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タイトル: Crystal structure of Grimontia hollisae collagenase provides insights into its novel substrate specificity toward collagen
著者: Ikeuchi, Takeaki
Yasumoto, Mizuki
Takita, Teisuke  kyouindb  KAKEN_id  orcid https://orcid.org/0000-0001-9333-2335 (unconfirmed)
Tanaka, Keisuke
Kusubata, Masashi
Hayashida, Osamu
Hattori, Shunji
Mizutani, Kimihiko  kyouindb  KAKEN_id  orcid https://orcid.org/0000-0002-1411-5429 (unconfirmed)
Mikami, Bunzo
Yasukawa, Kiyoshi  KAKEN_id
著者名の別形: 池内, 健晃
安本, 瑞貴
滝田, 禎亮
水谷, 公彦
三上, 文三
保川, 清
キーワード: collagenase
Grimontia hollisae
crystal structure
collagen
Gly-Pro-Hyp
発行日: Aug-2022
出版者: Elsevier BV
誌名: Journal of Biological Chemistry
巻: 298
号: 8
論文番号: 102109
抄録: Collagenase from the gram-negative bacterium Grimontia hollisae strain 1706B (Ghcol) degrades collagen more efficiently even than clostridial collagenase, the most widely used industrial collagenase. However, the structural determinants facilitating this efficiency are unclear. Here, we report the crystal structures of ligand-free and Gly-Pro-hydroxyproline (Hyp)-complexed Ghcol at 2.2 and 2.4 Å resolution, respectively. These structures revealed that the activator and peptidase domains in Ghcol form a saddle-shaped structure with one zinc ion and four calcium ions. In addition, the activator domain comprises two homologous subdomains, whereas zinc-bound water was observed in the ligand-free Ghcol. In the ligand-complexed Ghcol, we found two Gly-Pro-Hyp molecules, each bind at the active site and at two surfaces on the duplicate subdomains of the activator domain facing the active site, and the nucleophilic water is replaced by the carboxyl oxygen of Hyp at the P1 position. Furthermore, all Gly-Pro-Hyp molecules bound to Ghcol have almost the same conformation as Pro-Pro-Gly motif in model collagen (Pro-Pro-Gly)₁₀, suggesting these three sites contribute to the unwinding of the collagen triple helix. A comparison of activities revealed that Ghcol exhibits broader substrate specificity than clostridial collagenase at the P2 and P2′ positions, which may be attributed to the larger space available for substrate binding at the S2 and S2′ sites in Ghcol. Analysis of variants of three active-site Tyr residues revealed that mutation of Tyr564 affected catalysis, whereas mutation of Tyr476 or Tyr555 affected substrate recognition. These results provide insights into the substrate specificity and mechanism of G. hollisae collagenase.
著作権等: © 2022 The Authors. Published by Elsevier Inc on behalf of American Society for Biochemistry and Molecular Biology.
This is an open access article under the CC BY license.
URI: http://hdl.handle.net/2433/284132
DOI(出版社版): 10.1016/j.jbc.2022.102109
PubMed ID: 35679897
出現コレクション:学術雑誌掲載論文等

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