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Molecular dynamics in living cells observed by fluorescence correlation spectroscopy with one- and two-photon excitation.

机译:荧光相关光谱在单光子和双光子激发下观察到的活细胞分子动力学。

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摘要

Multiphoton excitation (MPE) of fluorescent probes has become an attractive alternative in biological applications of laser scanning microscopy because many problems encountered in spectroscopic measurements of living tissue such as light scattering, autofluorescence, and photodamage can be reduced. The present study investigates the characteristics of two-photon excitation (2PE) in comparison with confocal one-photon excitation (1PE) for intracellular applications of fluorescence correlation spectroscopy (FCS). FCS is an attractive method of measuring molecular concentrations, mobility parameters, chemical kinetics, and fluorescence photophysics. Several FCS applications in mammalian and plant cells are outlined, to illustrate the capabilities of both 1PE and 2PE. Photophysical properties of fluorophores required for quantitative FCS in tissues are analyzed. Measurements in live cells and on cell membranes are feasible with reasonable signal-to-noise ratios, even with fluorophore concentrations as low as the single-molecule level in the sampling volume. Molecular mobilities can be measured over a wide range of characteristic time constants from approximately 10(-3) to 10(3) ms. While both excitation alternatives work well for intracellular FCS in thin preparations, 2PE can substantially improve signal quality in turbid preparations like plant cells and deep cell layers in tissue. At comparable signal levels, 2PE minimizes photobleaching in spatially restrictive cellular compartments, thereby preserving long-term signal acquisition.
机译:荧光探针的多光子激发(MPE)已成为激光扫描显微镜生物学应用中的一种有吸引力的替代方法,因为可以减少生物组织的光谱测量中遇到的许多问题,例如光散射,自发荧光和光损伤。本研究调查了用于细胞内荧光相关光谱法(FCS)的共聚焦单光子激发(1PE)与双光子激发(2PE)的特性。 FCS是测量分子浓度,迁移率参数,化学动力学和荧光光物理的一种有吸引力的方法。概述了FCS在哺乳动物和植物细胞中的几种应用,以说明1PE和2PE的功能。分析了组织中定量FCS所需的荧光团的光物理性质。即使在荧光体浓度低至采样体积中的单分子水平的情况下,在活细胞和细胞膜上进行测量也可以以合理的信噪比进行。分子迁移率可以在大约10(-3)到10(3)ms的宽泛的特征时间常数范围内进行测量。尽管两种激发方法都可以在薄制剂中对细胞内FCS很好地起作用,但是2PE可以显着改善混浊制剂(如植物细胞和组织中深层细胞)的信号质量。在可比较的信号水平下,2PE可使空间受限的细胞隔室中的光漂白最小化,从而保留了长期的信号采集。

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