Department of Chemistry and Institute for Nanotechnology & Advanced Materials, Bar-Ilan University, Ramat-Gan 5290002, Israel.
J Phys Chem B. 2021 Aug 26;125(33):9417-9425. doi: 10.1021/acs.jpcb.1c02553. Epub 2021 Aug 12.
Copper is essential for proper functioning of cells but is dangerous in unregulated concentrations. One of the members in the bacterial system responsible for facilitating copper homeostasis is the copper efflux regulator (CueR) protein. Upon copper binding, CueR induces transcription of additional copper homeostasis proteins via a cascade of events. There are some available crystal structures of CueR, in the holo (copper-bound), active (copper- and DNA-bound), and repressed (only DNA-bound) states, and these structures suggest that transcription initiation involves a distortion in the promoter DNA strand. In this work, we study the dynamic behavior of the protein, using molecular dynamics simulations, and compare with available electron paramagnetic resonance measurements for validation. We develop simple force-field parameters to describe the copper-binding motif, thus enabling the use of simplified, classical physics equations. This enabled us to access reasonable simulation times that illustrate global motions of the protein. Both in the holo and apo states of CueR, we observed large-scale helical bending motions that could be involved in the bending of a bound DNA molecule so that transcription activation can take place. Additionally, copper binding might afford increased rigidification of the active state via helix α6.
铜对于细胞的正常功能是必需的,但在不受调控的浓度下是危险的。负责促进铜稳态的细菌系统中的一个成员是铜外排调节剂(CueR)蛋白。在铜结合后,CueR 通过一系列事件诱导额外的铜稳态蛋白的转录。已经有一些 CueR 的晶体结构,包括全酶(铜结合)、活性(铜和 DNA 结合)和抑制(仅 DNA 结合)状态,这些结构表明转录起始涉及启动子 DNA 链的扭曲。在这项工作中,我们使用分子动力学模拟研究了蛋白质的动态行为,并与现有的电子顺磁共振测量结果进行了比较,以验证其结果。我们开发了简单的力场参数来描述铜结合基序,从而能够使用简化的经典物理方程。这使我们能够访问合理的模拟时间,以说明蛋白质的整体运动。在 CueR 的全酶和脱辅基状态下,我们观察到大规模的螺旋弯曲运动,这些运动可能涉及结合 DNA 分子的弯曲,从而使转录激活能够发生。此外,铜结合可能通过螺旋α6 增加活性状态的刚性。