Bergmann Uwe, Kern Jan, Schoenlein Robert W, Wernet Philippe, Yachandra Vittal K, Yano Junko
Stanford PULSE Institute, SLAC National Accelerator Laboratory, Menlo Park, CA, USA.
Department of Physics, University of Wisconsin-Madison, Madison, WI, USA.
Nat Rev Phys. 2021 Apr;3(4):264-282. doi: 10.1038/s42254-021-00289-3. Epub 2021 Mar 19.
The metal centres in metalloenzymes and molecular catalysts are responsible for the rearrangement of atoms and electrons during complex chemical reactions, and they enable selective pathways of charge and spin transfer, bond breaking/making and the formation of new molecules. Mapping the electronic structural changes at the metal sites during the reactions gives a unique mechanistic insight that has been difficult to obtain to date. The development of X-ray free-electron lasers (XFELs) enables powerful new probes of electronic structure dynamics to advance our understanding of metalloenzymes. The ultrashort, intense and tunable XFEL pulses enable X-ray spectroscopic studies of metalloenzymes, molecular catalysts and chemical reactions, under functional conditions and in real time. In this Technical Review, we describe the current state of the art of X-ray spectroscopy studies at XFELs and highlight some new techniques currently under development. With more XFEL facilities starting operation and more in the planning or construction phase, new capabilities are expected, including high repetition rate, better XFEL pulse control and advanced instrumentation. For the first time, it will be possible to make real-time molecular movies of metalloenzymes and catalysts in solution, while chemical reactions are taking place.
金属酶和分子催化剂中的金属中心负责复杂化学反应过程中原子和电子的重排,它们能实现电荷和自旋转移、键断裂/形成以及新分子形成的选择性途径。绘制反应过程中金属位点的电子结构变化图能提供独特的机理见解,而这在迄今为止一直难以获得。X射线自由电子激光(XFEL)的发展使电子结构动力学有了强大的新探测手段,从而推进我们对金属酶的理解。超短、高强度且可调谐的XFEL脉冲能在功能条件下实时对金属酶、分子催化剂和化学反应进行X射线光谱研究。在本技术综述中,我们描述了XFEL上X射线光谱研究的当前技术水平,并突出了一些目前正在开发的新技术。随着更多XFEL设施开始运行以及更多设施处于规划或建设阶段,预计会有新的能力,包括高重复率、更好的XFEL脉冲控制和先进的仪器设备。首次有可能在溶液中的化学反应发生时,实时拍摄金属酶和催化剂的分子动态影像。