Physics Department, University of Wisconsin , Milwaukee, Wisconsin 53211, USA.
Struct Dyn. 2014 Mar 27;1(2):024701. doi: 10.1063/1.4869472. eCollection 2014 Mar.
With recent technological advances at synchrotrons [Graber et al., J. Synchrotron Radiat. 18, 658-670 (2011)], it is feasible to rapidly collect time-resolved crystallographic data at multiple temperature settings [Schmidt et al., Acta Crystallogr. D 69, 2534-2542 (2013)], from which barriers of activation can be extracted. With the advent of fourth generation X-ray sources, new opportunities emerge to investigate structure and dynamics of biological macromolecules in real time [M. Schmidt, Adv. Condens. Matter Phys. 2013, 1-10] in crystals and potentially from single molecules in random orientation in solution [Poon et al., Adv. Condens. Matter Phys. 2013, 750371]. Kinetic data from time-resolved experiments on short time-scales must be interpreted in terms of chemical kinetics [Steinfeld et al., Chemical Kinetics and Dynamics, 2nd ed. (Prentience Hall, 1985)] and tied to existing time-resolved experiments on longer time-scales [Schmidt et al., Acta Crystallogr. D 69, 2534-2542 (2013); Jung et al., Nat. Chem. 5, 212-220 (2013)]. With this article, we will review and outline steps that are required to routinely determine the energetics of reactions in biomolecules in crystal and solution with newest X-ray sources. In eight sections, we aim to describe concepts and experimental details that may help to inspire new approaches to collect and interpret these data.
随着同步加速器技术的最新进展[Graber 等人,J. Synchrotron Radiat. 18, 658-670 (2011)],可以在多个温度设置下快速收集时分辨结晶数据[Schmidt 等人,Acta Crystallogr. D 69, 2534-2542 (2013)],从中可以提取出激活能垒。随着第四代 X 射线源的出现,为实时研究生物大分子的结构和动力学提供了新的机会[M. Schmidt,Adv. Condens. Matter Phys. 2013, 1-10],包括晶体中的结构和动力学,以及溶液中随机取向的单个分子[Poon 等人,Adv. Condens. Matter Phys. 2013, 750371]。在短时间尺度上进行的时间分辨实验的动力学数据必须根据化学动力学进行解释[Steinfeld 等人,Chemical Kinetics and Dynamics, 2nd ed. (Prentience Hall, 1985)],并与较长时间尺度上现有的时间分辨实验相关联[Schmidt 等人,Acta Crystallogr. D 69, 2534-2542 (2013); Jung 等人,Nat. Chem. 5, 212-220 (2013)]。在本文中,我们将回顾和概述使用最新的 X 射线源在晶体和溶液中常规确定生物分子反应能量学所需的步骤。在八个部分中,我们旨在描述可能有助于激发新方法来收集和解释这些数据的概念和实验细节。