Kubelka Jan
Department of Chemistry, University of Wyoming, Laramie, WY 82071, USA.
Photochem Photobiol Sci. 2009 Apr;8(4):499-512. doi: 10.1039/b819929a. Epub 2009 Feb 16.
Many important biochemical processes occur on the time-scales of nanoseconds and microseconds. The introduction of the laser temperature-jump (T-jump) to biophysics more than a decade ago opened these previously inaccessible time regimes up to direct experimental observation. Since then, laser T-jump methodology has evolved into one of the most versatile and generally applicable methods for studying fast biomolecular kinetics. This perspective is a review of the principles and applications of the laser T-jump technique in biophysics. A brief overview of the T-jump relaxation kinetics and the historical development of laser T-jump methodology is presented. The physical principles and practical experimental considerations that are important for the design of the laser T-jump experiments are summarized. These include the Raman conversion for generating heating pulses, considerations of size, duration and uniformity of the temperature jump, as well as potential adverse effects due to photo-acoustic waves, cavitation and thermal lensing, and their elimination. The laser T-jump apparatus developed at the NIH Laboratory of Chemical Physics is described in detail along with a brief survey of other laser T-jump designs in use today. Finally, applications of the laser T-jump in biophysics are reviewed, with an emphasis on the broad range of problems where the laser T-jump methodology has provided important new results and insights into the dynamics of the biomolecular processes.
许多重要的生物化学过程发生在纳秒和微秒的时间尺度上。十多年前,激光温度跃变(T-jump)技术引入生物物理学领域,开启了这些以前无法直接进行实验观测的时间范围。从那时起,激光T-jump方法已发展成为研究快速生物分子动力学最通用、最适用的方法之一。本文综述了激光T-jump技术在生物物理学中的原理和应用。简要概述了T-jump弛豫动力学以及激光T-jump方法的历史发展。总结了激光T-jump实验设计中重要的物理原理和实际实验考虑因素。这些因素包括用于产生加热脉冲的拉曼转换、温度跃变的大小、持续时间和均匀性的考虑,以及光声波、空化和热透镜效应可能产生的不利影响及其消除方法。详细描述了美国国立卫生研究院化学物理实验室开发的激光T-jump装置,并简要介绍了当今使用的其他激光T-jump设计。最后,综述了激光T-jump在生物物理学中的应用,重点介绍了该方法在众多问题上取得的重要新成果以及对生物分子过程动力学的新见解。