KU Leuven, University of Leuven, Rega Institute, Department of Microbiology and Immunology, 3000 Leuven, Belgium.
Freie Universität Berlin, Department of Physics, Theoretical Molecular Biophysics Group, Arnimallee 14, 14195 Berlin, Germany.
Structure. 2021 Aug 5;29(8):846-858.e7. doi: 10.1016/j.str.2021.03.015. Epub 2021 Apr 13.
The cytoplasmic ATPase SecA and the membrane-embedded SecYEG channel assemble to form the Sec translocase. How this interaction primes and catalytically activates the translocase remains unclear. We show that priming exploits a nexus of intrinsic dynamics in SecA. Using atomistic simulations, smFRET, and HDX-MS, we reveal multiple dynamic islands that cross-talk with domain and quaternary motions. These dynamic elements are functionally important and conserved. Central to the nexus is a slender stem through which rotation of the preprotein clamp of SecA is biased by ATPase domain motions between open and closed clamping states. An H-bonded framework covering most of SecA enables multi-tier dynamics and conformational alterations with minimal energy input. As a result, cognate ligands select preexisting conformations and alter local dynamics to regulate catalytic activity and clamp motions. These events prime the translocase for high-affinity reception of non-folded preprotein clients. Dynamics nexuses are likely universal and essential in multi-liganded proteins.
细胞质 ATP 酶 SecA 和膜嵌入的 SecYEG 通道组装形成 Sec 易位酶。这种相互作用如何引发并催化激活易位酶仍然不清楚。我们表明,引发利用了 SecA 固有动力学的连接点。使用原子模拟、smFRET 和 HDX-MS,我们揭示了多个与结构域和四级运动相互作用的动态岛。这些动态元素具有功能重要性和保守性。连接点的核心是一个细长的茎,通过它,SecA 的前蛋白夹的旋转被 ATP 酶结构域在打开和关闭夹状态之间的运动所偏向。覆盖 SecA 大部分区域的氢键框架使多层次的动力学和构象改变能够以最小的能量输入进行。结果,同源配体选择预先存在的构象并改变局部动力学,以调节催化活性和夹运动。这些事件为高亲和力接收非折叠的前蛋白客户做好了易位酶的准备。动力连接点可能在多配体蛋白中是普遍存在和必不可少的。