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Structure of the Vacuolar H+-ATPase Rotary Motor Reveals New Mechanistic Insights

机译:液泡H + ATPase旋转马达的结构揭示了新的力学见解。

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Vacuolar H+-ATPases are multisubunit complexes that operate with rotary mechanics and are essential for membrane proton transport throughout eukaryotes. Here we report a similar to 1 nm resolution reconstruction of a V-ATPase in a different conformational state from that previously reported for a lower-resolution yeast model. The stator network of the V-ATPase (and by implication that of other rotary ATPases) does not change conformation in different catalytic states, and hence must be relatively rigid. We also demonstrate that a conserved bearing in the catalytic domain is electrostatic, contributing to the extraordinarily high efficiency of rotary ATPases. Analysis of the rotor axle/membrane pump interface suggests how rotary ATPases accommodate different c ring stoichiometries while maintaining high efficiency. The model provides evidence for a half channel in the proton pump, supporting theoretical models of ion translocation. Our refined model therefore provides new insights into the structure and mechanics of the V-ATPases.
机译:液泡H + -ATPase是多亚基复合物,可通过旋转机制起作用,对于整个真核生物中膜质子运输至关重要。在这里,我们报道了与以前报道的低分辨率酵母模型不同的构象状态,类似于1 nm分辨率的V-ATPase重构。 V-ATPase的定子网络(并暗示其他旋转ATPase的定子网络)在不同的催化状态下不会改变构象,因此必须相对刚性。我们还证明了催化域中的保守轴承是静电的,有助于旋转ATPase的超高效率。对转子轴/膜泵接口的分析表明,旋转ATPase如何在保持高效率的同时适应不同的c环化学计量。该模型为质子泵中的半通道提供了证据,支持了离子迁移的理论模型。因此,我们完善的模型为V-ATPase的结构和机制提供了新的见解。

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