High Order Autocorrelation in Fluorescence Correlation Spectroscopy

High Order Autocorrelation in Fluorescence Correlation Spectroscopy
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荧光相关光谱中的高阶自相关

DOI:
10.1007/978-3-642-59542-4_21
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发表时间:
2001
期刊:
Springer series in chemical physics
影响因子:
--
通讯作者:
N. Thompson
N. Thompson
中科院分区:
--
文献类型:
--
作者:
Jennifer L. Mitchell;N. Thompson

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荧光相关光谱(FCS)最初是作为一种技术发展起来的,其中由含有荧光分子的小体积产生的荧光的时间波动是自相关的,以获得有关引起荧光波动的过程的信息。FCS最初被引入后[21.1-21.6],主要用于测量平移扩散系数[21.7-21.10]。研究还表明,FCS可以提供其他过程的信息,如旋转扩散[21.11-21.14]、流动[21.15]和生化动力学[21.16,21.17]。几年前对这些最初的应用进行了全面的回顾[21.18- 21.21]。在过去的十年中,FCS作为一种技术在应用和发展方面都日趋成熟。最近的应用包括完整细胞上受体寡聚化的表征[21.22];朊病毒蛋白[21.23]和淀粉样蛋白/3蛋白[21.24];DNA聚合[21.25],构象波动[21.26],以及与转录因子的相互作用[21.27];磷脂胶束[21.28]。一些更具创新性的技术进步包括使用双光子激发[21.29,21.30];双标签实验中的相互关系[21.31- 21.35];共振能量传递与FCS结合[21.26,21.36];毛细管电泳与FCS联用[21.37];以及使用瞬变照明来检查表面的过程[21.38-21.42]。
Fluorescence correlation spectroscopy (FCS) was originally developed as a technique in which the temporal fluctuations in the fluorescence arising from a small volume containing fluorescent molecules are autocorrelated to obtain information about the processes that give rise to the fluorescence fluctuations. After its initial introduction [21.1-21.6], FCS was used primarily to measure translational diffusion coefficients [21.7-21.10]. It was also shown that FCS could provide information about other processes such as rotational diffusion [21.11-21.14], flow [21.15], and biochemical kinetics [21.16,21.17]. These initial applications were comprehensively reviewed a number of years ago [21.18- 21.21]. FCS has become increasingly mature as a technique during the last decade, both in terms of application and development. Recent applications include characterization of receptor oligomerization on intact cells [21.22]; aggregates of prion proteins [21.23] and amyloid /3-proteins [21.24]; DNA polymerization [21.25], conformational fluctuations [21.26], and interaction with transcription factors [21.27]; and phospholipid micelles [21.28]. Some of the more innovative technological advances have included the use of two-photon excitation [21.29,21.30]; cross-correlation in double-label experiments [21.31- 21.35]; the combination of resonance energy transfer with FCS [21.26,21.36]; the combination of capillary electrophoresis with FCS [21.37]; and the use of evanescent illumination for examining processes at surfaces [21.38-21.42].
DOI: 10.1016/s0006-3495(94)80801-x
发表时间: 1994
影响因子: 3.4
作者:
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DOI: 10.1016/0009-3084(89)90053-4
发表时间: 1989-06
影响因子: 3.4
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发表时间: 1996
期刊: Biophysical journal.
影响因子: --
作者:
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通讯作者: Thompson,NL
DOI: 10.1073/pnas.87.14.5479
发表时间: 1990-07-01
影响因子: 11.1
作者:
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DOI: 10.1016/s0006-3495(87)83213-7
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