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Optical Electrophysiology: Toward the Goal of Label-Free Voltage Imaging

机译:光学电生理:朝向无标签电压成像的目标

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摘要

Measuring and monitoring the electrical signals transmitted between neurons is key to understanding the communication between neurons that underlies human perception, information processing, and decision-making. While electrode-based electrophysiology has been the gold standard, optical electrophysiology has opened up a new area in the past decade. Voltage-dependent fluorescent reporters enable voltage imaging with high spatial resolution and flexibility to choose recording locations. However, they exhibit photobleaching as well as phototoxicity and may perturb the physiology of the cell. Label-free optical electrophysiology seeks to overcome these hurdles by detecting electrical activities optically, without the incorporation of exogenous fluorophores in cells. For example, electrochromic optical recording detects neuroelectrical signals via a voltage-dependent color change of extracellular materials, and interferometric optical recording monitors membrane deformations that accompany electrical activities. Label-free optical electrophysiology, however, is in an early stage, and often has limited sensitivity and temporal resolution. In this Perspective, we review the recent progress to overcome these hurdles. We hope this Perspective will inspire developments of label-free optical electrophysiology techniques with high recording sensitivity and temporal resolution in the near future.
机译:测量和监测在神经元之间传递的电信号是理解神经元之间的通信的关键,使人为感知,信息处理和决策。虽然基于电极的电生理学是金标准的,但光学电生理在过去十年中开辟了一个新的领域。电压依赖性荧光报告器能够实现具有高空间分辨率的电压成像和选择录制位置的灵活性。然而,它们表现出光漂白以及光毒性,并且可能会扰乱细胞的生理学。无标记的光学电生理旨在通过光学检测电气活动来克服这些障碍,而不掺入细胞中的外源荧光团。例如,电致变色光学记录通过细胞外材料的电压依赖性颜色变化来检测神经电信号,以及干涉光学记录监测电气活动的膜变形。然而,无标记的光学电生理学是在早期阶段,并且通常具有有限的灵敏度和时间分辨率。在这种观点中,我们审查了克服这些障碍的最新进展。我们希望这一观点将激发可在不久的将来具有高记录灵敏度和时间分辨率的无标签光学电生理技术的开发。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2021年第28期|10482-10499|共18页
  • 作者单位

    Department of Chemistry Stanford University Stanford California 94305 United States;

    Department of Chemistry Stanford University Stanford California 94305 United States;

    Department of Physics University of California Berkeley California 94720 United States Molecular Biophysics and Integrated Bioimaging Lawrence Berkeley National Laboratory Berkeley California 94720 United States;

    Department of Chemistry Stanford University Stanford California 94305 United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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