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SecA中构象偶联的机制:氢键网络和水相互作用的关键作用。

Mechanism of conformational coupling in SecA: Key role of hydrogen-bonding networks and water interactions.

作者信息

Milenkovic Stefan, Bondar Ana-Nicoleta

机构信息

Theoretical Molecular Biophysics, Department of Physics, Freie Universitaet Berlin, Arnimallee 14, D-14195 Berlin, Germany.

Theoretical Molecular Biophysics, Department of Physics, Freie Universitaet Berlin, Arnimallee 14, D-14195 Berlin, Germany.

出版信息

Biochim Biophys Acta. 2016 Feb;1858(2):374-85. doi: 10.1016/j.bbamem.2015.11.010. Epub 2015 Dec 1.

Abstract

SecA uses the energy yielded by the binding and hydrolysis of adenosine triphosphate (ATP) to push secretory pre-proteins across the plasma membrane in bacteria. Hydrolysis of ATP occurs at the nucleotide-binding site, which contains the conserved carboxylate groups of the DEAD-box helicases. Although crystal structures provide valuable snapshots of SecA along its reaction cycle, the mechanism that ensures conformational coupling between the nucleotide-binding site and the other domains of SecA remains unclear. The observation that SecA contains numerous hydrogen-bonding groups raises important questions about the role of hydrogen-bonding networks and hydrogen-bond dynamics in long-distance conformational couplings. To address these questions, we explored the molecular dynamics of SecA from three different organisms, with and without bound nucleotide, in water. By computing two-dimensional hydrogen-bonding maps we identify networks of hydrogen bonds that connect the nucleotide-binding site to remote regions of the protein, and sites in the protein that respond to specific perturbations. We find that the nucleotide-binding site of ADP-bound SecA has a preferred geometry whereby the first two carboxylates of the DEAD motif bridge via hydrogen-bonding water. Simulations of a mutant with perturbed ATP hydrolysis highlight the water-bridged geometry as a key structural element of the reaction path.

摘要

SecA利用三磷酸腺苷(ATP)结合和水解所产生的能量,将分泌前体蛋白推过细菌的质膜。ATP的水解发生在核苷酸结合位点,该位点包含DEAD-box解旋酶保守的羧基。尽管晶体结构提供了SecA在其反应周期中的有价值的瞬间图像,但确保核苷酸结合位点与SecA其他结构域之间构象偶联的机制仍不清楚。SecA含有大量氢键基团这一观察结果,引发了关于氢键网络和氢键动力学在长距离构象偶联中作用的重要问题。为了解决这些问题,我们在水中研究了来自三种不同生物体的SecA在结合核苷酸和未结合核苷酸情况下的分子动力学。通过计算二维氢键图谱,我们确定了将核苷酸结合位点连接到蛋白质远端区域的氢键网络,以及蛋白质中对特定扰动有响应的位点。我们发现,结合ADP的SecA的核苷酸结合位点具有一种优选的几何结构,即DEAD基序的前两个羧基通过氢键水桥连。对ATP水解受扰的突变体的模拟突出了水桥连几何结构作为反应路径的关键结构要素。

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