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细菌 ATP 合酶活性的调节:是齿轮换挡还是棘爪棘轮机制?

Regulation of bacterial ATP synthase activity: A gear-shifting or a pawl-ratchet mechanism?

机构信息

Instituto de Investigaciones Biomédicas, Universidad Nacional Autónoma de México, Mexico City, Mexico.

Graduate School of Engineering, The University of Tokyo, Tokyo, Japan.

出版信息

FEBS J. 2021 May;288(10):3159-3163. doi: 10.1111/febs.15671. Epub 2020 Dec 30.

Abstract

The F F -ATP synthase, a widely distributed nanomotor responsible of ATP synthesis, rotates its central rotor reversibly: In the clockwise direction when viewed from the Fo (with the observer facing the positive side of the energy transducing membrane and looking down into the negative side of the membrane), it functions as ATP synthase, while in counterclockwise sense, it operates as a proton-pumping ATP hydrolase. Regulation exerted by naturally occurring inhibitory proteins of the enzyme appears to function by avoiding ATP hydrolysis while preserving ATP synthesis. The work of Liu et al. describes an unbiased, elegant analytical pipeline that provides important insights into the inhibitory role of the ε-subunit of the bacterial F F -ATP synthase in vivo. We discuss if a gear-shifting versus a pawl-ratchet mechanism may explain the regulatory role of the ε-subunit.

摘要

F F -ATP 合酶是一种广泛分布的纳米马达,负责 ATP 的合成,它可以可逆地旋转其中心转子:从 Fo 方向观察(观察者面向能量转换膜的正侧,向下观察膜的负侧),顺时针方向旋转时,它作为 ATP 合酶起作用,而逆时针方向旋转时,它作为质子泵 ATP 水解酶起作用。酶的天然抑制蛋白的调节作用似乎通过在保留 ATP 合成的同时避免 ATP 水解来发挥作用。刘等人的工作描述了一种无偏、优雅的分析管道,为细菌 F F -ATP 合酶的 ε 亚基在体内的抑制作用提供了重要的见解。我们讨论了齿轮换挡与棘爪棘轮机制是否可以解释 ε 亚基的调节作用。

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