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细胞内钙离子结合荧光研究中的原位钙离子滴定

In situ Ca2+ titration in the fluorometric study of intracellular Ca2+ binding.

作者信息

McMahon Shane M, Jackson Meyer B

机构信息

Molecular Biophysics Ph.D. Program, University of Wisconsin, 1111 Highland Ave, Madison WI 53705, United States.

Molecular Biophysics Ph.D. Program, University of Wisconsin, 1111 Highland Ave, Madison WI 53705, United States; Department of Neuroscience, University of Wisconsin, 1111 Highland Ave, Madison WI 53705, United States.

出版信息

Cell Calcium. 2014 Dec;56(6):504-12. doi: 10.1016/j.ceca.2014.10.010. Epub 2014 Oct 30.

Abstract

Imaging with Ca(2+)-sensitive fluorescent dye has provided a wealth of insight into the dynamics of cellular Ca(2+) signaling. The spatiotemporal evolution of intracellular free Ca(2+) observed in imaging experiments is shaped by binding and unbinding to cytoplasmic Ca(2+) buffers, as well as the fluorescent indicator used for imaging. These factors must be taken into account in the interpretation of Ca(2+) imaging data, and can be exploited to investigate endogenous Ca(2+) buffer properties. Here we extended the use of Ca(2+) fluorometry in the characterization of Ca(2+) binding molecules within cells, building on a method of titration of intracellular Ca(2+) binding sites in situ with measured amounts of Ca(2+) entering through voltage-gated Ca(2+) channels. We developed a systematic procedure for fitting fluorescence data acquired during a series of voltage steps to models with multiple Ca(2+) binding sites. The method was tested on simulated data, and then applied to 2-photon fluorescence imaging data from rat posterior pituitary nerve terminals patch clamp-loaded with the Ca(2+) indicator fluo-8. Focusing on data sets well described by a single endogenous Ca(2+) buffer and dye, this method yielded estimates of the endogenous buffer concentration and Kd, the dye Kd, and the fraction of Ca(2+) inaccessible cellular volume. The in situ Kd of fluo-8 thus obtained was indistinguishable from that measured in vitro. This method of calibrating Ca(2+)-sensitive fluorescent dyes in situ has significant advantages over previous methods. Our analysis of Ca(2+) titration fluorometric data makes more effective use of the experimental data, and provides a rigorous treatment of multivariate errors and multiple Ca(2+) binding species. This method offers a versatile approach to the study of endogenous Ca(2+) binding molecules in their physiological milieu.

摘要

使用对Ca(2+)敏感的荧光染料进行成像,为深入了解细胞Ca(2+)信号传导的动力学提供了丰富的信息。在成像实验中观察到的细胞内游离Ca(2+)的时空演变,是由与细胞质Ca(2+)缓冲剂的结合和解离以及用于成像的荧光指示剂所塑造的。在解释Ca(2+)成像数据时必须考虑这些因素,并且可以利用这些因素来研究内源性Ca(2+)缓冲剂的特性。在此,我们扩展了Ca(2+)荧光测定法在细胞内Ca(2+)结合分子表征中的应用,该方法基于一种通过电压门控Ca(2+)通道进入细胞的Ca(2+)测量量原位滴定细胞内Ca(2+)结合位点的方法。我们开发了一种系统程序,用于将在一系列电压阶跃期间获取的荧光数据拟合到具有多个Ca(2+)结合位点的模型中。该方法在模拟数据上进行了测试,然后应用于来自大鼠垂体后叶神经末梢的双光子荧光成像数据,这些神经末梢通过膜片钳加载了Ca(2+)指示剂fluo-8。聚焦于由单一内源性Ca(2+)缓冲剂和染料很好描述的数据集,该方法得出了内源性缓冲剂浓度和Kd、染料Kd以及无法接近Ca(2+)的细胞体积分数的估计值。由此获得的fluo-8原位Kd与体外测量值无法区分。这种原位校准Ca(2+)敏感荧光染料的方法比以前的方法具有显著优势。我们对Ca(2+)滴定荧光数据的分析更有效地利用了实验数据,并对多变量误差和多种Ca(2+)结合物种进行了严格处理。该方法为在其生理环境中研究内源性Ca(2+)结合分子提供了一种通用方法。

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