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Distribution analysis of the photon correlation spectroscopy of discrete numbers of dye molecules conjugated to DNA

机译:离散数量的与DNA结合的染料分子的光子相关光谱分布分析

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摘要

The formation of protein complexes with other proteins and nucleic acids is critical to biological function. Although it is relatively easy to identify the components present in these complexes, it is often difficult to determine their exact stoichiometry and obtain information about the homogeneity of the sample from bulk measurements. We demonstrate the use of single molecule photon-pair correlation spectroscopy to distinguish between discrete numbers of molecules in biological complexes. Fluorescence photon antibunching is observed from a single molecule by employing time-correlated single photon counting in combination with a Hanbury-Brown and Twiss coincidence setup. In addition, pulsed laser excitation and time-tagged time-resolved data collection allow for the measurement of photon arrival times with nanosecond time resolution. The interphoton time distribution between consecutively arriving photons can be calculated and provides a measure of the second-order temporal correlation function. Analysis of this function yields an absolute measure of the number of molecules, N, present in a given complex. It is this ability to measure N that renders this technique powerful for determining stoichiometries in complex biological systems at the single molecule level. We investigate the counting efficiency and statistics of photon antibunching of specifically designed biological samples labeled with multiple copies of the same fluorescent dye and derive conclusions about its use in the analytical evaluation of complex biological samples.
机译:与其他蛋白质和核酸的蛋白质复合物的形成对于生物学功能至关重要。尽管鉴定这些复合物中存在的组分相对容易,但通常难以确定其精确的化学计量并从大量测量中获得有关样品均质性的信息。我们证明了使用单分子光子对相关光谱技术来区分生物复合物中分子的离散数量。通过将时间相关的单光子计数与Hanbury-Brown和Twiss巧合设置结合使用,可以从单个分子观察到荧光光子反聚束。此外,脉冲激光激发和带时间标记的时间分辨数据收集功能可用于以纳秒级的时间分辨率测量光子到达时间。可以计算连续到达的光子之间的光子间时间分布,并提供二阶时间相关函数的度量。对该函数的分析产生了给定复合物中存在的分子N数量的绝对度量。正是这种测量N的能力使这项技术在确定单分子水平的复杂生物系统中的化学计量方面具有强大的实力。我们调查计数的效率和光子反聚光统计的专门设计的生物样品中标记有相同荧光染料的多个副本,并得出有关其在复杂生物样品的分析评估中使用的结论。

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