
- JP2022537864
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-12-19
- Filing Date
- 2020-12-14
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2040-12-14
AI Technical Summary
Existing methods have not effectively addressed the production of guanidinoacetic acid (GAA) in microorganisms, which is a precursor to creatine, limiting the efficient supply of creatine to organisms.
A microorganism is engineered to express a heterologous gene encoding L-arginine:glycine amidinotransferase (AGAT) with increased activity, combined with overexpression of enzymes involved in the arginine biosynthesis pathway, such as ornithine carbamoyltransferase, argininosuccinate synthetase, and argininosuccinate lyase, to enhance GAA production.
The engineered microorganism significantly increases GAA production, allowing for efficient fermentative production of creatine from primary substrates like ammonia and glucose, improving the supply of creatine.
Smart Images

Figure 0007680454000001 
Figure 0007680454000002 
Figure 0007680454000003
Abstract
Description
[Technical field]
[0001] The present invention relates to a microorganism transformed so as to be capable of producing guanidinoacetic acid (GAA), and to a method for the fermentative production of GAA using such a microorganism.The present invention also relates to a method for the fermentative production of creatine.
[0002] GAA is an organic compound that is used as an animal feed additive (WO2005120246 / US2011257075). GAA is a natural precursor of creatine (e.g., Humm et al., Biochem. J. (1997) 322, 771-776). Therefore, supplementation with GAA allows optimal supply of creatine to the organism.
[0003] The present invention relates to a method for producing GAA by a fermentation process using industrial feedstocks (e.g., substrates containing ammonia, ammonium salts, and glucose or sugars) as starting materials. In biological systems, GAA and ornithine are formed from arginine and glycine as starting materials by the catalysis of L-arginine:glycine-amidinotransferase (AGAT; EC 2.1.4.1), which is the first step in creatine biosynthesis (US 20060200870): [ka]
[0004] Guthmiller et al. (J Biol Chem. 1994 Jul 1;269(26):17556-60) characterized rat kidney AGAT by cloning and heterologously expressing the enzyme in E. coli. Muenchhoff et al. (FEBS Journal 277 (2010) 3844-3860) reported the first characterization of AGAT from a prokaryote, also by cloning and heterologously expressing the enzyme in E. coli. Sosio et al. (Cell Chemical Biology 25, 540-549, May 17, 2018) elucidated the biosynthetic pathway of pseudouridimycin in Streptomyces species. Sosio et al. described the reaction of L-arginine with glycine to form GAA and L-ornithine as an intermediate reaction catalyzed by the L-arginine:glycine-amidinotransferase (AGAT), PumN. Humm et al. expressed a recombinant gene encoding human AGAT in Escherichia coli and identified cysteine-407 as the active site residue of AGAT (Biochem. J. (1997) 322, 771-776).
[0005] Mijts et al. (WO2018079687) disclose that creatine can be produced from L-arginine and glycine in the context of the production of target substances, such as vanillin and vanillic acid, in microorganisms. Mijts et al. further propose that this can be achieved by using L-arginine biosynthetic enzymes, glycine biosynthetic enzymes, and enzymes that catalyze the conversion of L-arginine and glycine to creatine. Combining L-arginine and glycine, guanidinoacetic acid (GAA) and ornithine can be produced by the action of AGAT (EC 2.1.4.1), and this GAA can be methylated by the action of guanidinoacetic acid N-methyltransferase (GAMT, EC 2.1.1.2) using S-adenosylmethionine (SAM) as the methyl donor to produce creatine. Mijts et al. state that in the context of polyamine production, examples of L-arginine biosynthetic enzymes may include not only the known L-ornithine biosynthetic enzymes, but also enzymes known from the so-called L-ornithine cycle, namely carbamoylphosphate synthase (carAB), ornithine carbamoyltransferase (argF, argI), argininosuccinate synthetase (argG), and argininosuccinate lyase (argH) (see Marc et al., Eur. J. Biochem. 267, 5217-5226, 200).
[0006] Also known from the literature are some more specific approaches to increase the production of one of the starting materials for GAA synthesis, namely L-arginine, in microorganisms, especially bacteria. An overview of metabolic engineering of Corynebacterium glutamicum (C. glutamicum) for L-arginine production is given by Park et al. (NATURE COMMUNICATIONS | DOI: 10.1038 / ncomms5618). Park et al. propose that a stepwise rational metabolic engineering based on random mutagenesis and screening of L-arginine producing C. glutamicum strains already producing L-arginine, such as ATCC 21831 (Nakayama and Yoshida 1974, US Pat. No. 3,849,250), and metabolic analysis of the whole system, results in a gradual increase in L-arginine production throughout the strain engineering process. Yim et al. (J Ind Microbiol Biotechnol (2011) 38:1911-1920) were able to show that inactivating argR, the gene encoding the key repressor protein ArgR controlling the L-arginine biosynthetic pathway, in C. glutamicum by disruption of the chromosomal argR gene resulted in an improved arginine producing strain. Ginesy et al. (Microbial Cell Factories (2015) 14:29) reported successful engineering of E. coli for improved arginine production. In particular, Ginesy et al. proposed the deletion of the argR repressor gene.
[0007] Kurahashi et al. (European Patent Publication No. 1057893) report a method for enhancing the L-arginine production ability of a microorganism by using recombinant DNA technology, for example, a microorganism belonging to the genus Corynebacterium or Brevibacterium, which is made to carry vector DNA and recombinant DNA containing DNA fragments having genes for acetylornithine deacetylase, N-acetylglutamate-γ-semialdehyde dehydrogenase, N-acetylglutamokinase and argininosuccinase derived from a microorganism belonging to the genus Escherichia, thereby enhancing L-arginine biosynthetic enzymes. Kurahashi et al. further propose a microorganism having L-arginine production ability with an increased activity of intracellular glutamate dehydrogenase (GDH) for improving L-arginine production.
[0008] A method using a genetically engineered strain in which argR, a gene that inhibits the expression of the arginine biosynthesis operon, was inactivated has been reported by Suga et al. (U.S. Patent No. 7,160,705). In particular, the deletion of argR, which controls the arginine operon, has been considered to be an important factor in arginine production.
[0009] In Corynebacterium microorganisms, the argCJBDFR genes involved in arginine biosynthesis are organized in the form of an operon and are subject to feedback inhibition by intracellular arginine (Sakanyan et al., Microbiology, 142:9-108, 1996), limiting the high-yield production of L-arginine.
[0010] However, Bae et al. (EP 3153573), in an attempt to increase the production yield of L-arginine in C. glutamicum, discovered that by increasing the activity of the arginine operon and ornithine carbamoyltransferase (ArgF, ArgF2), L-arginine could be produced at a higher yield compared to the parent L-arginine producing strain without deleting the arginine repressor (argR).
[0011] The arginine operon is an operon consisting of genes encoding enzymes involved in the L-arginine biosynthesis mechanism, and in particular, the arginine operon consists of genes encoding enzymes that constitute the cyclical steps of L-arginine biosynthesis. Specifically, the arginine operon consists of N-acetylglutamylphosphate reductase (ArgC), glutamate N-acetyltransferase (ArgJ), N-acetylglutamate kinase (ArgB), acetylornithine aminotransferase (ArgD), ornithine carbamoyltransferase (ArgF) and arginine repressor (ArgR). These enzymes are involved in the successive enzymatic reactions of L-arginine biosynthesis and are controlled by the arginine repressor encoded by argR (WO 2006 / 057450).
[0012] Fan Wenchao has disclosed a method for producing creatine by fermentation of non-pathogenic microorganisms such as Corynebacterium glutamicum (China Patent Publication No. 106065411). This microorganism has the following biotransformation functions: conversion of glucose to L-glutamic acid; conversion of L-glutamic acid to N-acetyl-L-glutamic acid; conversion of N-acetyl-L-glutamic acid to N-acetyl-L-glutamic acid semialdehyde; conversion of N-acetyl-L-ornithine to N-acetyl-L-ornithine; conversion of L-ornithine to L-citrulline; conversion of L-citrulline to argininosuccinic acid; conversion of argininosuccinic acid to L-arginine; conversion of L-arginine to guanidinoacetic acid; and finally conversion of guanidinoacetic acid to creatine. Fan Wenchao proposes that the microorganism overexpresses one or more enzymes selected from the group consisting of N-acetylglutamate synthase, N-acetylornithine-δ-aminotransferase, N-acetylornithinase, ornithine carbamoyltransferase, argininosuccinate synthetase, glycine amidinotransferase (EC:2.1.4.1) and guanidinoacetate N-methyltransferase (EC:2.1.1.2). The microorganism preferably overexpresses glycine aminotransferase (L-arginine:glycine amidinotransferase) and guanidinoacetate N-methyltransferase.
[0013] So far, microorganisms suitable for increasing the production of GAA compared to the wild-type form, and the respective methods for the production of GAA using such microorganisms, have not been reported.
[0014] Therefore, the problem underlying the present invention is to provide a microorganism transformed so as to be capable of producing guanidinoacetic acid (GAA), and a method for the fermentative production of GAA using such a microorganism.
[0015] This problem is solved by a microorganism which comprises at least one heterologous gene encoding a protein having the function of L-arginine:glycine amidinotransferase (AGAT), in which the activity of an enzyme having the function of carbamoylphosphate synthase (EC 6.3.4.16) is increased compared to the respective enzymatic activity in a wild-type microorganism.
[0016] Heterologous gene means that a gene is inserted into a host organism that does not naturally have this gene. The insertion of a heterologous gene into a host is achieved by recombinant DNA technology. Microorganisms that have been subjected to recombinant DNA technology are called transgenic, genetically engineered or recombinant. Thus, the microorganism according to the present invention is recombinant.
[0017] An increase in the activity of an enzyme with the function of carbamoyl phosphate synthase can be achieved by mutation and / or overexpression of the gene encoding an enzyme with the function of carbamoyl phosphate synthase.
[0018] The activity of L-arginine:glycine amidinotransferase can also be increased by mutation and / or overexpression of the gene encoding L-arginine:glycine amidinotransferase.
[0019] Proteins with the function of L-arginine:glycine amidinotransferase (AGAT) belong to the amidinotransferase family. The amidinotransferase family includes glycine (EC:2.1.4.1) and inosamine (EC:2.1.4.2) amidinotransferases, enzymes involved in the biosynthesis of creatine and streptomycin, respectively. This family also includes arginine deiminase, EC:3.5.3.6. These enzymes react with arginine + H 2 O⇔Citrulline + NH 3This family also includes the streptococcal antitumor glycoproteins. It has also been described that enzymes or proteins with L-arginine:glycine-amidinotransferase (AGAT) activity have a conserved domain belonging to the PFAM family: Amidinotransf (PF02274) (:Marchler-Bauer A et al. (2017), “CDD / SPARCLE: functional classification of proteins via subfamily domain architectures.”, Nucleic Acids Res. 45(D1):D200-D203.), which are also described in the following publications:Pissowotzki K et al., Mol Gen Genet 1991;231:113-123 (PUBMED:1661369 EPMC:1661369);D'Hooghe I et al., J Bacteriol 1997;179:7403-7409 (PUBMED:9393705 EPMC:9393705);Kanaoka M et al. , Jpn J Cancer Res 1987;78:1409-1414 (PUBMED:3123442 EPMC:3123442). Specific examples of AGATs are those of Moorea producens, Homo sapiens, Rattus norvegicus, Galeopterus variegatus and Cylindrospermopsis raciborskii.
[0020] The microorganism according to the invention ideally has an improved ability to produce L-arginine compared to that of a wild-type microorganism, this property can be achieved by selection of a microorganism which may be a natural L-arginine producer or which has acquired the ability to produce L-arginine by mutation.
[0021] A microorganism according to the invention, which has an improved ability to produce L-arginine compared to the ability of a wild-type microorganism, may have an increased activity of an enzyme having the function of argininosuccinate lyase (EC 4.3.2.1) compared to the respective enzymatic activity in the wild-type microorganism.
[0022] Furthermore, in the microorganism according to the invention, the activity of an enzyme having the function of ornithine carbamoyltransferase (EC 2.1.3.3) may be increased compared to the respective enzymatic activity in a wild-type microorganism.
[0023] In the microorganism according to the invention, the activity of an enzyme having the function of argininosuccinate synthetase (EC 6.3.4.5) may also be increased compared to the respective enzymatic activity in the wild-type microorganism.
[0024] Increasing the enzyme activity in a microorganism can be achieved, for example, by mutation of the corresponding endogenous gene. A further means of increasing the enzyme activity can be to stabilize the mRNA encoding the enzyme.
[0025] The increase in activity of the above-mentioned enzymes can also be achieved by overexpressing the genes encoding the respective enzymes.In other words, this problem is preferably solved by a microorganism whose ability to produce L-arginine is improved compared to that of wild-type organisms and / or which has at least one or more overexpressed genes (e.g. carA, carB) encoding a protein with the function of carbamoyl phosphate synthase (EC 6.3.4.16), and further comprises a gene encoding a protein with the function of L-arginine:glycine amidinotransferase (AGAT, e.g. EC 2.1.4.1).
[0026] The microorganism according to the invention preferably also comprises at least one overexpressed gene selected from the group consisting of a gene encoding a protein having the function of ornithine carbamoyltransferase (EC 2.1.3.3) (e.g. argF / argF2 / argI), a gene encoding a protein having the function of argininosuccinate synthetase (EC 6.3.4.5) (e.g. argG), and a gene encoding a protein having the function of argininosuccinate lyase (EC 4.3.2.1) (e.g. argH).
[0027] Overexpression of a gene is generally achieved by increasing the copy number of the gene, and / or operably linking the gene to a strong promoter, and / or enhancing the ribosome binding site, and / or optimizing codon usage at the start codon or throughout the gene, or a combination including selection of all of the above methods.
[0028] In the context of the present invention, a microorganism with improved ability to produce L-arginine refers to a microorganism that produces L-arginine in excess of its own requirements. Examples of such L-arginine producing microorganisms are, for example, C. glutamicum ATCC 21831, or those disclosed by Park et al. (NATURE COMMUNICATIONS | DOI: 10.1038 / ncomms5618) or Ginesy et al. (Microbial Cell Factories (2015) 14:29).
[0029] In one embodiment of the microorganism according to the present invention, the arginine operon (argCJBDFR) may be overexpressed.
[0030] Alternatively, in the microorganism according to the present invention, the argR gene encoding the arginine-responsive repressor protein ArgR may be attenuated or deleted.
[0031] In a further embodiment of the invention, and optionally in addition to the above-mentioned modifications, at least one or more of the genes encoding the enzymes of the L-arginine biosynthetic pathway consisting of gdh, argJ, argB, argC and / or argD encoding glutamate dehydrogenase, ornithine acetyltransferase, acetylglutamate kinase, acetylglutamylphosphate reductase and acetylornithine aminotransferase, respectively, are overexpressed in the microorganism according to the invention.
[0032] Various names of the enzymes involved or contributing to arginine biosynthesis in different species, namely, E. coli, C. glutamicum and Pseudomonas putida (P. putida), are given in Table 1.
[0033] In the microorganism of the present invention, the gene encoding the protein having the function of L-arginine:glycine amidinotransferase may be further overexpressed.Overexpression of the gene is generally achieved by increasing the copy number of the gene, and / or operably linking the gene to a strong promoter, and / or enhancing the ribosome binding site, and / or optimizing the codon usage of the start codon or the whole gene, or a combination including selection of all the above methods.
[0034] [Table 1-1] [Table 1-2]
[0035] The protein having the function of L-arginine:glycine amidinotransferase (AGAT) in the microorganism of the invention may comprise an amino acid sequence that is at least 70% homologous, preferably at least 80% or at least 90% homologous to the amino acid sequence according to SEQ ID NO:2 or SEQ ID NO:4 ("AGAT_Mp" for Moorea producens). In a further embodiment of the invention, the amino acid sequence of L-arginine:glycine amidinotransferase is identical to the amino acid sequence according to SEQ ID NO:2 or SEQ ID NO:4 (see database UniProt, 15 February 2017, "Glycine amidinotransferase", XP055706853, EBI accession number UNIPROT:A0A1D8TKD3). The sequence of the wild-type DNA encoding Moorea producens AGAT is SEQ ID NO:1 and the corresponding DNA sequence codon-optimized for C. glutamicum is SEQ ID NO:3. The corresponding DNA sequence of the Moorea producens AGAT gene codon-optimized for P. putida is SEQ ID NO:33.
[0036] The protein having the function of L-arginine:glycine amidinotransferase in the microorganism of the invention may comprise an amino acid sequence that is at least 70% homologous, preferably at least 80% or at least 90% homologous to the amino acid sequence according to SEQ ID NO: 16 or SEQ ID NO: 26 ("AGAT_cyrA" of Cylindrospermopsis raciborskii ATW205). In a further embodiment of the invention, the amino acid sequence of the L-arginine:glycine amidinotransferase is identical to the amino acid sequence according to SEQ ID NO: 16 or SEQ ID NO: 26. The sequence of the wild-type DNA encoding Cylindrospermopsis raciborskii AGAT is SEQ ID NO: 15, and the corresponding DNA sequence codon-optimized for C. glutamicum is SEQ ID NO: 25.
[0037] The protein having the function of L-arginine:glycine amidinotransferase in the microorganism of the invention may comprise an amino acid sequence that is at least 70% homologous, preferably at least 80% or at least 90% homologous to the amino acid sequence according to SEQ ID NO: 23 ("AGAT_Gv" of Galeopterus variegatus), preferably SEQ ID NO: 24 or SEQ ID NO: 32. In a further embodiment of the invention, the amino acid sequence of the L-arginine:glycine amidinotransferase is identical to the amino acid sequence according to SEQ ID NO: 24 or SEQ ID NO: 32. The sequence of the corresponding Galeopterus variegatus AGAT DNA codon-optimized for C. glutamicum is SEQ ID NO: 31.
[0038] A protein having the function of L-arginine:glycine amidinotransferase in a microorganism according to the invention may comprise an amino acid sequence that is at least 70% homologous, preferably at least 80% or at least 90% homologous to an amino acid sequence according to SEQ ID NO: 18 ("AGAT_Hs" in homo sapiens), preferably SEQ ID NO: 20 or SEQ ID NO: 28, for example an amino acid sequence according to SEQ ID NO: 21 or SEQ ID NO: 22 or SEQ ID NO: 30 ("AGAT Rn" in Rattus norvegicus, respectively; the corresponding DNA codon-optimized for C. glutamicum is SEQ ID NO: 29). In a further embodiment of the invention, the amino acid sequence of L-arginine:glycine amidinotransferase is identical to the amino acid sequence according to SEQ ID NO: 18. The wild-type DNA sequence encoding Homo sapiens AGAT is SEQ ID NO:17, and the corresponding DNA sequence codon-optimized for C. glutamicum is SEQ ID NO:27.
[0039] The microorganism of the present invention may belong to the genus Corynebacterium, preferably Corynebacterium glutamicum (C. glutamicum), or the family Enterobacteriaceae, preferably Escherichia coli (E. coli), or the genus Pseudomonas, preferably Pseudomonas putida (P. putida).
[0040] Generally, an increase in the activity of an enzyme in a microorganism can be achieved, for example, by mutation of the corresponding endogenous gene. The activity of an enzyme can also be increased by overexpression of the corresponding gene.
[0041] Generally, overexpression of a gene according to the invention is achieved by increasing the copy number of the gene and / or enhancing the regulatory factors, for example by functionally linking the gene with a strong promoter and / or enhancing the ribosome binding site and / or optimizing the codon usage of the start codon or the whole gene. Enhancement of such regulatory factors, which positively influence gene expression, can be achieved, for example, by modifying the promoter sequence upstream of the structural gene to increase the promoter's effectiveness or by completely replacing said promoter with a more effective or so-called strong promoter. The promoter is located upstream of the gene. The promoter is a DNA sequence consisting of about 40-50 base pairs, which constitutes the binding site of the RNA polymerase holoenzyme and the transcription start point and can affect the strength of expression of the polynucleotide or gene to be controlled. Generally, it is possible to achieve overexpression or increased expression of genes in bacteria by selecting a strong promoter, for example by replacing the original promoter with a strong native (originally assigned to another gene) promoter, or by modifying certain regions of a given native promoter (for example its so-called -10 and -35 regions) towards consensus sequences, as taught for example for C. glutamicum by M. Patek et al. (Microbial Biotechnology 6 (2013), 103-117). "Operatively linked" is understood to mean that the promoter is placed in contiguous with the gene, resulting in transcription of the gene.
[0042] The genetic code is degenerate, i.e., a certain amino acid may be coded by several different triplets. The term codon usage refers to the observation that a certain organism does not usually use all possible codons for a certain amino acid with the same frequency. Instead, organisms usually show a certain preference for certain codons, i.e., these codons are more frequently found in the coding sequence of the organism's transcribed genes. If it is desired that a certain gene, foreign to the future host, i.e., from a different species, is expressed in the future host organism, the coding sequence of said gene needs to be adjusted according to the codon usage of said future host organism (i.e., codon usage optimization).
[0043] The above mentioned problem is further solved by a method for the fermentative production of guanidinoacetic acid (GAA), comprising the steps of a) culturing a microorganism according to the invention as defined above in a suitable medium under suitable conditions, and b) accumulating GAA in the medium to form a GAA-containing fermentation broth.
[0044] The method according to the invention may further comprise the addition of glycine and / or L-arginine and / or L-ornithine to the medium.Preferably, the medium is added with glycine at a concentration ranging from 0.1 to 300 g glycine per 1 liter of medium, preferably 0.82 g glycine per 1 liter of medium, and / or L-arginine to obtain a concentration ranging from 0.1 to 200 g L-arginine per 1 liter of medium, preferably 1.9 g L-arginine per 1 liter of medium.
[0045] The method of the present invention may further comprise a step of isolating GAA from the fermentation broth.
[0046] The method according to the invention may further comprise the step of drying and / or granulating the GAA-containing fermentation broth.
[0047] The present invention further relates to a microorganism as defined above, further comprising a gene encoding an enzyme having the activity of guanidinoacetate N-methyltransferase (EC:2.1.1.2).Preferably, the gene encoding an enzyme having the activity of guanidinoacetate N-methyltransferase is overexpressed.
[0048] The present invention also relates to a method for the fermentative production of creatine, comprising the steps of: a) culturing a microorganism according to the present invention, comprising a gene encoding an enzyme having the activity of guanidinoacetate N-methyltransferase, in a suitable medium under suitable conditions; and b) accumulating creatine in the medium to form a creatine-containing fermentation broth.
[0049] Preferably, the method further comprises isolating creatine from the creatine-containing fermentation broth.Creatine can be extracted from the fermentation broth by isoelectric focusing and / or ion exchange.Alternatively, creatine can be further purified by recrystallization in water.
[0050] Experimental section A) Materials and Methods chemicals Kanamycin solution derived from Streptomyces kanamyceticus was purchased from Sigma Aldrich (St. Louis, USA, Cat. No. K0254). IPTG (isopropyl β-D-1-thiogalactopyranoside) was purchased from Carl-Roth (Karlsruhe, Germany, Cat. No. 2316.4.). Unless otherwise stated, all other chemicals were purchased analytically pure from Merck (Darmstadt, Germany), Sigma Aldrich (St. Louis, USA) or Carl-Roth (Karlsruhe, Germany).
[0051] Culture for cell proliferation Unless otherwise stated, culture / incubation procedures were as follows: a. E. coli strains were grown in liquid medium using LB broth (MILLER) from Merck (Darmstadt, Germany; Cat. No. 110285). Liquid cultures (10 ml of liquid medium per 100 ml Erlenmeyer flask with 3 baffles) were incubated at 30° C. and 200 rpm in an Infors HT Multitron standard incubator shaker from Infors GmbH (Bottmingen, Switzerland). b. LB agar (MILLER) from Merck (Darmstadt, Germany, Cat. No. 110283) was used for culturing E. coli strains on agar plates. The agar plates were incubated at 30° C. in an INCU-Line® mini incubator from VWR (Radnor, USA). C. glutamicum strains were grown in liquid medium using Brain Heart Infusion Broth (BHI) from c. Merck (Darmstadt, Germany, Cat. No. 110493). Liquid cultures (10 ml of liquid medium per 3-baffled 100 ml Erlenmeyer flask) were incubated at 30° C. and 200 rpm in an Infors HT Multitron standard incubator shaker from Infors GmbH (Bottmingen, Switzerland). d. Brain Heart Agar (BHI agar) from Merck (Darmstadt, Germany, Cat. No. 113825) was used for culturing C. glutamicum strains on agar plates. Agar plates were incubated at 30° C. in a Heraeus Instruments (Hanau, Germany) incubator equipped with a Kelvitron® temperature controller. e. For the cultivation of C. glutamicum after electroporation, BHI agar (Merck, Darmstadt, Germany, Cat. No. 113825) was supplemented with 134 g / l sorbitol (Carl Roth GmbH + Co. KG, Karlsruhe, Germany), 2.5 g / l yeast extract (Oxoid / ThermoFisher Scientific, Waltham, USA, Cat. No. LP0021) and 25 mg / l kanamycin. Agar plates were incubated at 30° C. in a Heraeus Instruments (Hanau, Germany) incubator equipped with a Kelvitron® temperature controller.
[0052] Determination of optical density of bacterial suspensions a. The optical density of the bacterial suspension in shake flask cultures was determined at 600 nm (OD600) using a BioPhotometer from Eppendorf AG (Hamburg, Germany). b. The optical density of bacterial suspensions produced in a Wouter Duetz (WDS) microfermentation system (24-well plates) was determined at 660 nm (OD660) using a GENios™ plate reader from Tecan Group AG (Maennedorf, Switzerland).
[0053] Centrifugation a. A maximum volume of 2 ml of the bacterial suspension was centrifuged in 1.5 ml or 2 ml reaction tubes (e.g. Eppendorf Tubes® 3810X) using an Eppendorf 5417 R tabletop centrifuge (13000 rpm for 5 min). b. A maximum volume of 50 ml of the bacterial suspension was centrifuged in a 15 ml or 50 ml centrifuge tube (e.g., a Falcon™ 50 ml conical centrifuge tube) for 10 minutes at 4000 rpm in an Eppendorf 5810 R tabletop centrifuge.
[0054] DNA isolation Plasmid DNA was isolated from E. coli cells using the QIAprep Spin Miniprep Kit from Qiagen (Hilden, Germany, Cat. No. 27106) according to the manufacturer's instructions.
[0055] Polymerase chain reaction (PCR) PCR with proofreading (high-fidelity) polymerases was used to amplify desired segments of DNA for Sanger sequencing or DNA assembly. Non-proofreading polymerase kits were used to determine the presence or absence of desired DNA fragments directly from E. coli or C. glutamicum colonies.
[0056] a. The Phusion® High-Fidelity DNA Polymerase Kit (Phusion Kit) from New England BioLabs Inc. (Ipswich, USA, Cat. No. M0530) was used for template-correct amplification of selected DNA regions according to the manufacturer's instructions (see Table 2).
[0057] [Table 2]
[0058] b. The presence of the desired segment of DNA was confirmed by amplifying it using the Taq PCR Core Kit (Taq Kit) from Qiagen (Hilden, Germany, Catalog No. 201203). The kit was used according to the manufacturer's instructions (see Table 3).
[0059] [Table 3]
[0060] c. SapphireAmp® Fast PCR Master Mix (Sapphire Mix) from Takara Bio Europe SAS, Saint-Germain-en-Laye, France, Catalog No. RR350A / B, according to the manufacturer's instructions, was used as an alternative to confirm the presence of the desired segment of DNA in cells taken from colonies of E. coli or C. glutamicum (see Table 4).
[0061] [Table 4]
[0062] d. All oligonucleotide primers were synthesized by Eurofins Genomics GmbH (Ebersberg, Germany) using the phosphoramidite method described by McBride and Caruthers (1983). e. As PCR template, an appropriately diluted solution of either isolated plasmid DNA, or total DNA isolated from liquid cultures, or total DNA contained in bacterial colonies (colony PCR) was used. For the colony PCR, the template was prepared by picking cellular material from colonies on an agar plate with a toothpick and placing the cellular material directly into a PCR reaction tube. The cellular material was heated for 10 seconds at 800 W in a microwave oven of the type Mikrowave & Grill from SEVERIN Elektrogeraete GmbH (Sundern, Germany), after which PCR reagents were added to the template in the PCR reaction tube. f. All PCR reactions were carried out in a Mastercycler or Mastercycler nexus gradient type PCR cycler from Eppendorf AG (Hamburg, Germany).
[0063] Restriction enzyme digestion of DNA For restriction enzyme digestion, either "FastDigest restriction endonuclease (FD)" (ThermoFisher Scientific, Waltham, USA) or New England BioLabs Inc. (Ipswich, USA) restriction endonucleases were used. Reactions were performed according to the instructions in the manufacturer's manual.
[0064] Determining the size of DNA fragments a. The size of small DNA fragments (<1000 bp) was routinely determined by automated capillary electrophoresis using a QIAxcel from Qiagen (Hilden, Germany). b. If DNA fragments needed to be isolated or were >1000 bp, DNA was separated by TAE agarose gel electrophoresis and stained with GelRed® Nucleic Acid Gel Stain (Biotium, Inc., Fremont, Canada). Stained DNA was visualized at 302 nm.
[0065] Purification of PCR amplification products and restriction fragments PCR amplification products and restriction fragments were cleaned up using the QIAquick PCR Purification Kit from Qiagen (Hilden, Germany; Cat. No. 28106) according to the manufacturer's instructions. DNA was eluted in 30 μl of 10 mM Tris-HCl (pH 8.5).
[0066] Determination of DNA concentration Since 2015, DNA concentrations have been measured using a NanoDrop Spectrophotometer ND-1000 from PEQLAB Biotechnologie GmbH (Erlangen, Germany) under the VWR brand.
[0067] Assembly cloning Plasmid vectors were assembled using the "NEBuilder HiFi DNA Assembly Cloning Kit" purchased from New England BioLabs Inc. (Ipswich, USA, Cat. No. E5520). The reaction mix containing the linearized vector and at least one DNA insert was incubated at 50°C for 60 min. 0.5 μl of the assembly mix was used for each transformation experiment.
[0068] Chemical transformation of E. coli For plasmid cloning, chemically competent "NEB® Stable Competent E. coli (High Efficiency)" (New England BioLabs Inc., Ipswich, USA, Cat. No. C3040) was transformed according to the manufacturer's protocol. Successfully transformed cells were selected on LB agar supplemented with 25 mg / l kanamycin.
[0069] Transformation of C. glutamicum Transformation of C. glutamicum with plasmid DNA was performed by electroporation using a "Gene Pulser Xcell" (Bio-Rad Laboratories GmbH, Feldkirchen, Germany) as described by Ruan et al. (2015). Electroporation was performed in 1 mm electroporation cuvettes (Bio-Rad Laboratories GmbH, Feldkirchen, Germany) at 1.8 kV and a fixed time constant set at 5 ms. Transformed cells were selected on BHI agar containing 134 g / l sorbitol, 2.5 g / l yeast extract and 25 mg / l kanamycin.
[0070] Nucleotide sequence determination The nucleotide sequences of the DNA molecules were determined by cycle sequencing on a 3730xl DNA Analyzer from Applied Biosystems® (Carlsbad, CA, USA) by Eurofins Genomics GmbH (Ebersberg, Germany) using the dideoxy chain termination method of Sanger et al. (Proceedings of the National Academy of Sciences USA 74, 5463 - 5467, 1977). Sequences were visualized and evaluated using Clonemanager Professional 9 software from Scientific & Educational Software (Denver, USA).
[0071] Glycerol stocks of E. coli and C. glutamicum strains Glycerol stocks were prepared for long-term storage of E. coli and C. glutamicum strains. Selected E. coli clones were cultured in 10 ml of LB medium supplemented with 2 g / l glucose. Selected C. glutamicum clones were cultured in 10 ml of 2x concentrated BHI medium supplemented with 2 g / l glucose. Cultures of plasmid-containing E. coli and C. glutamicum strains were supplemented with 25 mg / l kanamycin. The medium was placed in a 3-baffled 100 ml Erlenmeyer flask. This was inoculated with a loop of cells taken from a colony. The culture was then incubated for 18 hours at 30°C and 200 rpm. After the above incubation period, 1.2 ml of 85% (v / v) sterile glycerol was added to the culture. The resulting glycerol-containing cell suspension was then aliquoted at 2 ml and stored at -80°C.
[0072] GAA production in milliliter-scale cultures GAA production of the strains was evaluated using the milliliter-scale culture system according to Duetz (2007). For this purpose, 24-deep-well microplates (24-well WDS plates) from EnzyScreen BV (Heemstede, Netherlands, Cat. No. CR1424) filled with 2.5 ml of medium per well were used.
[0073] Preculture of the strains was performed in 10 ml of seed medium (SM). The medium was placed in a 100 ml Erlenmeyer flask with 3 baffles. This was inoculated with 100 μl of glycerol stock culture and the culture was incubated at 30° C. and 200 rpm for 24 hours. The composition of seed medium (SM) is shown in Table 5.
[0074] [Table 5]
[0075] After the above incubation period, the optical density OD600 of the pre-culture was determined. The volume required to inoculate 2.5 ml of production medium (PM) to an OD600 of 0.1 was sampled from the pre-culture, centrifuged (8000 g for 1 min) and the supernatant was discarded. The cells were then resuspended in 100 μl of production medium.
[0076] The main culture was initiated by inoculating 100 μl of resuspended cells from the preculture into wells of a 24-well WDS plate containing 2.4 ml of production medium (PM), the composition of which is shown in Table 6.
[0077] [Table 6]
[0078] The culture was incubated at 30° C. and 300 rpm in an Infors HT Multitron standard incubator shaker from Infors GmbH (Bottmingen, Switzerland) for 72 h until glucose was completely consumed. The glucose concentration in the suspension was analyzed using a blood glucose meter OneTouch Vita® from LifeScan (Johnson & Johnson Medical GmbH, Neuss, Germany).
[0079] After incubation, the culture suspension was transferred to a deep-well microplate. A portion of the culture suspension was appropriately diluted to measure OD600. Another portion of the culture was centrifuged, and the concentration of GAA in the supernatant was analyzed as described below.
[0080] Determination of L-arginine and glycine contents in yeast peptone FM902 Yeast extract FM902 (Angel Yeast Co., LTD, Hubei, PRChina) contains various peptides and amino acids, so its L-arginine and glycine contents were measured as follows.
[0081] To measure free amino acids, samples were prepared by dissolving 1 g of yeast extract in 20 ml of water, adding water to the solution until the total volume was 25 ml, mixing thoroughly, and filtering using a 0.2 μM nylon syringe filter.
[0082] To measure total amino acids (free amino acids + peptide-bound amino acids), samples were prepared by dissolving 1 g of yeast extract in 10 ml of 6 M HCl and incubating this at 110° C. for 24 hours. Water was then added to a total volume of 25 ml. The solution was mixed thoroughly and filtered using a 0.2 μM nylon syringe filter.
[0083] The concentrations of L-arginine and glycine in the samples were determined by ion exchange chromatography using a SYKAM S433 amino acid analyzer from SYKAM Vertriebs GmbH (Fuerstenfeldbruck, Germany). As solid phase a column containing spherical polystyrene-based cation exchanger from SYKAM (Peek LCA N04 / Na, dimensions 150 x 4.6 mm) was used. Depending on the L-amino acid, separation was performed by isocratic run with a mixture of buffers A and B for elution or by gradient elution with the above mentioned buffers. Buffer A was an aqueous solution containing 263 g trisodium citrate, 120 g citric acid, 1100 ml methanol, 100 ml 37% HCl and 2 ml octanoic acid in 20 liters (final pH 3.5). An aqueous solution containing 392 g trisodium citrate, 100 g boric acid, and 2 ml octanoic acid (final pH 10.2) in 20 L was used as buffer B. Free amino acids were stained with ninhydrin by post-column derivatization and detected photometrically at 570 nm.
[0084] Table 7 shows the free and total L-arginine and glycine contents determined in yeast extract FM902 (Angel Yeast Co., LTD, Hubei, PRChina) and the resulting amounts in the production medium (PM).
[0085] [Table 7]
[0086] Quantification of GAA The samples were analyzed using an Agilent analytical system consisting of an HPLC “Infinity 1260” coupled to a mass spectrometer “Triple Quad 6420” (Agilent Technologies Inc., Santa Clara, USA). Chromatographic separation was performed on an Atlantis HILIC silica column, 4.6 × 250 mm, 5 μm (Waters Corporation, Milford, USA) at 35 °C. Mobile phase A was water containing 10 mM ammonium formate and 0.2% formic acid. Mobile phase B was a mixture of 90% acetonitrile and 10% water, with 10 mM ammonium formate added to the mixture. The HPLC system started with 100% B and continued with a linear gradient up to 66% B for 22 min and a constant flow rate of 0.6 mL / min. The mass spectrometer was operated in ESI positive ionization mode. For detection of GAA, m / z values were monitored using MRM fragmentation [M+H]+118–76. The limit of quantification (LOQ) for GAA was fixed at 7 ppm.
[0087] B) Experimental results Example 1: Synthesis of genes encoding L-arginine:glycine amidinotransferase (AGAT, EC 2.1.4.1) from various organisms Moorea producens is a filamentous cyanobacterium. The genome of Moorea producens strain PAL-8-15-08-1 has been published in Leao et al. (Leao T, Castelao G, Korobeynikov A, Monroe EA, Podell S, Glukhov E, Allen EE, Gerwick WH, Gerwick L, Proc Natl Acad Sci US A. 2017 Mar 21;114(12):3198-3203. doi: 10.1073 / pnas.1618556114; Accession number CP017599.1). It contains an open reading frame putatively encoding L-arginine:glycine amidinotransferase (AGAT, EC 2.1.4.1, Accession No. BJP34_00300, SEQ ID NO: 1). SEQ ID NO: 2 and SEQ ID NO: 4 show the derived amino acid sequence designated AGAT_Mp (Accession No. WP_070390602).
[0088] The gene cyrA from Cylindrospermopsis raciborskii AWT205 (accession number EU140798.1) encodes L-arginine:glycine amidinotransferase (Mihali TK, Kellmann R, Muenchhoff J, Barrow KD, Neilan BA (2008) “Characterization of the gene cluster responsible for cylindrospermopsin biosynthesis.”, Appl Environ Microbiol., 74(3):716-22, doi: 10.1128 / AEM.01988-07; SEQ ID NO:15). SEQ ID NO:16 and SEQ ID NO:26 show the derived amino acid sequence designated AGAT_cyrA (accession number ABX60160).
[0089] The cDNA sequence of human l-arginine:glycine amidinotransferase was described in Humm et al., 1994 (Humm A, Huber R, Mann K (1994) "The amino acid sequences of human and pig l-arginine:glycine amidinotransferase.", FEBS Letters, Vol. 339 (1-2), 101-107, DOI: 10.1016 / 0014-5793(94)80394-3; Accession No. NM_001482.3, SEQ ID NO: 17). The derived amino acid sequence (Accession No. NP_001473.1, SEQ ID NO: 18) begins with a mitochondrial transit peptide (amino acids 1-37) that is not present in the mature enzyme. A truncated enzyme beginning at amino acid 56 was found to be active when expressed in E. coli (Humm A, Fritsche E, Mann K, Goehl M, Huber R (1997) "Recombinant expression and isolation of human L-arginine: glycine amidinotransferase and identification of its active-site cysteine residue." Biochem. J. 322, 771-776, DOI: 10.1042 / bj3220771). N-terminal fusion of a 7 amino acid tag (SEQ ID NO: 19) has been shown to improve protein expression in E. coli (Hansted JG, Pietikaeinen L, Hoeg F, Sperling-Petersen HU, Mortensen KK (2011) “Expressivity tag: A novel tool for increased expression in Escherichia coli.” Journal of Biotechnology 155 (2011) 275-283, DOI:10.1016 / j.jbiotec.2011.07.013).Therefore, a fusion protein consisting of a tag and a truncated form of AGAT was designed and designated AGAT_Hs (SEQ ID NO: 20 and SEQ ID NO: 28).
[0090] The amino acid sequence of L-arginine:glycine amidinotransferase from Rattus norvegicus (Accession No. NP_112293.1, SEQ ID NO:21) is highly similar to the human enzyme. The sequence was used to design a fusion protein consisting of an N-terminal expression tag and a truncated sequence of the enzyme, as described for the human enzyme. The resulting fusion protein was designated AGAT_Rn (SEQ ID NO:22 and SEQ ID NO:30).
[0091] The Malaysian flying lemur, Galeopterus variegatus, has a predicted L-arginine:glycine amidinotransferase (accession number NP_112293.1, SEQ ID NO:23). The amino acid sequence was used to design a fusion protein consisting of an N-terminal expression tag and a truncated sequence of the enzyme, as described for the human enzyme. The resulting fusion protein was designated AGAT_Gv (SEQ ID NO:24 and SEQ ID NO:32).
[0092] The amino acid sequences of AGAT_Mp, AGAT_cyrA, AGAT_Hs, AGAT_Rn and AGAT_Gv were reverse translated into DNA sequences and optimized for codon usage in C. glutamicum using the software tool "GeneOptimizer" (Geneart / ThermoFisher Scientific, Waltham, USA). Their ends were extended with sequences for assembly cloning and a Shine-Dalgarno sequence was added upstream of the open reading frame. The resulting DNA sequences are SEQ ID NO:3 (encoding AGAT_Mp), SEQ ID NO:25 (encoding AGAT_cyrA), SEQ ID NO:27 (encoding AGAT_Hs), SEQ ID NO:29 (encoding AGAT_Rn) and SEQ ID NO:31 (encoding AGAT_Gv). The synthesis of these genes was ordered from Invitrogen / Geneart (Thermo Fisher Scientific, Waltham, USA). The synthetic genes were delivered as part of cloning plasmids designated pMA-T_AGAT_Mp, pMA-T_AGAT_cyrA, pMA-T_AGAT_Hs, pMA-T_AGAT_Rn and pMA-T_AGAT_Gv.
[0093] Example 2: Cloning of AGAT_Mp into expression plasmid pEC-XK99E The E. coli-C. glutamicum shuttle plasmid pEC-XK99E was digested with the restriction endonuclease SmaI. Terminal phosphates were removed using "FastAP Thermosensitive Alkaline Phosphatase" (Thermo Fisher Scientific, Waltham, USA). DNA was then purified with "QIAquick PCR Purification Kit" (Qiagen GmbH, Hilden, Germany).
[0094] The cloning plasmid pMA-T_AGAT_Mp was digested with MluI+AatII, and the resulting fragment was blunt-ended using the "Fast DNA End Repair Kit" (Thermo Fisher Scientific, Waltham, USA). They were separated by agarose gel electrophoresis (0.8% agarose in TAE buffer), and the band corresponding to "AGAT_Mp" (1174 bp) was excised. The DNA was purified using the "QIAquick Gel Extraction Kit" (Qiagen GmbH, Hilden, Germany).
[0095] The AGAT_Mp fragment and linearized pEC-XK99E were ligated using "Ready-To-Go T4 DNA ligase" (GE Healthcare Europe GmbH, Freiburg, Germany). The ligation product was transformed into "NEB Stable Competent E. coli (High Efficiency)" (New England Biolabs, Ipswich, USA) and cells were grown on LB agar containing 25 mg / l kanamycin. Appropriate clones were identified by restriction enzyme digestion and DNA sequencing. The resulting plasmid was named pEC-XK99E_AGAT_Mp.
[0096] Example 2.1: Cloning of AGAT_Mp and AGAT_cyrA into the expression plasmid pEKEx2 The E. coli-C. glutamicum shuttle plasmid pEKEx2 (Eikmanns, 1991) was digested with the restriction endonuclease PstI. The resulting fragment was blunt-ended using the "Fast DNA End Repair Kit" (Thermo Fisher Scientific) and the terminal phosphates were removed with "FastAP Thermosensitive Alkaline Phosphatase" (Thermo Fisher Scientific, Waltham, USA). The DNA was then purified with the "QIAquick PCR Purification Kit" (Qiagen GmbH, Hilden, Germany).
[0097] The cloning plasmids pMA-T_AGAT_Mp and pMA-T_AGAT_cyrA were digested with MluI+AatII, and the resulting fragments were blunt-ended using the "Fast DNA End Repair Kit" (Thermo Fisher Scientific, Waltham, USA). They were separated by agarose gel electrophoresis (0.8% agarose in TAE buffer), and the bands corresponding to AGAT_Mp (1174 bp) and AGAT_cyrA (1204 bp) were excised. The DNA was purified using the "QIAquick Gel Extraction Kit" (Qiagen GmbH, Hilden, Germany).
[0098] Each AGAT fragment was ligated with linearized pEKEx2 using "Ready-To-Go T4 DNA ligase" (GE Healthcare Europe GmbH, Freiburg, Germany). The ligation products were transformed into "NEB Stable Competent E. coli (High Efficiency)" (New England Biolabs, Ipswich, USA) and cells were grown on LB agar containing 25 mg / l kanamycin. Appropriate clones were identified by restriction enzyme digestion and DNA sequencing. The resulting plasmids were named pEKEx2_AGAT_Mp and pEKEx2_AGAT_cyrA.
[0099] Example 2.2: Cloning of AGAT_Hs, AGAT_Rn and AGAT_Gv into expression plasmid pEKEx2 The cloning plasmids pMA-T_AGAT_Hs, pMA-T_AGAT_Rn and pMA-T_AGAT_Gv were digested with Eco31I and the products were purified using the "QIAquick Gel Extraction Kit" (Qiagen GmbH, Hilden, Germany).
[0100] The E. coli-C. glutamicum shuttle plasmid pEKEx2 (Eikmanns BJ, Kleinertz E, Liebl W, Sahm H (1991) "A family of Corynebacterium glutamicum / Escherichia coli shuttle vectors for cloning, controlled gene expression, and promoter probing", Gene. 1991 Jun 15;102(1):93-8) was digested with the restriction endonucleases SbfI and BamHI. DNA was purified with the "QIAquick PCR Purification Kit" (Qiagen GmbH, Hilden, Germany).
[0101] Each of the AGAT fragments was assembled with digested pEKEx2 using the "NEBuilder HiFi DNA Assembly Cloning Kit" (New England BioLabs Inc., Ipswich, USA, Cat. No. E5520). The assembly products were transformed into "NEB Stable Competent E. coli (High Efficiency)" (New England Biolabs, Ipswich, USA) and cells were grown on LB agar containing 25 mg / l kanamycin. Appropriate clones were identified by restriction enzyme digestion and DNA sequencing. The resulting plasmids were designated pEKEx2_AGAT_Hs, pEKEx2_AGAT_Rn and pEKEx2_AGAT_Gv, respectively.
[0102] Example 3: Cloning of gene argF into plasmid pCR-Blunt II-TOPO The argF gene was PCR amplified using the genomic DNA of C. glutamicum ATCC13032 and the oligonucleotide primers argF_1.p (SEQ ID NO:5) and argF_2.p (SEQ ID NO:6) with the Phusion High-Fidelity DNA Polymerase Kit (New England BioLabs Inc., Ipswich, USA). The resulting PCR product was cloned into the plasmid pCR-Blunt II-TOPO (Thermo Fisher Scientific / Invitrogen, Waltham, USA), and the appropriate plasmid clone was identified by restriction enzyme digestion and DNA sequencing. This plasmid was designated pCRII-argF.
[0103] Example 4: Cloning of genes argG and argH into plasmid pCR-Blunt II-TOPO Genes argG and argH were PCR amplified using genomic DNA of C. glutamicum ATCC13032 and oligonucleotide primers argG_1.p (SEQ ID NO: 7) and argH_2.p (SEQ ID NO: 8) with the Phusion High-Fidelity DNA Polymerase Kit (New England BioLabs Inc., Ipswich, USA). The resulting PCR product was cloned into the plasmid pCR-Blunt II-TOPO (Thermo Fisher Scientific / Invitrogen, Waltham, USA), and appropriate plasmid clones were identified by restriction enzyme digestion and DNA sequencing. This plasmid was designated pCRII-argGH.
[0104] Example 5: Cloning of genes argG and argH into plasmid pCRII-argF pCRII-argGH was cleaved with HpaI+AvrII and the 2773 bp restriction fragment was isolated from an agarose gel. pCRII-argF was cleaved with SspI+AvrII and the 4526 bp restriction fragment was isolated from an agarose gel. Both fragments were ligated and then transformed into E. coli. Appropriate plasmid clones were identified by restriction enzyme digestion and DNA sequencing. The resulting plasmid was designated pCRII-argFGH.
[0105] Example 6: Cloning of genes argF, argG and argH into expression plasmid pEC-XK99E pCRII-argFGH was cleaved with HpaI+AvrII and the 2773 bp restriction fragment was isolated from an agarose gel. Plasmid pEC-XK99E was cleaved with Ecl136II+XbaI. The 6999 bp restriction fragment was isolated from an agarose gel. Both fragments were ligated and then transformed into E. coli. Appropriate plasmid clones were identified by restriction digestion and DNA sequencing. The resulting plasmid pEC-XK99E_argFGH contains the genes argF, argG and argH from C. glutamicum.
[0106] Example 7: Cloning of genes argF, argG and argH into expression plasmid pEC-XK99E_AGAT_Mp pCRII-argFGH was cut with XbaI+SpeI and the 3868 bp restriction fragment was isolated from an agarose gel. Plasmid pEC-XK99E_AGAT_Mp was cut with XbaI. The 8188 bp restriction fragment was isolated from an agarose gel. Both fragments were ligated and then transformed into E. coli. Appropriate plasmid clones were identified by restriction digestion and DNA sequencing. The resulting plasmid pEC-XK99E_AGAT_Mp_argFGH contains the genes argF, argG and argH from C. glutamicum in combination with AGAT_Mp.
[0107] Example 8: Cloning of gene argF into expression plasmid pEC-XK99E_AGAT_Mp pCRII-argF was cleaved with KpnI+XbaI+AseI and the DNA was purified with the "QIAquick PCR Purification Kit" (Qiagen GmbH, Hilden, Germany). Plasmid pEC-XK99E_AGAT_Mp was cleaved with KpnI+XbaI and the DNA was purified with the "QIAquick PCR Purification Kit" (Qiagen GmbH, Hilden, Germany). Both eluates were mixed, the DNA fragments were ligated and the product was transformed into E. coli. Appropriate plasmid clones were identified by restriction digestion and DNA sequencing. The resulting plasmid pEC-XK99E_AGAT_Mp_argF contains the gene argF from C. glutamicum in combination with AGAT_Mp.
[0108] Example 9: Cloning of gene argG into expression plasmid pEC-XK99E_AGAT_Mp pCRII-argGH was cleaved with XbaI+SalI and the 1798 bp restriction fragment was isolated from an agarose gel. Plasmid pEC-XK99E_AGAT_Mp was cleaved with XbaI+SalI and the DNA was purified with the "QIAquick PCR Purification Kit" (Qiagen GmbH, Hilden, Germany). The DNA fragments were ligated and the product was transformed into E. coli. Appropriate plasmid clones were identified by restriction digestion and DNA sequencing. The resulting plasmid pEC-XK99E_AGAT_Mp_argG contains the gene argG from C. glutamicum in combination with AGAT_Mp.
[0109] Example 10: Chromosomal insertion of the sod promoter upstream of the carAB operon of ATCC13032 The enzymatic activity of carbamoyl phosphate synthetase was increased by genomic insertion of the strong sod promoter upstream of the carAB operon of ATCC13032. Thus, the plasmid pK18mobsacB_Psod-carAB was constructed as follows: Plasmid pK18mobsacB was cut with EcoRI+HindIII and the linearized vector DNA (5670 bp) was excised from an agarose gel. DNA was extracted using the "QIAquick Gel Extraction Kit" (QIAGEN GmbH, Hilden, Germany).
[0110] To construct the insert, three DNA fragments were generated by PCR using the following primer pairs (genomic DNA of ATCC13032 as template): PsodcarAB-LA-F (SEQ ID NO: 9) + PsodcarAB-LA-R (SEQ ID NO: 10) = Left homology arm (1025bp) PsodcarAB-F (SEQ ID NO: 11) + PsodcarAB-R (SEQ ID NO: 12) = sod promoter (250bp) PsodcarAB-RA-F (SEQ ID NO: 13) + PsodcarAB-RA-R (SEQ ID NO: 14) = Right homology arm (944bp)
[0111] The product DNA was purified using the "QIAquick PCR Purification Kit" (Qiagen GmbH, Hilden, Germany). The linearized plasmid and the PCR product were then assembled using the "NEBuilder HiFi DNA Assembly Cloning Kit" (New England BioLabs Inc., Ipswich, USA, Cat. No. E5520). Appropriate plasmid clones were identified by restriction digestion and DNA sequencing.
[0112] The strong sod promoter upstream of the carAB genes was integrated into the genome of C. glutamicum ATCC13032 using pK18mobsacB_Psod-carAB. The plasmid was transformed into ATCC13032 by electroporation. Chromosomal integration (resulting from the first recombination event) was selected by plating on BHI agar supplemented with 134 g / l sorbitol, 2.5 g / l yeast extract and 25 mg / l kanamycin. The agar plates were incubated at 33°C for 48 h.
[0113] Individual colonies were transferred onto new agar plates (containing 25 mg / l kanamycin) and incubated at 33°C for 24 hours. Liquid cultures of these clones were grown in 10 ml of BHI medium in 3-baffled 100 ml Erlenmeyer flasks for 24 hours at 33°C. To isolate clones that had undergone a second recombination event, aliquots were taken from each liquid culture, appropriately diluted, and plated (usually 100-200 μl) on BHI agar supplemented with 10% saccharose. These agar plates were incubated at 33°C for 48 hours. Colonies growing on the saccharose-containing agar plates were then tested for kanamycin sensitivity. To do so, cellular material was removed from the colonies using a toothpick and transferred onto BHI agar containing 25 mg / l kanamycin and BHI agar containing 10% saccharose. The agar plates were incubated at 33°C for 60 hours. Clones that were found to be sensitive to kanamycin and resistant to saccharose were tested for proper integration of the sod promoter by PCR and DNA sequencing, and the resulting strain was designated ATCC13032_Psod-carAB.
[0114] [Table 8]
[0115] [Table 9-1] [Table 9-2]
[0116] Example 11: Transformation of C. glutamicum strains with various expression plasmids The following strains of C. glutamicum were transformed with the various plasmids: C. glutamicum ATCC13032 (Kinoshita et al., J. Gen. Appl. Microbiol. 1957; 3(3): 193-205) is a commonly used wild-type strain. · C. glutamicum strain ATCC21831 (Park et al., Nat Commun. 2014 Aug 5; 5:4618) synthesizes L-arginine from primary substrates such as ammonia and glucose. · ATCC13032__Psod-carAB is a mutant of ATCC13032 that has a strong sod promoter upstream of the carAB gene.
[0117] Strains were transformed by electroporation with various plasmids (shown in Table 10). Plasmid-containing cells were selected with 25 mg / l kanamycin.
[0118] [Table 10]
[0119] Example 12: Effect of AGAT and substrate availability on GAA production Strains ATCC13032 / pEC-XK99E_AGAT_Mp (carrying the gene for the AGAT enzyme from Moorea producens) and ATCC13032 / pEC-XK99E (empty vector for control) were analyzed for their ability to produce GAA in batch cultures using the system of Wouter Duetz (supra). Production medium (PM) contained 40 g / l D-glucose as the main carbon source. Some batches were supplemented with L-arginine and / or glycine as indicated.
[0120] [Table 11]
[0121] As shown in Table 11, the control strain ATCC13032 / pEC-XK99E was unable to produce GAA even when fed with the precursors L-arginine and glycine. It is concluded that this strain does not have endogenous AGAT activity. Strain ATCC13032 / pEC-XK99E_AGAT_Mp contains a polynucleotide encoding a putative AGAT derived from Moorea producens. This strain produced 25 mg / l GAA in unsupplemented PM. Addition of glycine slightly increased it to 31 mg / l GAA. Addition of glycine and L-arginine significantly increased GAA production to 124 mg / l.
[0122] Example 13: Production of GAA from primary substrates In industrial GAA production processes, the addition of L-arginine is relatively costly compared to primary substrates such as ammonia, urea and glucose, and therefore it is desirable to produce GAA directly from such primary substrates.
[0123] For this purpose, the L-arginine producing strain C. glutamicum ATCC21831 was pEKEx2 (empty vector for control), pEKEx2_AGAT_Mp (containing the AGAT_Mp gene derived from Morea producens), pEKEx2_AGAT_Hs (containing the AGAT_Hs gene derived from Homo sapiens), pEKEx2_AGAT_Rn (containing the AGAT_Rn gene derived from Rattus norvegicus), pEKEx2_AGAT_Gv (containing the AGAT_Gv gene from Galeopterus variegatus), and pEKEx2_AGAT_cyrA (containing the AGAT_cyrA gene derived from Cylindrospermopsis raciborskii) was transformed with.
[0124] ATCC21831 was isolated as a canavanine-resistant mutant and found to produce L-arginine. Its genome was sequenced by Park et al. (Nat Commun. 2014 Aug 5;5:4618. doi: 10.1038 / ncomms5618; accession number CP007722) and the strain is publicly available from LGC Standards (LGC Standards GmbH, Wesel, Germany).
[0125] All transformed ATCC21831 strains were analyzed for their ability to produce GAA in batch culture using the system of Wouter Duetz (supra). The production medium (PM) contained 40 g / l D-glucose as the main carbon source. Some batches were supplemented with L-arginine and / or glycine.
[0126] [Table 12-1] [Table 12-2]
[0127] As shown in Table 12, ATCC21831 / pEKEx2 did not produce GAA even in the presence of precursors L-arginine and glycine. It is concluded that ATCC21831 / pEKEx2 does not have endogenous AGAT activity. The transformed strains ATCC21831 / pEKEx2_AGAT_Mp, ATCC21831 / pEKEx2_AGAT_Hs, ATCC21831 / pEKEx2_AGAT_Rn, ATCC21831 / pEKEx2_AGAT_Gv and ATCC21831 / pEKEx2_AGAT_cyrA produced approximately 1 up to 26 mg / l of GAA in unsupplemented PM. It is concluded that the precursors L-arginine and glycine were synthesized from the primary substrates D-glucose, ammonium and urea.
[0128] When glycine was added, the GAA production of ATCC21831 / pEKEx2_AGAT_Mp, ATCC21831 / pEKEx2_AGAT_Hs, ATCC21831 / pEKEx2_AGAT_Rn, ATCC21831 / pEKEx2_AGAT_Gv and ATCC21831 / PEKEX2_AGAT_cyrA was significantly increased compared to the non-addition experiment. Compared to strain ATCC13032 / pEC-XK99E_AGAT_Mp (see Table 10), the L-arginine producing strain ATCC21831 carrying the AGAT gene accumulates much more GAA when glycine is not limiting. It can be concluded that the ability to supply L-arginine internally improves GAA production.
[0129] Example 14: Effect of L-arginine regeneration on GAA production In L-arginine producing strains (e.g. ATCC21831), the intermediate L-ornithine is synthesized de novo and further converted to L-arginine. When such strains are fed with AGAT, the enzyme produces equimolar amounts of GAA and L-ornithine. However, the formation of L-ornithine consumes significant amounts of the primary C and N sources, resulting in a reduced yield of GAA.
[0130] Enhancing the biosynthetic pathway from L-ornithine to L-arginine was found to improve GAA production, possibly by improving the recycling of L-ornithine to L-arginine.
[0131] Various strains derived from ATCC13032 were analyzed for their ability to produce GAA after cultivation using the system of Wouter Duetz (Tables 13, 14 and 15).
[0132] [Table 13]
[0133] [Table 14]
[0134] [Table 15]
[0135] As shown in Tables 13-15, the strain lacking the AGAT gene did not produce detectable amounts of GAA.
[0136] Expression of AGAT_Mp in ATCC13032 / pEC-XK99E_AGAT_Mp resulted in 124 mg / l GAA. Additional amplification of argG (strain ATCC13032 / pEC-XK99E_AGAT_Mp_argG), argF (strain ATCC13032 / pEC-XK99E_AGAT_Mp_argF) or argG+argH (strain ATCC13032 / pEC-XK99E_AGAT_Mp_argGH) improved GAA production (see Table 14).
[0137] In strain ATCC13032 / pEC-XK99E_AGAT_Mp_argFGH, the expression of genes argF (encoding ornithine carbamoyltransferase), argG (encoding argininosuccinate synthetase) and argH (encoding argininosuccinate lyase) is enhanced, which further improved the production of GAA to 154 mg / l (see Table 14).
[0138] The conversion of L-ornithine to L-citrulline, catalyzed by ornithine carbamoyltransferase, depends on the availability of the co-substrate carbamoyl phosphate, which is generated by carbamoyl phosphate synthase, encoded by genes carA and carB. In strain ATCC13032_Psod-carAB / pEC-XK99E_AGAT_Mp, expression of carA and carB is enhanced by genomic insertion of the strong sod promoter. This resulted in improved GAA production compared to ATCC13032 / pEC-XK99E_AGAT_Mp (156 mg / l vs. 124 mg / l).
[0139] In strain ATCC13032_Psod-carAB / pEC-XK99E_AGAT_Mp_argFGH, the improvement of L-ornithine conversion (overexpression of argF, argG, and argH) was combined with the improvement of carbamoyl phosphate biosynthesis (overexpression of carA and carB), which further improved GAA production to 171 mg / l.
[0140] Example 15: Construction of a P. putida expression vector for the Moorea producens gene AGAT_Mp Plasmid pACYCATh-5{PRha}[agat_Mp(coPp)] was constructed for heterologous expression of AGAT (EC 2.1.4.1, SEQ ID NO:2 and SEQ ID NO:4) from Moorea producens in P. putida KT2440. The codon-optimized AGAT_Mp gene was ligated under the rhamnose-inducible promoter P rha It was decided to clone the AGAT_Mp gene into vector pACYATh-5 under the control of the . A terminator sequence is located downstream of the AGAT_Mp gene. Gene synthesis of the AGAT_Mp gene was ordered from Eurofins Genomics Germany GmbH (Ebersberg, Germany), and the DNA sequence of the gene fragment was codon-optimized for expression in P. putida KT2440 (SEQ ID NO: 33). A Shine-Dalgarno sequence was added upstream of the open reading frame. P RhaThe promoter cassette (SEQ ID NO: 34) and terminator sequence (SEQ ID NO: 35) were amplified from E. coli K12 genomic DNA. The vector is based on pACYC184 (New England BioLabs Inc., Ipswich, USA) and contains the p15A origin of replication for E. coli and the pVS1 origin of replication for replication in P. putida KT2440. The pVS1 origin is derived from the Pseudomonas plasmid pVS1 (Itoh Y, Watson JM, Haas D, Leisinger T, Plasmid 1984, 11(3), 206-20). In the next step, the AGAT_Mp gene fragment was amplified by PCR using primers MW_20_01_fw (SEQ ID NO: 36) and MW_20_02_rv (SEQ ID NO: 37) and cloned into vector pACYCATh-5 using restriction sites ApaI / XhoI and the NEBuilder® HiFi DNA Assembly Cloning Kit (New England BioLabs Inc., Ipswich, USA, Cat. No. E5520). The assembled product was transformed into 10-beta electrocompetent E. coli cells (New England BioLabs Inc., Ipswich, USA, Cat. No. C3020K). PCR purification, cloning and transformation procedures were performed according to the manufacturer's manual. Correct insertion of the target gene was confirmed by restriction analysis and the authenticity of the introduced DNA fragment was verified by DNA sequencing. The resulting expression vector was named pACYCATh-5{PRha}[agat_Mp(coPp)] (SEQ ID NO: 38, see Table 17).
[0141] P. putida strain KT2440 was transformed with plasmid pACYCATh-5{PRha}[agat_Mp(coPp)] by electroporation and plated on LB agar plates supplemented with tetracycline (10 mg / l). Transformants were confirmed for the presence of the correct plasmid by plasmid preparation and analytical restriction analysis. The resulting strain was designated P. putida KT2440 / pACYCATh-5{PRha}[agat_Mp(coPp)] (see Table 18).
[0142] Example 16: Construction of P. putida expression vectors for Moorea producens gene AGAT_Mp and P. putida genes argF, argG and argH Plasmid pACYCATh-5{PRha}[agat_Mp(coPp) argFGH_Pp] was constructed for heterologous expression of AGAT_Mp from Moorea producens and argF (SEQ ID NO: 39), argG (SEQ ID NO: 41), and argH (SEQ ID NO: 43) from P. putida KT2440. A synthetic operon consisting of AGAT_Mp encoding L-arginine:glycine amidinotransferase (AGAT, EC 2.1.4.1, SEQ ID NO:2 and SEQ ID NO:4), argF encoding ornithine carbamoyltransferase (ArgF, EC 2.1.3.3, SEQ ID NO:40), argG encoding argininosuccinate synthase (ArgG, EC 6.3.4.5, SEQ ID NO:42), and argH encoding argininosuccinate lyase (ArgH, EC 4.3.2.1, SEQ ID NO:44) was transformed into a rhamnose-inducible promoter P rhaThe synthetic operon was cloned into the vector pACYCATh-5 under the control of the . A terminator sequence is located downstream of the synthetic operon. Gene synthesis of the AGAT_Mp gene was ordered from Eurofins Genomics Germany GmbH (Ebersberg, Germany), and the DNA sequence of the gene fragment was codon-optimized for expression in P. putida KT2440. The gene argFGH was also synthesized as the gene fragment argFGH (SEQ ID NO: 45). P RhaThe promoter cassette (SEQ ID NO: 34) and terminator sequence (SEQ ID NO: 35) were amplified from E. coli K12 genomic DNA. The vector is based on pACYC184 (New England BioLabs Inc., Ipswich, USA) and has the p15A origin of replication for E. coli and the pVS1 origin of replication for replication in P. putida KT2440. The pVS1 origin is derived from the Pseudomonas plasmid pVS1 (Itoh Y, Watson JM, Haas D, Leisinger T, Plasmid 1984, 11(3), 206-20). For cloning, AGAT_Mp and argFGH were amplified by PCR. The primers used for cloning are listed in Table 16. The PCR product was cloned into vector pACYCATh-5b using restriction sites ApaI / XhoI and NEBuilder® HiFi DNA Assembly Cloning Kit (New England BioLabs Inc., Ipswich, USA, Cat. No. E5520) to generate the optimized operon. Phusion™ High-Fidelity Master Mix from New England Biolabs (Ipswich, USA) was used for amplification according to the manufacturer's manual. The assembled product was transformed into 10-beta electrocompetent E. coli cells (New England BioLabs Inc., Ipswich, USA, Cat. No. C3020K). PCR purification, cloning and transformation procedures were performed according to the manufacturer's manual. Correct insertion of the target gene was confirmed by restriction analysis and the authenticity of the introduced DNA fragment was verified by DNA sequencing. The resulting expression vector was named pACYCATh-5{PRha}[agat_Mp(coPp) argFGH_Pp] (SEQ ID NO: 49, see Table 17).
[0143] P. putida strain KT2440 was transformed with plasmid pACYCATh-5{PRha}[agat_Mp(coPp) argFGH_Pp] by electroporation and plated on LB agar plates supplemented with tetracycline (10 mg / l). Transformants were confirmed for the presence of the correct plasmid by plasmid preparation and analytical restriction analysis. The resulting strain was designated P. putida KT2440 / pACYCATh-5{PRha}[agat_Mp(coPp) argFGH_Pp] (see Table 18).
[0144] [Table 16]
[0145] Example 17: Cloning of genes carAB from P. putida KT2440 into expression vector pACYCATh-5{PRha}[agat_Mp(coPp) argFGH_Pp] Plasmid pACYCATh-5{PRha}[agat_Mp(coPp) argFGH_Pp]{carAB_Pp}[carAB_Pp][ter] was constructed for heterologous expression of AGAT_Mp, argF (SEQ ID NO: 39) from Moorea producens, argG (SEQ ID NO: 41), argH (SEQ ID NO: 43), carA (SEQ ID NO: 50) and carB (SEQ ID NO: 52) from P. putida KT2440. The carA (SEQ ID NO: 50) and carB (SEQ ID NO: 52) genes encoding carbamoyl phosphate synthase (CarAB, EC 6.3.5.5, SEQ ID NO: 51 and SEQ ID NO: 53) were amplified from genomic DNA of P. putida KT2440, containing the native promoter of the carAB operon, by PCR using primers MW_20_35_fw (SEQ ID NO: 54) and MW_20_36_rv (SEQ ID NO: 55). Amplification was performed using Phusion™ High-Fidelity Master Mix from New England Biolabs (Ipswich, USA) according to the manufacturer's manual. The PCR product (SEQ ID NO: 56) was cloned into Bsu36I-cut pACYCATh-5{PRha}[agat_Mp(coPp) argFGH_Pp] using the NEBuilder® HiFi DNA Assembly Cloning Kit (New England BioLabs Inc., Ipswich, USA, Cat. No. E5520). The assembled product was transformed into 10-beta electrocompetent E. coli cells (New England BioLabs Inc., Ipswich, USA, Cat. No. C3020K). PCR purification, cloning and transformation procedures were performed according to the manufacturer's manual. Correct insertion of the target gene was confirmed by restriction analysis and the authenticity of the introduced DNA fragment was verified by DNA sequencing.The resulting expression vector was named pACYCATh-5{PRha}[agat_Mp(coPp) argFGH_Pp]{carAB_Pp}[carAB_Pp][ter] (SEQ ID NO: 57, see Table 17).
[0146] P. putida strain KT2440 was transformed with plasmid pACYCATh-5{PRha}[agat_Mp(coPp) argFGH_Pp]{carAB_Pp}[carAB_Pp][ter] by electroporation and plated on LB agar plates supplemented with tetracycline (10 mg / l). Transformants were confirmed for the presence of the correct plasmid by plasmid preparation and analytical restriction analysis. The resulting strain was designated P. putida KT2440 / pACYCATh-5{PRha}[agat_Mp(coPp) argFGH_Pp]{carAB_Pp}[carAB_Pp][ter] (see Table 18).
[0147] [Table 17]
[0148] [Table 18]
[0149] Example 18: Effect of AGAT on GAA production in P. putida KT2440 Strains P. putida KT2440 / pACYCATh-5{PRha}[agat_Mp(coPp)] carrying the gene for the AGAT enzyme from M. producens and P. putida KT2440 / pACYCATh-5 (empty vector control) were analyzed for their ability to produce GAA in batch cultures using shake flasks. An inoculation loop of a glycerol cryoculture of the corresponding strain was streaked onto an LB agar plate containing 10 mg / l tetracycline. The agar plate was incubated at 30°C for 24 h. 15 ml of seed medium (autoclaved: 4.4 g / L Na 2 Cl) containing 10 mg / l tetracycline was added to the culture. 2 HPO 4 2H 2 O, 1.5g / L KH 2 PO 4 , 1g / L NH 4 Cl, 10g / L yeast extract, individually sterilized: 20g / L glucose, 0.2g / L MgSO 4 7H 2 O, 0.006g / L FeCl 3 , 0.015g / L CaCl 2 , 1ml / L trace element solution SL6 (sterile filtration: 0.3g / LH 3 BO 3 , 0.2g / L CoCl 2 6H 2 O, 0.1g / L ZnSO 4 7H 2 O, 0.03 g / L MnCl 2 4H 2 O, 0.01g / L CuCl 2 2H 2 O, 0.03g / L Na 2 MoO 4 2H 2 O, 0.02g / L NiCl 2 6H 2A single colony from the agar plate was inoculated into a baffled 100 ml flask containing 100 mL of 100% HO (pH 7) and incubated at 30°C and 200 rpm in a shaking incubator for 18 hours to generate a preculture. The preculture was used to inoculate 40 ml of M12 medium (composition: 2.2 g / L (NH 4 ) 2 SO 4 , 0.02g / L NaCl, 0.4g / L MgSO 4 7H 2 O, 0.04 g / L CaCl 2 2H 2 O, individual sterilization: 2g / L KH 2 PO 4 , 8.51g / L Na 2 HPO 4 , 20 g / L glucose, 10 ml / l trace element solution M12 (sterile filtered: 0.2 g / L ZnSO 4 7H 2 O, 0.1 g / L MnCl 2 4H 2 O, 1.5g / L sodium citrate 3 2H 2 O, 0.1 g / L CuSO 4 5H 2 O, 0.002g / L NiCl 2 6H 2 O, 0.003g / L Na 2 MoO 4 2H 2 O, 0.03 g / LH 3 BO 3 , 1g / L FeSO 4 7H 2 O), pH 7.4) 600 The strain was inoculated until the OD was 0.1. The strain was cultured for 48 hours. The OD was approximately 0.5-0.8. 600 Gene expression was induced by the addition of 0.2% (w / v) rhamnose at 4°C. 1.74 g / l arginine and 0.75 g / l glycine were spiked in at 9 and 24 h post-induction. Samples were taken at the end of the culture to determine the concentration of GAA produced.
[0150] The results are shown in Table 19.
[0151] [Table 19]
[0152] As can be seen from Table 19, the strain P. putida KT2440 / pACYCATh-5{PRha}[agat_Mp(coPp)] carrying the AGAT_Mp gene from M. producens was able to produce about 81.5 mg / l of GAA. The control strain P. putida KT2440 / pACYCATh-5 was unable to produce any GAA.
[0153] Example 19: Effect of increasing AGAT and L-arginine supply on GAA production in P. putida KT2440 Strains P. putida KT2440 / pACYCATh-5{PRha}[agat_Mp(coPp)] carrying the gene for the AGAT enzyme from M. producens and P. putida KT2440 / pACYCATh-5{PRha}[agat_Mp(coPp) argFGH_Pp] additionally carrying the arginine biosynthetic gene were analyzed for their ability to produce GAA in batch cultures using shake flasks. An inoculation loop of a glycerol frozen culture of the corresponding strain was streaked onto an LB agar plate containing 10 mg / l tetracycline. The agar plate was incubated for 24 h at 30 °C. 15 ml of seed medium (autoclaved: 4.4 g / L Na 2 Cl 0.01) containing 10 mg / l tetracycline was added to the culture. 2 HPO 4 2H 2 O, 1.5g / L KH 2 PO 4 , 1g / L NH 4 Cl, 10g / L yeast extract, individually sterilized: 20g / L glucose, 0.2g / L MgSO 4 7H 2O, 0.006g / L FeCl 3 , 0.015g / L CaCl 2 , 1ml / L trace element solution SL6 (sterile filtration: 0.3g / LH 3 BO 3 , 0.2g / L CoCl 2 6H 2 O, 0.1g / L ZnSO 4 7H 2 O, 0.03 g / L MnCl 2 4H 2 O, 0.01g / L CuCl 2 2H 2 O, 0.03g / L Na 2 MoO 4 2H 2 O, 0.02g / L NiCl 2 6H 2 A single colony from the agar plate was inoculated into a baffled 100 ml flask containing 100 mL of 100% HO (pH 7) and incubated at 30°C and 200 rpm in a shaking incubator for 18 hours to generate a preculture. The preculture was used to inoculate 40 ml of M12 medium (composition: 2.2 g / L (NH 4 ) 2 SO 4 , 0.02g / L NaCl, 0.4g / L MgSO 4 7H 2 O, 0.04 g / L CaCl 2 2H 2 O, individual sterilization: 2g / L KH 2 PO 4 , 8.51g / L Na 2 HPO 4 , 20 g / L glucose, 10 ml / l trace element solution M12 (sterile filtered: 0.2 g / L ZnSO 4 7H 2 O, 0.1 g / L MnCl 2 4H 2 O, 1.5g / L sodium citrate 3 2H 2 O, 0.1 g / L CuSO 4 5H 2 O, 0.002g / L NiCl 26H 2 O, 0.003g / L Na 2 MoO 4 2H 2 O, 0.03 g / LH 3 BO 3 , 1g / L FeSO 4 7H 2 O), pH 7.4) 600 The strain was inoculated until the OD was 0.1. The strain was cultured for 48 hours. The OD was approximately 0.5-0.8. 600 Gene expression was induced by the addition of 0.2% (w / v) rhamnose. 1.74 g / l arginine and 0.75 g / l glycine were spiked in at 9 and 24 hours after induction. Samples were taken at the end of the culture to determine the concentration of GAA produced.
[0154] The results are shown in Table 20.
[0155] [Table 20]
[0156] As can be seen from Table 20, the strain P. putida KT2440 / pACYCATh-5{PRha}[agat_Mp(coPp)] with the AGAT_Mp gene from M. producens was able to produce about 81.5 mg / l of GAA. The additional introduction of argF, argG and argH in the strain P. putida KT2440 / pACYCATh-5{PRha}[agat_Mp(coPp) argFGH_Pp] improved the GAA production to 169.5 mg / l.
[0157] Example 20: Effect of AGAT and L-arginine regeneration on GAA production in P. putida KT2440 Strains P. putida KT2440 / pACYCATh-5{PRha}[agat_Mp(coPp)] carrying the gene for the AGAT enzyme from M. producens, P. putida KT2440 / pACYCATh-5{PRha}[agat_Mp argFGH_Pp] carrying the additional arginine biosynthetic genes argFGH, and P. putida KT2440 / pACYCATh-5{PRha}[agat_Mp(coPp) argFGH_Pp]{carAB_Pp}[carAB_Pp][ter] carrying the additional carbamoyl phosphate synthase genes carAB were analyzed for their ability to produce GAA in shake flask batch cultures. The conversion of L-ornithine to L-citrulline, catalyzed by ornithine carbamoyltransferase, depends on the availability of the co-substrate carbamoyl phosphate. Carbamoyl phosphate is generated by carbamoyl phosphate synthase, encoded by genes carA and carB. An inoculation loop of a glycerol frozen culture of the corresponding strain was streaked onto an LB agar plate containing 10 mg / l tetracycline. The agar plate was incubated at 30°C for 24 h. 15 ml of seed medium (autoclaved: 4.4 g / L Na 2 HPO 4 2H 2 O, 1.5g / L KH 2 PO 4 , 1g / L NH 4 Cl, 10g / L yeast extract, individually sterilized: 20g / L glucose, 0.2g / L MgSO 4 7H 2 O, 0.006g / L FeCl 3 , 0.015g / L CaCl 2 , 1ml / L trace element solution SL6 (sterile filtration: 0.3g / LH 3 BO 3 , 0.2g / L CoCl 2 6H 2 O, 0.1g / L ZnSO 4 7H 2 O, 0.03 g / L MnCl2 4H 2 O, 0.01g / L CuCl 2 2H 2 O, 0.03g / L Na 2 MoO 4 2H 2 O, 0.02g / L NiCl 2 6H 2 A single colony from the agar plate was inoculated into a baffled 100 ml flask containing 100 mL of 100% HO (pH 7) and incubated at 30°C and 200 rpm in a shaking incubator for 18 hours to generate a preculture. The preculture was used to inoculate 40 ml of M12 medium (composition: 2.2 g / L (NH 4 ) 2 SO 4 , 0.02g / L NaCl, 0.4g / L MgSO 4 7H 2 O, 0.04 g / L CaCl 2 2H 2 O, individual sterilization: 2g / L KH 2 PO 4 , 8.51g / L Na 2 HPO 4 , 20 g / L glucose, 10 ml / l trace element solution M12 (sterile filtered: 0.2 g / L ZnSO 4 7H 2 O, 0.1 g / L MnCl 2 4H 2 O, 1.5g / L sodium citrate 3 2H 2 O, 0.1 g / L CuSO 4 5H 2 O, 0.002g / L NiCl 2 6H 2 O, 0.003g / L Na 2 MoO 4 2H 2 O, 0.03 g / LH 3 BO 3 , 1g / L FeSO 4 7H 2 O), pH 7.4) 600The strain was inoculated until the OD was 0.1. The strain was cultured for 48 hours. The OD was approximately 0.5-0.8. 600 Gene expression was induced by the addition of 0.2% (w / v) rhamnose at 4 / 18 / 23 h after induction. 6.97 g / l Arg / 1.5 g / l Gly, 2.34 g / L Arg / 0.75 g / L Gly and 6.97 g / l Arg / 1.5 g / l Gly were spiked in. At the end of the incubation, samples were taken to determine the concentration of GAA produced.
[0158] The results are shown in Table 21.
[0159] [Table 21]
[0160] As can be seen from Table 21, the strain with the AGAT_Mp gene from M. producens and the argFGH gene from P. putida was able to produce 589 mg / l of GAA. The additional introduction of carAB in the strain P. putida KT2440 / pACYCATh-5{PRha}[agat_Mp(coPp) argFGH_Pp]{carAB_Pp}[carAB_Pp][ter] improved the GAA production to 693 mg / l.
Claims
1. The activity of an enzyme having the function of carbamoyl phosphate synthase is increased compared to the respective enzymatic activity in a wild-type microorganism, and the microorganism comprises at least one heterologous gene encoding a protein having the activity of L-arginine:glycine amidinotransferase, At that time, said protein having the activity of L-arginine:glycine amidinotransferase comprises an amino acid sequence that is at least 90% identical to the amino acid sequence according to SEQ ID NO:2, said protein having the activity of L-arginine:glycine amidinotransferase comprises an amino acid sequence that is at least 90% identical to the amino acid sequence according to SEQ ID NO: 16, said protein having the activity of L-arginine:glycine amidinotransferase comprises an amino acid sequence that is at least 90% identical to the amino acid sequence according to SEQ ID NO:24, or The protein having the activity of L-arginine:glycine amidinotransferase comprises an amino acid sequence that is at least 90% identical to the amino acid sequence according to SEQ ID NO:
20. Microorganisms.
2. 2. The microorganism according to claim 1, wherein the increase in the activity of the enzyme having the function of carbamoyl phosphate synthase is achieved by mutation and / or overexpression of the gene encoding the enzyme having the function of carbamoyl phosphate synthase.
3. 3. The microorganism according to claim 1, wherein the activity of the L-arginine:glycine amidinotransferase is increased by mutation and / or overexpression of the gene encoding the L-arginine:glycine amidinotransferase.
4. 4. The microorganism according to claim 1, wherein the ability to produce L-arginine is improved compared to the ability of the wild-type microorganism.
5. 5. The microorganism according to claim 4, wherein the activity of an enzyme having the function of argininosuccinate lyase is increased compared to the respective enzymatic activity in said wild-type microorganism.
6. 6. The microorganism according to claim 4 or 5, wherein the activity of an enzyme having the function of ornithine carbamoyltransferase is increased compared to the respective enzyme activity in the wild-type microorganism.
7. 7. A microorganism according to any one of claims 4 to 6, in which the activity of an enzyme having the function of argininosuccinate synthetase is increased compared to the respective enzymatic activity in the wild-type microorganism.
8. 8. A microorganism according to any one of claims 4 to 7, wherein the increase in the activity of the enzyme is achieved by mutation and / or overexpression of the gene encoding the respective enzyme.
9. The microorganism according to any one of claims 4 to 8, wherein the arginine operon (argCJBDFR) is overexpressed.
10. 9. The microorganism according to claim 4, wherein the argR gene encoding the arginine-responsive repressor protein ArgR is attenuated or deleted.
11. 11. The microorganism according to any one of claims 4 to 8 or 10, wherein at least one or more of the genes encoding enzymes in the biosynthetic pathway of L-ornithine and L-arginine, including gdh, argJ, argB, argC and / or argD, which respectively encode glutamate dehydrogenase, ornithine acetyltransferase, acetylglutamate kinase, acetylglutamylphosphate reductase and acetylornithine aminotransferase, are overexpressed.
12. The microorganism according to any one of claims 1 to 11, wherein the microorganism belongs to the genus Corynebacterium, Enterobacteriaceae or Pseudomonas.
13. The microorganism of claim 12, wherein the microorganism is Corynebacterium glutamicum.
14. The microorganism of claim 12, wherein the microorganism is Escherichia coli.
15. The microorganism of claim 12, wherein the microorganism is Pseudomonas putida.
16. 16. A method for the fermentative production of guanidinoacetic acid (GAA), comprising the steps of: a) culturing a microorganism according to any one of claims 1 to 15 in a fermentation medium; and b) accumulating GAA in the medium to form a GAA-containing fermentation broth.
17. 17. The method of claim 16, further comprising isolating GAA from the GAA-containing fermentation broth.
18. 17. The method of claim 16, further comprising drying and / or granulating the GAA-containing fermentation broth.
19. 16. The microorganism according to any one of claims 1 to 15, further comprising a gene encoding an enzyme having guanidinoacetate N-methyltransferase activity.
20. The microorganism according to claim 19, wherein the gene encoding an enzyme having the activity of guanidinoacetate N-methyltransferase is overexpressed.
21. 21. A method for the fermentative production of creatine, comprising the steps of: a) culturing a microorganism according to claim 19 or 20 in a fermentation medium; and b) accumulating creatine in the medium to form a creatine-containing fermentation broth.
22. 22. The method of claim 21, further comprising isolating creatine from the creatine-containing fermentation broth.
Citation Information
Patent Citations
L-amino acid-producing bacterium and method for producing l-amino acid
JP2006149214A
Mutant microorganisms with high putrescine-producing ability and methods for producing putrescine using the same
JP2010535028A
Method for producing target substance
JP2019531759A