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Featured researches published by Mitsuyoshi Okuda.


Applied Microbiology and Biotechnology | 2007

Alkaliphilic Bacillus sp. strain KSM-LD1 contains a record number of subtilisin-like serine proteases genes

Yasushi Takimura; Kazuhiro Saito; Mitsuyoshi Okuda; Yasushi Kageyama; Katsuhisa Saeki; Katsuya Ozaki; Susumu Ito; Tohru Kobayashi

The presence of 11 genes encoding subtilisin-like serine proteases was demonstrated by cloning from the genome of alkaliphilic Bacillus sp. strain KSM-LD1. This strain exoproduces the oxidatively stable alkaline protease LD-1 (Saeki et al. Curr Microbiol, 47:337–340, 2003). Among the 11 genes, six genes encoding alkaline proteases (SA, SB, SC, SD, SE, and LD-1) were expressed in Bacillus hosts. However, the other five genes for subtilisin-like proteases (SF, SG, SH, SI, and SJ) were expressed in neither Bacillus hosts nor Escherichia coli. The deduced amino acid sequences of SA, SB, SC, SF, SG, SH, SI, and SJ showed similarity to those of other subtilisin-like proteases from Bacillus strains with only 38 to 86% identity. The deduced amino acid sequence of SD was completely identical to that of an oxidatively stable alkaline protease from Bacillus sp. strain SD521, and that of SE was almost identical to that of a high-molecular mass subtilisin from Bacillus sp. strain D-6 with 99.7% identity. There are four to nine subtilisin-like serine protease genes in the reported genomes of Bacillus strains. At least 11 genes for the enzymes present in the genome of Bacillus sp. strain KSM-LD1, and this is the greatest number identified to date.


Biochimica et Biophysica Acta | 2013

A single mutation within a Ca2 + binding loop increases proteolytic activity, thermal stability, and surfactant stability

Mitsuyoshi Okuda; Tadahiro Ozawa; Masatoshi Tohata; Tsuyoshi Sato; Katsuhisa Saeki; Katsuya Ozaki

We improved the enzymatic properties of the oxidatively stable alkaline serine protease KP-43 through protein engineering to make it more suitable for use in laundry detergents. To enhance proteolytic activity, the gene encoding KP-43 was mutagenized by error-prone PCR. Screening identified a Tyr195Cys mutant enzyme that exhibited increased specific activity toward casein between pH 7 and 11. At pH 10, the mutant displayed 1.3-fold higher specific activity for casein compared to the wild-type enzyme, but the activity of the mutant was essentially unchanged toward several synthetic peptides. Furthermore, the Tyr195Cys mutation significantly increased thermal stability and surfactant stability of the enzyme under oxidizing conditions. Examination of the crystal structure of KP-43 revealed that Tyr195 is a solvent exposed residue that forms part of a flexible loop that binds a Ca(2+) ion. This residue lies 15-20Å away from the residues comprising the catalytic triad of the enzyme. These results suggest that the substitution at position 195 does not alter the structure of the active center, but instead may affect a substrate-enzyme interaction. We propose that the Tyr195Cys mutation enhances the interaction with Ca(2+) and affects the packing of the Ca(2+) binding loop, consequently increasing protein stability. The simultaneously increased proteolytic activity, thermal stability, and surfactant stability of the Tyr195Cys mutant enzyme make the protein an ideal candidate for laundry detergent application.


Extremophiles | 2002

A novel species of alkaliphilic Bacillus that produces an oxidatively stable alkaline serine protease.

Katsuhisa Saeki; Jun Hitomi; Mitsuyoshi Okuda; Yuji Hatada; Yasushi Kageyama; Mikio Takaiwa; Hiromi Kubota; Hiroshi Hagihara; Tohru Kobayashi; Shuji Kawai; Susumu Ito


Biochemical and Biophysical Research Communications | 2000

Novel Oxidatively Stable Subtilisin-like Serine Proteases from Alkaliphilic Bacillus spp.: Enzymatic Properties, Sequences, and Evolutionary Relationships

Katsuhisa Saeki; Mitsuyoshi Okuda; Yuji Hatada; Tohru Kobayashi; Susumu Ito; Hideto Takami; Koki Horikoshi


Extremophiles | 2004

A new subtilisin family: nucleotide and deduced amino acid sequences of new high-molecular-mass alkaline proteases from Bacillus spp.

Mitsuyoshi Okuda; Nobuyuki Sumitomo; Yasushi Takimura; Akinori Ogawa; Katsuhisa Saeki; Shuji Kawai; Tohru Kobayashi; Susumu Ito


Applied and Environmental Microbiology | 1993

Novel Allylic Oxidation of alpha-Cedrene to sec-Cedrenol by a Rhodococcus Strain.

Hirofumi Takigawa; Hiromi Kubota; Hiroshi Sonohara; Mitsuyoshi Okuda; Shigeyoshi Tanaka; Yoshiaki Fujikura; Susumu Ito


Biochimica et Biophysica Acta | 2003

Nucleotide and deduced amino acid sequences of a high-molecular-mass subtilisin from an alkaliphilic Bacillus isolate

Akinori Ogawa; Nobuyuki Sumitomo; Mitsuyoshi Okuda; Katsuhisa Saeki; Shuji Kawai; Tohru Kobayashi; Susumu Ito


Archive | 2002

Mutant alkaline protease

Toru Kobayashi; Masashi Nomura; Mitsuyoshi Okuda; Kazuhiro Saito; Takeshi Sato; Nobuyuki Sumitomo; 住友 伸行; 佐藤 剛; 奥田 光美; 小林 徹; 斎藤 和広; 野村 昌史


Archive | 2010

Alkaline Protease Variants

Masatoshi Tohata; Mitsuyoshi Okuda; Tsuyoshi Sato; Keiji Endo; Katsuhisa Saeki


Archive | 2013

Method for Improving Solubility of Alkaline Protease

Masatoshi Tohata; Yumi Nishimura; Yasunao Wada; Katsuchisa Saeki; Mitsuyoshi Okuda

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