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首页> 外文期刊>Biological chemistry >The structure of Na+-translocating of NADH:ubiquinone oxidoreductase of Vibrio cholerae: implications on coupling between electron transfer and Na+ transport
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The structure of Na+-translocating of NADH:ubiquinone oxidoreductase of Vibrio cholerae: implications on coupling between electron transfer and Na+ transport

机译:NADH Na + - 转酯的结构:Vibrio Cholerae的ubiquinone氧化还原酶:电子转移与Na +运输耦合的影响

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The Na+-translocating NADH: ubiquinone oxidoreductase (Na+-NQR) of Vibrio cholerae is a respiratory complex that couples the exergonic oxidation of NADH to the transport of Na+ across the cytoplasmic membrane. It is composed of six different subunits, NqrA, NqrB, NqrC, NqrD, NqrE, and NqrF, which harbor FAD, FMN, riboflavin, quinone, and two FeS centers as redox co-factors. We recently determined the X-ray structure of the entire Na+-NQR complex at 3.5 resolution and complemented the analysis by high-resolution structures of NqrA, NqrC, and NqrF. The position of flavin and FeS co-factors both at the cytoplasmic and the periplasmic side revealed an electron transfer pathway from cytoplasmic subunit NqrF across the membrane to the periplasmic NqrC, and via NqrB back to the quinone reduction site on cytoplasmic NqrA. A so far unknown Fe site located in the midst of membrane-embedded subunits NqrD and NqrE shuttles the electrons over the membrane. Some distances observed between redox centers appear to be too large for effective electron transfer and require conformational changes that are most likely involved in Na+ transport. Based on the structure, we propose a mechanism where redox induced conformational changes critically couple electron transfer to Na+ translocation from the cytoplasm to the periplasm through a channel in subunit NqrB.
机译:Na + -Translocated NADH:Vibrio Cholerae的ubiquinone氧化酶(Na + -NQR)是一种呼吸系统络合物,使NADH的出生氧化与细胞质膜相连。它由六种不同的亚基,NQRA,NQRB,NQRC,NQRD,NQRE和NQRF组成,其中港口FAD,FMN,核黄素,醌和两个FES中心作为氧化还原共同因素。我们最近在3.5分辨率下确定了整个Na + -NQR复合物的X射线结构,并通过NQRA,NQRC和NQRF的高分辨率结构进行了分析。 Flavin和Fes的位置在细胞质和周质侧的位置揭示了从膜上的细胞质亚基NQRF到周质NQRC的电子转移途径,并通过NQRB回到醌减少位点上的细胞质NQRA。到目前为止未知的Fe网站位于膜嵌入式子单元中,NQRD和NQRE在膜上穿梭电子。氧化还原中心之间观察到的一些距离对于有效的电子转移来说太大,并且需要最有可能参与Na +运输的构象变化。基于该结构,我们提出了一种机制,其中氧化还原诱导的构象变化将电子转移到从细胞质转移到Na +通过亚基NQRB中的通道到细胞质转移到周质。

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