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High-Resolution Structure and Mechanism of an F/V-Hybrid Rotor Ring in a Na+-coupled ATP Synthase

机译:Na +耦合ATP合酶中F / V混合转子环的高分辨率结构和机理

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摘要

All rotary ATPases catalyze the interconversion of ATP and ADP-Pi through a mechanism that is coupled to the transmembrane flow of H+ or Na+. Physiologically, however, F/A-type enzymes specialize in ATP synthesis driven by downhill ion diffusion, while eukaryotic V-type ATPases function as ion pumps. To begin to rationalize the molecular basis for this functional differentiation, we solved the crystal structure of the Na+-driven membrane rotor of the Acetobacterium woodii ATP synthase, at 2.1 Å resolution. Unlike known structures, this rotor ring is a 9:1 heteromer of F- and V-type c-subunits, and therefore features a hybrid configuration of ion-binding sites along its circumference. Molecular and kinetic simulations are used to dissect the mechanisms of Na+ recognition and rotation of this c-ring, and to explain the functional implications of the V-type c-subunit. These structural and mechanistic insights indicate an evolutionary path between synthases and pumps involving adaptations in the rotor ring.
机译:所有的旋转ATP酶都通过与H + 或Na + 的跨膜流耦合的机制催化ATP和ADP-Pi的相互转化。然而,在生理上,F / A型酶专长于下坡离子扩散驱动的ATP合成,而真核V型ATPase则充当离子泵。为了使这种功能分化的分子基础合理化,我们以2.1Å的分辨率解决了木醋杆菌ATP合酶的Na + 驱动膜转子的晶体结构。与已知结构不同,该转子环是F型和V型c亚基的9:1异聚体,因此具有沿其圆周分布的离子结合位点的混合结构。分子和动力学模拟被用来剖析Na + 识别和旋转此c环的机制,并解释V型c亚基的功能含义。这些结构和机械方面的见解表明合酶与泵之间的进化路径涉及转子环的适应。

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