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Double-lock ratchet mechanism revealing the role of αSER-344 in FoF1 ATP synthase

机译:双锁棘轮机制揭示了αSER-344在FoF1 ATP合酶中的作用

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摘要

In a majority of living organisms, FoF1 ATP synthase performs the fundamental process of ATP synthesis. Despite the simple net reaction formula, ADP + Pi → ATP + H2O, the detailed step-by-step mechanism of the reaction yet remains to be resolved owing to the complexity of this multisubunit enzyme. Based on quantum mechanical computations using recent high resolution X-ray structures, we propose that during ATP synthesis the enzyme first prepares the inorganic phosphate for the γP-OADP bond-forming step via a double-proton transfer. At this step, the highly conserved αS344 side chain plays a catalytic role. The reaction thereafter progresses through another transition state (TS) having a planar ion configuration to finally form ATP. These two TSs are concluded crucial for ATP synthesis. Using stepwise scans and several models of the nucleotide-bound active site, some of the most important conformational changes were traced toward direction of synthesis. Interestingly, as the active site geometry progresses toward the ATP-favoring tight binding site, at both of these TSs, a dramatic increase in barrier heights is observed for the reverse direction, i.e., hydrolysis of ATP. This change could indicate a “ratchet” mechanism for the enzyme to ensure efficacy of ATP synthesis by shifting residue conformation and thus locking access to the crucial TSs.
机译:在大多数生物中,FoF1 ATP合酶执行ATP合成的基本过程。尽管简单的净反应公式为ADP + Pi→ATP + H2O,但由于这种多亚基酶的复杂性,反应的详细分步机理仍待解决。基于使用最新高分辨率X射线结构的量子力学计算,我们建议在ATP合成过程中,酶首先通过双质子转移为γP-OADP键形成步骤准备无机磷酸盐。在此步骤中,高度保守的αS344侧链起催化作用。此后,反应通过另一个具有平面离子构型的过渡态(TS)进行,最终形成ATP。认为这两个TS对ATP合成至关重要。使用逐步扫描和核苷酸结合的活性位点的几种模型,一些最重要的构象变化被追踪到合成方向。有趣的是,随着活性位点几何结构朝着有利于ATP的紧密结合位点发展,在这两个TS处,观察到反向的屏障高度(即ATP水解)急剧增加。这种变化可能表明该酶具有“棘轮”机制,可通过转移残基构象并从而锁定对关键TS的通道来确保ATP合成的有效性。

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