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Featured researches published by Yoshiya Gunji.


Bioscience, Biotechnology, and Biochemistry | 2004

Characterization of the L-lysine biosynthetic pathway in the obligate methylotroph Methylophilus methylotrophus.

Yoshiya Gunji; Nobuharu Tsujimoto; Megumi Shimaoka; Yuri Ogawa-Miyata; Shinichi Sugimoto; Hisashi Yasueda

The L-lysine biosynthetic pathway of the gram-negative obligate methylotroph Methylophilus methylotrophus AS1 was examined through characterization of the enzymes aspartokinase (AK), aspartsemialdehyde dehydrogenase, dihydrodipicolinate synthase (DDPS), dihydrodipicolinate reductase, and diaminopimelate decarboxylase. The AK was inhibited by L-threonine and by a combination of L-threonine and L-lysine, but not by L-lysine alone, and the activity of DDPS was moderately reduced by L-lysine. In an L-lysine producing mutant (G49), isolated as an S-(2-aminoethyl)-L-cysteine (lysine analog) resistant strain, both AK and DDPS were partially resistant to feedback inhibition. The ask and dapA genes encoding AK and DDPS respectively were isolated from the parental strain, AS1, and its G49 derivative. Comparison of the sequences revealed a point mutation in each of these genes in G49. The mutation in the ask gene altered aspartic acid in a key region involved in the allosteric regulation common to AKs, while a novel mutation in the dapA gene altered tyrosine-106, which was assumed to be involved in the binding of L-lysine to DDPS.


Bioscience, Biotechnology, and Biochemistry | 2008

Disruption of metF increased L-lysine production by Methylophilus methylotrophus from methanol.

Kohei Ishikawa; Takayuki Asahara; Yoshiya Gunji; Hisashi Yasueda; Kozo Asano

Methionine auxotrophic mutants of Methylophilus methylotrophus AS1 expressing a mutant form of dapA (dapA24) encoding a dihydrodipicolinate synthase desensitized from feedback inhibition by L-lysine, and mutated lysE (lysE24) encoding the L-lysine exporter from Corynebacterium glutamicum 2256, produced higher amounts of L-lysine from methanol as sole carbon source than did other amino acid auxotrophic mutants. Especially, the M. methylotrophus 102 strain, carrying both dapA24 and lysE24, produced L-lysine in more than 1.5 times amounts higher than the parent. A single-base substitution was identified in this auxotroph in codon-329 of the open reading frame of metF, encoding 5,10-methylene-tetra-hydrofolate reductase. We constructed a metF disruptant mutant carrying both dapA24 and lysE24, and confirmed increases in L-lysine production. This is the first report to the effect that metF deficient increased L-lysine production in methylotroph.


Bioscience, Biotechnology, and Biochemistry | 2006

Characterization of a unique mutant lysE gene, originating from Corynebacterium glutamicum, encoding a product that induces L-lysine production in Methylophilus methylotrophus.

Yoshiya Gunji; Hisao Ito; Haruhiko Masaki; Hisashi Yasueda

lysE24 is an allele of lysE encoding an L-lysine exporter of Corynebacterium glutamicum. The mutant gene is able to induce L-lysine production in Methylophilus methylotrophus. Although lysE24 has a mutation in the middle of lysE that results in chain termination, the entire lysE locus, including the region downstream of the short open reading frame, is necessary for L-lysine production. We propose that separate polypeptides are synthesized from the lysE24 locus due to reinitiation of translation utilizing an existing start codon beyond the site of the frameshift, and present evidence that translational coupling is required to form the functional lysE24 product. In addition, expression of lysE24 induces L-lysine production in another methylotroph, Methylobacillus glycogenes. These data suggest that the lysE24 product is a split protein and that this curious feature might be a structure necessary for its functioning in certain obligate gram-negative methylotrophs.


Bioscience, Biotechnology, and Biochemistry | 2008

Improvement of L-Lysine Production by Methylophilus methylotrophus from Methanol via the Entner-Doudoroff Pathway, Originating in Escherichia coli

Kohei Ishikawa; Yoshiya Gunji; Hisashi Yasueda; Kozo Asano

To improve the amino acid production by metabolic engineering, eliminating the pathway bottleneck is known to be very effective. The metabolic response of Methylophilus methylotrophus upon the addition of glucose and of pyruvate was investigated in batch cultivation. We found that the supply of pyruvate is a bottleneck in L-lysine production in M. methylotrophus from methanol as carbon source. M. methylotrophus has a ribulose monophosphate (RuMP) pathway for methanol assimilation, and consequently synthesized fructose-6-phosphate is metabolized to pyruvate via the Entner-Doudoroff (ED) pathway, and the ED pathway is thought to be the main pathway for pyruvate supply. An L-lysine producer of M. methylotrophus with an enhanced ED pathway was constructed by the introduction of the E. coli edd-eda operon encoding the enzyme involving the ED pathway. In this strain, the overall enzymatic activity of ED pathway, which is estimated by measuring the activities of 6-phosphogluconate dehydrogenase plus 2-keto-3-deoxy-6-phosphogluconate aldolase, was about 20 times higher than in the parent. This strain produced 1.2 times more L-lysine than the parent producer. Perhaps, then, the supply of pyruvate was a bottleneck in L-lysine production in the L-lysine producer of M. methylotrophus.


Archive | 2005

L-amino acid-producing microorganism and method for producing L-amino acid

Takuji Ueda; Yuta Nakai; Yoshiya Gunji; Rie Takikawa; Yuji Joe


Journal of Biotechnology | 2006

L-Lysine biosynthetic pathway of Methylophilus methylotrophus and construction of an L-lysine producer

Nobuharu Tsujimoto; Yoshiya Gunji; Yuri Ogawa-Miyata; Megumi Shimaoka; Hisashi Yasueda


Journal of Biotechnology | 2006

Enhancement of l-lysine production in methylotroph Methylophilus methylotrophus by introducing a mutant LysE exporter

Yoshiya Gunji; Hisashi Yasueda


Archive | 2004

METHOD FOR PRODUCTION OF L-LYSINE USING METHANOL-UTILIZING BACTERIUM

Yoshiya Gunji; Hisashi Yasueda; Reiko Hirai; Seiko Hirano


Archive | 2002

Method for producing L-lysine or L-arginine by using methanol-assimilating bacterium

Yoshiya Gunji; Hisashi Yasueda


Archive | 2003

Method for producing L-amino acid using methylotroph

Yoshiya Gunji; Hisashi Yasueda

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