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j.jbc.2023.105001.pdf | 873.21 kB | Adobe PDF | 見る/開く |
タイトル: | Respiratory complex I in mitochondrial membrane catalyzes oversized ubiquinones |
著者: | Ikunishi, Ryo Otani, Ryohei Masuya, Takahiro https://orcid.org/0000-0003-4950-0527 (unconfirmed) Shinzawa-Itoh, Kyoko Shiba, Tomoo Murai, Masatoshi https://orcid.org/0000-0001-6601-2854 (unconfirmed) Miyoshi, Hideto https://orcid.org/0000-0002-1792-554X (unconfirmed) |
著者名の別形: | 生西, 凌 大谷, 燎平 桝谷, 貴洋 村井, 正俊 三芳, 秀人 |
キーワード: | bioenergetics respiratory enzymes complex I ubiquinone chemical biology |
発行日: | Aug-2023 |
出版者: | Elsevier BV American Society for Biochemistry and Molecular Biology |
誌名: | Journal of Biological Chemistry |
巻: | 299 |
号: | 8 |
論文番号: | 105001 |
抄録: | NADH-ubiquinone (UQ) oxidoreductase (complex I) couples electron transfer from NADH to UQ with proton translocation in its membrane part. The UQ reduction step is key to triggering proton translocation. Structural studies have identified a long, narrow, tunnel-like cavity within complex I, through which UQ may access a deep reaction site. To elucidate the physiological relevance of this UQ-accessing tunnel, we previously investigated whether a series of oversized UQs (OS-UQs), whose tail moiety is too large to enter and transit the narrow tunnel, can be catalytically reduced by complex I using the native enzyme in bovine heart submitochondrial particles (SMPs) and the isolated enzyme reconstituted into liposomes. Nevertheless, the physiological relevance remained unclear because some amphiphilic OS-UQs were reduced in SMPs but not in proteoliposomes, and investigation of extremely hydrophobic OS-UQs was not possible in SMPs. To uniformly assess the electron transfer activities of all OS-UQs with the native complex I, here we present a new assay system using SMPs, which were fused with liposomes incorporating OS-UQ and supplemented with a parasitic quinol oxidase to recycle reduced OS-UQ. In this system, all OS-UQs tested were reduced by the native enzyme, and the reduction was coupled with proton translocation. This finding does not support the canonical tunnel model. We propose that the UQ reaction cavity is flexibly open in the native enzyme to allow OS-UQs to access the reaction site, but their access is obstructed in the isolated enzyme as the cavity is altered by detergent-solubilizing from the mitochondrial membrane. |
著作権等: | © 2023 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/2433/285052 |
DOI(出版社版): | 10.1016/j.jbc.2023.105001 |
PubMed ID: | 37394006 |
出現コレクション: | 学術雑誌掲載論文等 |
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