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大肠杆菌 ClpB 伴侣全原子六聚体模型的构象稳定性。

Conformational stability of the full-atom hexameric model of the ClpB chaperone from Escherichia coli.

机构信息

Department of Molecular and Cellular Biology, Intercollegiate Faculty of Biotechnology, University of Gdańsk, Kładki 24, Gdańsk 80-822, Poland.

出版信息

Biopolymers. 2010 Jan;93(1):47-60. doi: 10.1002/bip.21294.

Abstract

The Escherichia coli heat shock protein ClpB, a member of the Hsp100 family, plays a crucial role in cellular thermotolerance. In co-operation with the Hsp70 chaperone system, it is able to solubilize proteins aggregated by heat shock conditions and refold them into the native state in an ATP-dependent way. It was established that the mechanism of ClpB action depends on the formation of a ring-shaped hexameric structure and the translocation of a protein substrate through an axial channel. The structural aspects of this process are not fully known. By means of homology modeling and protein-protein docking, we obtained a model of the hexameric arrangement of the full-length ClpB protein complexed with ATP. A molecular dynamics simulation of this model was performed to assess its flexibility and conformational stability. The high mobility of the "linker" M-domain, essential for the renaturing activity of ClpB, was demonstrated, and the size and shape of central channel were analyzed. In this model, we propose the coordinates for a loop between b4 and B6 structural elements, not defined in previous structural research, which faces the inside of the channel and may therefore play a role in substrate translocation.

摘要

大肠杆菌热休克蛋白 ClpB 是 Hsp100 家族的成员,在细胞耐热性中起着至关重要的作用。它与 Hsp70 伴侣系统合作,能够溶解因热休克条件而聚集的蛋白质,并以 ATP 依赖的方式将其重新折叠成天然状态。已经确定,ClpB 的作用机制取决于形成环形六聚体结构和通过轴向通道转运蛋白质底物。这个过程的结构方面还不完全清楚。通过同源建模和蛋白质-蛋白质对接,我们获得了与 ATP 结合的全长 ClpB 蛋白复合物的六聚体排列模型。对该模型进行了分子动力学模拟,以评估其灵活性和构象稳定性。证明了对于 ClpB 的复性活性至关重要的“连接”M 结构域具有高迁移率,并分析了中央通道的大小和形状。在这个模型中,我们提出了 b4 和 B6 结构元件之间的环的坐标,这些坐标在以前的结构研究中没有定义,该环面向通道内部,因此可能在底物转运中发挥作用。

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