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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Combining Graphical and Analytical Methods with Molecular Simulations To Analyze Time-Resolved FRET Measurements of Labeled Macromolecules Accurately
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Combining Graphical and Analytical Methods with Molecular Simulations To Analyze Time-Resolved FRET Measurements of Labeled Macromolecules Accurately

机译:将图形和分析方法与分子模拟相结合,以准确分析标记大分子的时间分辨尺寸测量

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摘要

F?rster resonance energy transfer (FRET) measurements from a donor, D, to an acceptor, A, fluorophore are frequently used in vitro and in live cells to reveal information on the structure and dynamics of DA labeled macromolecules. Accurate descriptions of FRET measurements by molecular models are complicated because the fluorophores are usually coupled to the macromolecule via flexible long linkers allowing for diffusional exchange between multiple states with different fluorescence properties caused by distinct environmental quenching, dye mobilities, and variable DA distances. It is often assumed for the analysis of fluorescence intensity decays that DA distances and D quenching are uncorrelated (homogeneous quenching by FRET) and that the exchange between distinct fluorophore states is slow (quasistatic). This allows us to introduce the FRET-induced donor decay, εD(t), a function solely depending on the species fraction distribution of the rate constants of energy transfer by FRET, for a convenient joint analysis of fluorescence decays of FRET and reference samples by integrated graphical and analytical procedures. Additionally, we developed a simulation toolkit to model dye diffusion, fluorescence quenching by the protein surface, and FRET. A benchmark study with simulated fluorescence decays of 500 protein structures demonstrates that the quasistatic homogeneous model works very well and recovers for single conformations the average DA distances with an accuracy of
机译:<![cdata [ src ='http://pubs.acs.org/appl/literatum/publisher/achs/journals/content/jpcbfk/2017/jpcbfk.2017.121.issue- 35/acs.jpcb.7b03441// 20170831 / Images / Medium / JP-2017-03441Z_0014.GIF“> F?F?rste谐振能量转移(FRET)从供体,d,对受体,a,荧光团的测量通常使用在体外在Live Cells中,揭示关于DA标记大分子的结构和动态的信息。通过分子模型的荧光测量的精确描述是复杂的,因为荧光团通常通过柔性的长连接器偶联,允许通过不同的环境猝灭,染料迁移率和可变DA距离引起的多种荧光性能之间的多个状态之间的扩散交换。通常假设对荧光强度的分析衰减,即Da距离和D淬火的衰减(通过褶皱均匀猝灭),并且不同荧光团状态之间的交换缓慢(Quasistatic)。这使我们能够引入FRET诱导的供体衰减,ε D ( t ),仅取决于褶皱能量转移速率常数的物种分量分布,通过集成的图解和分析程序,方便地分析Fret和参考样品的荧光衰减。此外,我们开发了一种模拟染料扩散,蛋白质表面的荧光猝灭的模拟工具包和褶皱。具有500个蛋白质结构的模拟荧光衰减的基准研究表明,Quasistatic均匀模型非常好,并且单构象恢复平均da距离,精度<2%。对于更复杂的案例,其中蛋白质采用具有明显不同染料环境的多种构象(异质案例),我们介绍了一般分析框架,并评估其在DA距离中的异质性方面的功率。开发的快速仿真方法,依靠粗粒染料的棕色动力学,在其空间可访问的体积中,使我们能够通过与蛋白质构象的染料状态联系起作用的染色案例来覆盖衰变分析中的结构信息,以铺平荧光和褶皱的方式基于动态结构生物学。最后,我们提出了理论和模拟,以评估稳态和时间分辨尺寸测量的准确性和精度,在单分子和集合水平上解析DA距离,并提供用于估计近似,系统和统计误差的严格框架。 ]]>

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