聚苯乙烯荧光珠对局部膜电位的光学探测。

IF 2.4 Q3 BIOPHYSICS
Zehavit Shapira, Nurit Degani-Katzav, Shimon Yudovich, Asaf Grupi, Shimon Weiss
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引用次数: 1

摘要

研究单个细胞和可兴奋细胞(如神经元)的局部电路中的电活动,需要一种易于使用、高通量的方法来测量膜电位。研究神经元的特定子室或特定类型的神经元的电特性,会带来额外的复杂性。一种允许高空间和时间分辨率的光学电压成像技术可能是一个理想的解决方案。然而,大多数有效的电压成像技术是非特异性的。那些更面向站点的需要大量的前期工作和特定的调整,以及其他缺点。在这里,我们探索了一种新的膜电压成像方法,基于Förster荧光聚苯乙烯(FPS)珠和二苯胺之间的共振能量转移。不仅表明荧光强度与膜电位相关,更重要的是,单个粒子的膜电位可以被检测到。除其他优点外,FPS珠可以与表面官能团合成,并且可以通过偶联识别分子靶向特定蛋白质。因此,在二丙胺的存在下,FPS珠代表膜电位的单粒子检测器,可以定位到特定的膜室。这种新的、易于获取的靶向光学电压成像平台可以进一步阐明神经元电活动的机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optical probing of local membrane potential with fluorescent polystyrene beads.

The study of electrical activity in single cells and local circuits of excitable cells, such as neurons, requires an easy-to-use, high-throughput methodology that allows for the measurement of membrane potential. Investigating the electrical properties in specific subcompartments of neurons, or in a specific type of neurons, introduces additional complexity. An optical voltage-imaging technique that allows high spatial and temporal resolution could be an ideal solution. However, most valid voltage-imaging techniques are nonspecific. Those that are more site-directed require a lot of preliminary work and specific adaptations, among other drawbacks. Here, we explore a new method for membrane voltage imaging, based on Förster resonance energy transfer between fluorescent polystyrene (FPS) beads and dipicrylamine. Not only has it been shown that fluorescence intensity correlates with membrane potential, but more importantly, the membrane potential from individual particles can be detected. Among other advantages, FPS beads can be synthesized with surface functional groups and can be targeted to specific proteins by conjugation of recognition molecules. Therefore, in the presence of dipicrylamine, FPS beads represent single-particle detectors of membrane potential that can be localized to specific membrane compartments. This new and easily accessible platform for targeted optical voltage imaging can further elucidate the mechanisms of neuronal electrical activity.

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来源期刊
Biophysical reports
Biophysical reports Biophysics
CiteScore
2.40
自引率
0.00%
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审稿时长
75 days
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