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能量复合物显然与细菌鞭毛的开关-马达复合物有关。

Energy complexes are apparently associated with the switch-motor complex of bacterial flagella.

机构信息

Department of Biological Chemistry, The Weizmann Institute of Science, 76100 Rehovot, Israel.

出版信息

J Mol Biol. 2012 Feb 17;416(2):192-207. doi: 10.1016/j.jmb.2011.12.027. Epub 2011 Dec 19.

Abstract

Recently, the switch-motor complex of bacterial flagella was found to be associated with a number of non-flagellar proteins, which, in spite of not being known as belonging to the chemotaxis system, affect the function of the flagella. The observation that one of these proteins, fumarate reductase, is essentially involved in electron transport under anaerobic conditions raised the question of whether other energy-linked enzymes are associated with the switch-motor complex as well. Here, we identified two additional such enzymes in Escherichia coli. Employing fluorescence resonance energy transfer in vivo and pull-down assays invitro, we provided evidence for the interaction of F(0)F(1) ATP synthase via its β subunit with the flagellar switch protein FliG and for the interaction of NADH-ubiquinone oxidoreductase with FliG, FliM, and possibly FliN. Furthermore, we measured higher rates of ATP synthesis, ATP hydrolysis, and electron transport from NADH to oxygen in membrane areas adjacent to the flagellar motor than in other membrane areas. All these observations suggest the association of energy complexes with the flagellar switch-motor complex. Finding that deletion of the β subunit in vivo affected the direction of flagellar rotation and switching frequency further implied that the interaction of F(0)F(1) ATP synthase with FliG is important for the function of the switch of bacterial flagella.

摘要

最近,细菌鞭毛的开关-马达复合物被发现与许多非鞭毛蛋白有关,这些蛋白尽管不被认为属于趋化作用系统,但却影响着鞭毛的功能。观察到这些蛋白之一的延胡索酸还原酶在厌氧条件下主要参与电子传递,这就提出了一个问题,即其他与能量相关的酶是否也与开关-马达复合物有关。在这里,我们在大肠杆菌中鉴定了另外两种这样的酶。通过体内荧光共振能量转移和体外下拉实验,我们提供了 F(0)F(1)ATP 合酶通过其β亚基与鞭毛开关蛋白 FliG 相互作用的证据,以及 NADH-泛醌氧化还原酶与 FliG、FliM 相互作用的证据,可能还有 FliN。此外,我们测量了与鞭毛马达相邻的膜区域中从 NADH 到氧的 ATP 合成、ATP 水解和电子传递的更高速率,而不是在其他膜区域。所有这些观察结果表明,能量复合物与鞭毛开关-马达复合物有关。发现体内缺失β亚基会影响鞭毛旋转的方向和切换频率,这进一步表明 F(0)F(1)ATP 合酶与 FliG 的相互作用对于细菌鞭毛开关的功能很重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2425/4361073/3b18b9b923cd/nihms-669866-f0001.jpg

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