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Monomeric structure of an active form of bovine cytochrome c oxidase.
Shinzawa-Itoh, Kyoko; Sugimura, Takashi; Misaki, Tomonori; Tadehara, Yoshiki; Yamamoto, Shogo; Hanada, Makoto; Yano, Naomine; Nakagawa, Tetsuya; Uene, Shigefumi; Yamada, Takara; Aoyama, Hiroshi; Yamashita, Eiki; Tsukihara, Tomitake; Yoshikawa, Shinya; Muramoto, Kazumasa.
Afiliación
  • Shinzawa-Itoh K; Graduate School of Life Science, University of Hyogo, Ako, 678-1297 Hyogo, Japan; shinzawa@sci.u-hyogo.ac.jp muramoto@sci.u-hyogo.ac.jp.
  • Sugimura T; Graduate School of Material Science, University of Hyogo, Ako, 678-1297 Hyogo, Japan.
  • Misaki T; Graduate School of Material Science, University of Hyogo, Ako, 678-1297 Hyogo, Japan.
  • Tadehara Y; Graduate School of Life Science, University of Hyogo, Ako, 678-1297 Hyogo, Japan.
  • Yamamoto S; Graduate School of Life Science, University of Hyogo, Ako, 678-1297 Hyogo, Japan.
  • Hanada M; Graduate School of Life Science, University of Hyogo, Ako, 678-1297 Hyogo, Japan.
  • Yano N; Graduate School of Life Science, University of Hyogo, Ako, 678-1297 Hyogo, Japan.
  • Nakagawa T; School of Life Science, University of Hyogo, Ako, 678-1297 Hyogo, Japan.
  • Uene S; Graduate School of Life Science, University of Hyogo, Ako, 678-1297 Hyogo, Japan.
  • Yamada T; School of Life Science, University of Hyogo, Ako, 678-1297 Hyogo, Japan.
  • Aoyama H; Graduate School of Pharmaceutical Sciences, Osaka University, Suita, 565-0871 Osaka, Japan.
  • Yamashita E; Institute for Protein Research, Osaka University, Suita, 565-0871 Osaka, Japan.
  • Tsukihara T; Graduate School of Life Science, University of Hyogo, Ako, 678-1297 Hyogo, Japan.
  • Yoshikawa S; Institute for Protein Research, Osaka University, Suita, 565-0871 Osaka, Japan.
  • Muramoto K; Graduate School of Life Science, University of Hyogo, Ako, 678-1297 Hyogo, Japan.
Proc Natl Acad Sci U S A ; 116(40): 19945-19951, 2019 10 01.
Article en En | MEDLINE | ID: mdl-31533957
ABSTRACT
Cytochrome c oxidase (CcO), a membrane enzyme in the respiratory chain, catalyzes oxygen reduction by coupling electron and proton transfer through the enzyme with a proton pump across the membrane. In all crystals reported to date, bovine CcO exists as a dimer with the same intermonomer contacts, whereas CcOs and related enzymes from prokaryotes exist as monomers. Recent structural analyses of the mitochondrial respiratory supercomplex revealed that CcO monomer associates with complex I and complex III, indicating that the monomeric state is functionally important. In this study, we prepared monomeric and dimeric bovine CcO, stabilized using amphipol, and showed that the monomer had high activity. In addition, using a newly synthesized detergent, we determined the oxidized and reduced structures of monomer with resolutions of 1.85 and 1.95 Å, respectively. Structural comparison of the monomer and dimer revealed that a hydrogen bond network of water molecules is formed at the entry surface of the proton transfer pathway, termed the K-pathway, in monomeric CcO, whereas this network is altered in dimeric CcO. Based on these results, we propose that the monomer is the activated form, whereas the dimer can be regarded as a physiological standby form in the mitochondrial membrane. We also determined phospholipid structures based on electron density together with the anomalous scattering effect of phosphorus atoms. Two cardiolipins are found at the interface region of the supercomplex. We discuss formation of the monomeric CcO, dimeric CcO, and supercomplex, as well as their role in regulation of CcO activity.
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Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Complejo IV de Transporte de Electrones / Mitocondrias Cardíacas Límite: Animals Idioma: En Revista: Proc Natl Acad Sci U S A Año: 2019 Tipo del documento: Article

Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Complejo IV de Transporte de Electrones / Mitocondrias Cardíacas Límite: Animals Idioma: En Revista: Proc Natl Acad Sci U S A Año: 2019 Tipo del documento: Article