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Biomolecule conformational dynamics studies using two-beam fluorescence fluctuation spectroscopy: Dynamics of DNA hairpin structure.

机译:使用两束荧光波动光谱的生物分子构象动力学研究:DNA发夹结构的动力学。

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This dissertation describes a new fluorescence-based technique for understanding biomolecule conformational dynamics, referred to as two-beam fluorescence fluctuation spectroscopy (2bFFS). In this approach, the fluorescence fluctuations associated with biomolecule conformational changes were observed as the molecules flowed sequentially between two spatially offset, microscopic detection volumes, and analyzed simultaneously from three different vantage points---cross-correlation analysis of the two detection channels relative to each other, autocorrelation analysis of the two detection channels independently, and photon counting histogram (PCH) analysis. The cross-correlation function characterizes the hydrodynamic properties (flow rate and diffusion rate) of the molecules under study, independent of conformational fluctuations. These parameters can then be used to constrain the measured autocorrelation function, from which precise measurements of the conformational kinetics parameters are obtained. The combined PCH analysis can resolve the equilibrium distribution between different conformations of the molecules. To demonstrate these principles, dynamic equilibrium between the folded and unfolded conformations of single stranded DNA hairpin molecules was investigated. The DNA hairpins contained a polythymine loop and a five base-pair stem sequence that was end-labeled with a fluorescent dye and a quencher. Folding and unfolding of the DNA hairpin structure caused the dye fluorescence to fluctuate on the same characteristic time scale as the conformational change. In addition to unambiguously characterizing the relaxation times of the process, the analysis revealed non-exponential relaxation kinetics and DNA size-dependent folding times characteristic of dynamic heterogeneity in the DNA hairpin-forming mechanism. Analysis of the equilibrium distribution suggests a three-state mechanism for the reaction, involving a rapid equilibrium between open and a stable intermediate form of the DNA hairpin. The final, closed form of the DNA hairpin is suggested to be stable on a much longer time scale than that of the present FFS measurements.
机译:本文介绍了一种基于荧光的新技术,用于理解生物分子的构象动力学,称为两束荧光波动光谱法(2bFFS)。在这种方法中,当分子在两个空间偏移的微观检测体积之间顺序流动时,观察到了与生物分子构象变化相关的荧光波动,并从三个不同的有利位置同时进行了分析-相对于两个检测通道的互相关分析彼此之间,分别对两个检测通道进行自相关分析,以及光子计数直方图(PCH)分析。互相关函数表征了所研究分子的流体动力学特性(流速和扩散率),而与构象波动无关。然后,这些参数可用于约束所测得的自相关函数,从中可获得构象动力学参数的精确测量值。组合的PCH分析可以解决分子不同构象之间的平衡分布。为了证明这些原理,研究了单链DNA发夹分子的折叠和未折叠构象之间的动态平衡。 DNA发夹含有一个多胸腺嘧啶环和一个五个碱基对的茎序列,该序列以荧光染料和淬灭剂为末端标记。 DNA发夹结构的折叠和展开导致染料荧光在与构象变化相同的特征时间尺度上波动。除了明确表征该过程的弛豫时间外,分析还揭示了DNA发夹形成机理中动态异质性的非指数弛豫动力学和DNA大小依赖性折叠时间。平衡分布的分析表明了该反应的三态机制,涉及DNA发夹的开放形式和稳定中间形式之间的快速平衡。 DNA发夹的最终闭合形式建议在比当前FFS测量更长的时间尺度上保持稳定。

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