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Dive into the research topics where Shigenori Kanaya is active.

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Featured researches published by Shigenori Kanaya.


International Journal of Molecular Sciences | 2011

FK506-Binding Protein 22 from a Psychrophilic Bacterium, a Cold Shock-Inducible Peptidyl Prolyl Isomerase with the Ability to Assist in Protein Folding

Cahyo Budiman; Yuichi Koga; Kazufumi Takano; Shigenori Kanaya

Adaptation of microorganisms to low temperatures remains to be fully elucidated. It has been previously reported that peptidyl prolyl cis-trans isomerases (PPIases) are involved in cold adaptation of various microorganisms whether they are hyperthermophiles, mesophiles or phsycrophiles. The rate of cis-trans isomerization at low temperatures is much slower than that at higher temperatures and may cause problems in protein folding. However, the mechanisms by which PPIases are involved in cold adaptation remain unclear. Here we used FK506-binding protein 22, a cold shock protein from the psychrophilic bacterium Shewanella sp. SIB1 (SIB1 FKBP22) as a model protein to decipher the involvement of PPIases in cold adaptation. SIB1 FKBP22 is homodimer that assumes a V-shaped structure based on a tertiary model. Each monomer consists of an N-domain responsible for dimerization and a C-catalytic domain. SIB1 FKBP22 is a typical cold-adapted enzyme as indicated by the increase of catalytic efficiency at low temperatures, the downward shift in optimal temperature of activity and the reduction in the conformational stability. SIB1 FKBP22 is considered as foldase and chaperone based on its ability to catalyze refolding of a cis-proline containing protein and bind to a folding intermediate protein, respectively. The foldase and chaperone activites of SIB1 FKBP22 are thought to be important for cold adaptation of Shewanella sp. SIB1. These activities are also employed by other PPIases for being involved in cold adaptation of various microorganisms. Despite other biological roles of PPIases, we proposed that foldase and chaperone activities of PPIases are the main requirement for overcoming the cold-stress problem in microorganisms due to folding of proteins.


Protein Engineering Design & Selection | 2008

Importance of the Ca2+-binding sites in the N-catalytic domain of a family I.3 lipase for activity and stability.

K. Kuwahara; Clement Angkawidjaja; Hiroyoshi Matsumura; Yuichi Koga; Kazufumi Takano; Shigenori Kanaya

A family I.3 lipase from Pseudomonas sp. MIS38 (PML) contains three Ca(2+)-binding sites (Ca1-Ca3) in the N-catalytic domain. Of them, the Ca1 site is formed only in an open conformation. To analyze the role of these Ca(2+)-binding sites, three mutant proteins D157A-PML, D275A-PML and D337A-PML, which are designed to remove the Ca1, Ca2 and Ca3 sites, respectively, were constructed. Of them, the crystal structures of D157A-PML and D337A-PML in a closed conformation were determined. Both structures are nearly identical to that of the wild-type protein, except that the Ca3 site is missing in the D337A-PML structure. D157A-PML was as stable as the wild-type protein. Nevertheless, it exhibited little lipase and very weak esterase activities. D275A-PML was less stable than the wild-type protein by approximately 5 degrees C in T(1/2). It exhibited weak but significant lipase and esterase activities when compared with the wild-type protein. D337A-PML was also less stable than the wild-type protein by approximately 5 degrees C in T(1/2) but was fully active. These results suggest that the Ca1 site is required to make the active site fully open by anchoring lid 1. The Ca2 and Ca3 sites contribute to the stabilization of PML. The Ca2 site is also required to make PML fully active.


Archive | 2013

Psychrophilic RNase III: Gene Cloning and Characterization

Muhammad Saifur Rohman; Yuichi Koga; Kazufumi Takano; Shigenori Kanaya


日本生物工学会大会講演要旨集 | 2012

4Cp18 Crystal structure of a metagenome-derived homolog of Sulfolobus tokodaii RNase H1

Tri-Nhan Nguyen; Clement Angkawidjaja; Hiroyuki Matsumoto; Dong-Ju You; Yuichi Koga; Shigenori Kanaya


日本生物工学会大会講演要旨集 | 2012

4Cp20 Dual role of divalent metal ions in activating and replacing salt essential for folding of RNase H1 from a halophilic archaeon

Elias Tannous; Koji Yokoyama; Yuichi Koga; Shigenori Kanaya


日本生物工学会大会講演要旨集 | 2012

4Ca13 Improvement of maturation rate of Tk-subtilisin by propeptide engineering

Kota Yuzaki; Rryo Uehara; Yudai Sanda; Yuichi Koga; Shigenori Kanaya


日本生物工学会大会講演要旨集 | 2012

4Cp21 Role of N- and C-terminal extensions of RNases H2 from thermophilic bacteria

Etin Diah Permanasari; Nujarin Jongruja; Yuichi Koga; Shigenori Kanaya


日本生物工学会大会講演要旨集 | 2011

3Da06 Characterization of glycerol-3-phosphate dehydrogenase from Thermococcus kodakaraensis KOD1

Yuichi Koga; Atsushi Kobayashi; Dong-Ju You; Takaaki Sato; Haruyuki Atomi; Shigenori Kanaya


生物物理 | 2010

2P066 1E1450 巨大分子量タンパク質の構造安定性(蛋白質-物性(安定性,折れたたみなど),第48回日本生物物理学会年会)

Yurie Tachibana; Natsumi Ando; Jun Okada; Atsushi Mukaiyama; Yuichi Koga; Kazufumi Takano; Shigenori Kanaya


日本生物工学会大会講演要旨集 | 2010

2P-1100 Tk-subtilisin stabilization mechanism during maturation

Ryo Uehara; Shun-ichi Tanaka; Yuichi Koga; Kazufumi Takano; Shigenori Kanaya

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Kazufumi Takano

Kyoto Prefectural University

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