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Covalently Tethered Rhodamine Voltage Reporters for High Speed Functional Imaging in Brain Tissue

机译:共价连接的若丹明电压报告仪,用于脑组织的高速功能成像

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摘要

Voltage-sensitive fluorophores enable the direct visualization of membrane potential changes in living systems. To pair the speed and sensitivity of chemically synthesized fluorescent indicators with cell-type specific genetic methods, we here develop Rhodamine-based Voltage Reporters (RhoVR) that can be covalently tethered to genetically encoded, self-labeling enzymes. These chemical-genetic hybrids feature a photoinduced electron transfer triggered RhoVR voltage-sensitive indicator coupled to a chloroalkane HaloTag ligand through a long, water-soluble polyethylene glycol linker (RhoVR-Halo). When applied to cells, RhoVR-Halo dyes selectively and covalently bind to surface-expressed HaloTag enzyme on genetically modified cells. RhoVR-Halo dyes maintain high voltage sensitivities—up to 34% △F/F per 100 mV—and fast response times typical of untargeted RhoVRs, while gaining the selectivity of genetically encodable voltage indicators. We show that RhoVR-Halos can record action potentials in single trials from cultured rat hippocampal neurons and can be used in concert with green-fluorescent Ca~(2+) indicators like GCaMP to provide simultaneous voltage and Ca~(2+) imaging. In a brain slice, RhoVR-Halos provide exquisite labeling of defined cells and can be imaged using epifluorescence, confocal, or two-photon microscopy. Using high-speed epifluorescence microscopy, RhoVR-Halos provide a read-out of action potentials from labeled cortical neurons in a rat brain slice, without the need for trial averaging. These results demonstrate the potential of hybrid chemical—genetic voltage indicators to combine the optical performance of small-molecule chromophores with the inherent selectivity of genetically encodable systems, permitting imaging modalities inaccessible to either technique individually.
机译:电压敏感的荧光团可直接显示生物系统中膜电位的变化。为了将化学合成的荧光指示剂的速度和灵敏度与细胞类型的特定遗传方法配对,我们在这里开发了基于罗丹明的电压报告基因(RhoVR),可以将其共价束缚于遗传编码的自标记酶。这些化学-遗传杂合体具有光诱导的电子转移触发的RhoVR电压敏感指示剂,该指示剂通过长的水溶性聚乙二醇接头(RhoVR-Halo)与氯烷烃HaloTag配体偶联。当应用于细胞时,RhoVR-Halo染料可以选择性地和共价结合到基因修饰细胞表面表达的HaloTag酶上。 RhoVR-Halo染料可保持较高的电压敏感性(每100 mV高达34%△F / F),并具有非靶向RhoVR特有的快速响应时间,同时获得了可遗传编码的电压指示剂的选择性。我们显示,RhoVR-Halos可以在培养的大鼠海马神经元的单个试验中记录动作电位,并且可以与绿色荧光Ca〜(2+)指示剂(如GCaMP)配合使用,以提供同时的电压和Ca〜(2+)成像。在脑切片中,RhoVR-Halos可以为定义的细胞提供精确的标记,并且可以使用落射荧光,共聚焦或双光子显微镜成像。使用高速落射荧光显微镜,RhoVR-Halos可以从大鼠脑切片中标记的皮质神经元中读出动作电位,而无需进行试验平均。这些结果证明了混合化学-遗传电压指示器将小分子发色团的光学性能与遗传可编码系统的固有选择性相结合的潜力,从而使每种技术都无法获得成像方式。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2020年第1期|614-622|共9页
  • 作者单位

    Departments of Chemistry;

    Molecular & Cell Biology Helen Wills Neuroscience Institute University of California Berkeley California 94720 United States;

    Departments of Chemistry Molecular & Cell Biology Helen Wills Neuroscience Institute University of California Berkeley California 94720 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
  • 中图分类
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  • 入库时间 2022-08-18 05:17:06

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