State Key Laboratory of Drug Research, Shanghai Institute of Materia Medica, Chinese Academy of Sciences, Shanghai 201203, China.
J Biol Chem. 2013 Jun 14;288(24):17643-53. doi: 10.1074/jbc.M113.452714. Epub 2013 Apr 26.
The ATP-dependent Clp protease (ClpP) plays an essential role not only in the control of protein quality but also in the regulation of bacterial pathogen virulence, making it an attractive target for antibacterial treatment. We have previously determined the crystal structures of Staphylococcus aureus ClpP (SaClpP) in two different states, extended and compressed. To investigate the dynamic switching of ClpP between these states, we performed a series of molecular dynamics simulations. During the structural transition, the long and straight helix E in the extended SaClpP monomer underwent an unfolding/refolding process, resulting in a kinked helix very similar to that in the compressed monomer. As a stable intermediate in the molecular dynamics simulation, the compact state was suggested and subsequently identified in x-ray crystallographic experiment. Our combined studies also determined that Ala(140) acted as a "hinge" during the transition between the extended and compressed states, and Glu(137) was essential for stabilizing the compressed state. Overall, this study provides molecular insights into the dynamics and mechanism of the functional conformation changes of SaClpP. Given the highly conserved sequences of ClpP proteins among different species, these findings potentially reflect a switching mechanism for the dynamic process shared in the whole ClpP family in general and thus aid in better understand the principles of Clp protease assembly and function.
ATP 依赖的 Clp 蛋白酶 (ClpP) 不仅在控制蛋白质质量方面发挥着重要作用,而且在调节细菌病原体的毒力方面也起着重要作用,因此成为抗菌治疗的一个有吸引力的靶点。我们之前已经确定了两种不同状态(伸展和压缩)下的金黄色葡萄球菌 ClpP(SaClpP)的晶体结构。为了研究 ClpP 在这些状态之间的动态切换,我们进行了一系列分子动力学模拟。在结构转换过程中,伸展的 SaClpP 单体中长而直的 E 螺旋经历了展开/折叠过程,导致形成了一个类似于压缩单体中的弯曲螺旋。作为分子动力学模拟中的稳定中间体,提出并随后在 x 射线晶体学实验中鉴定了紧凑状态。我们的综合研究还确定,Ala(140) 在伸展和压缩状态之间的转换过程中充当“铰链”,而 Glu(137) 对于稳定压缩状态至关重要。总的来说,这项研究提供了分子水平上对 SaClpP 功能构象变化的动力学和机制的深入了解。鉴于不同物种的 ClpP 蛋白序列高度保守,这些发现可能反映了整个 ClpP 家族中动态过程的切换机制,从而有助于更好地理解 Clp 蛋白酶组装和功能的原理。