Sorokina Maria, Koh Hye-Ran, Patel Smita S, Ha Taekjip
Department of Physics and Center for the Physics of Living Cells, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, USA.
J Am Chem Soc. 2009 Jul 22;131(28):9630-1. doi: 10.1021/ja902861f.
Single molecule (SM) techniques are relatively new additions to the field of biophysics that allow one to manipulate individual molecules and study their behavior. To make these studies more relevant to what actually happens in the cell, one needs to move beyond the studies of individual molecules in isolation and study many different molecules working in concert. This presents a technical challenge as most SM experiments measure only one observable as a function of time, whereas complex biomolecular systems require multidimensional SM analysis. Förster resonance energy transfer (FRET) is one of the most common single molecule approaches and can report on the real time distance changes. However, FRET requires two fluorophores which will ultimately limit the degree of multiplexing in future SM applications. It will be useful if a single fluorophore can be used to provide equivalent information. In this communication, we show that fluorescence lifetime analysis of a single Cy3 fluorophore attached to the promoter region of the DNA can be used to reveal transient reaction intermediates during transcription initiation by T7 RNA polymerase. This work represents the first demonstration of real-time biochemical reactions observed via single molecule fluorescence lifetime trajectories of immobilized molecules.
单分子(SM)技术是生物物理学领域相对较新的技术,它使人们能够操纵单个分子并研究其行为。为了使这些研究与细胞内实际发生的情况更相关,人们需要超越对单个分子的孤立研究,转而研究协同工作的许多不同分子。这带来了一个技术挑战,因为大多数单分子实验仅测量一个作为时间函数的可观测值,而复杂的生物分子系统需要多维单分子分析。福斯特共振能量转移(FRET)是最常见的单分子方法之一,可以报告实时距离变化。然而,FRET需要两个荧光团,这最终将限制未来单分子应用中的多路复用程度。如果能用单个荧光团提供等效信息将很有用。在本通讯中,我们表明,附着在DNA启动子区域的单个Cy3荧光团的荧光寿命分析可用于揭示T7 RNA聚合酶转录起始过程中的瞬时反应中间体。这项工作首次展示了通过固定分子的单分子荧光寿命轨迹观察到的实时生化反应。