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基于近红外荧光蛋白的基因编码电压指示剂的筛选和细胞特性分析。

Screening and Cellular Characterization of Genetically Encoded Voltage Indicators Based on Near-Infrared Fluorescent Proteins.

机构信息

Institute for Systems Genomics, Stem Cell Institute, Department of Neuroscience, UConn Health, Farmington, Connecticut 06030, United States.

Department of Anatomy and Structural Biology and Gruss-Lipper Biophotonics Center, Albert Einstein College of Medicine, Bronx, New York 10461, United States.

出版信息

ACS Chem Neurosci. 2020 Nov 4;11(21):3523-3531. doi: 10.1021/acschemneuro.0c00046. Epub 2020 Oct 16.

Abstract

We developed genetically encoded voltage indicators using a transmembrane voltage-sensing domain and bright near-infrared fluorescent proteins derived from bacterial phytochromes. These new voltage indicators are excited by 640 nm light and emission is measured at 670 nm, allowing imaging in the near-infrared tissue transparency window. The spectral properties of our new indicators permit seamless voltage imaging with simultaneous blue-green light optogenetic actuator activation as well as simultaneous voltage-calcium imaging when paired with green calcium indicators. Iterative optimizations led to a fluorescent probe, here termed nirButterfly, which reliably reports neuronal activities including subthreshold membrane potential depolarization and hyperpolarization as well as spontaneous spiking or electrically- and optogenetically evoked action potentials. This enables largely improved all-optical causal interrogations of physiology.

摘要

我们使用跨膜电压感应结构域和源自细菌光致变色体的明亮近红外荧光蛋白,开发了基因编码的电压指示剂。这些新的电压指示剂由 640nm 光激发,发射波长为 670nm,可在近红外组织透明窗口进行成像。我们新型指示剂的光谱特性可与蓝绿光光遗传学激活器进行无缝电压成像,与绿色钙指示剂配对时也可进行同时电压-钙成像。迭代优化产生了一种荧光探针,在此称为 nirButterfly,它可靠地报告神经元活动,包括亚阈值膜电位去极化和超极化,以及自发尖峰或电和光遗传诱发的动作电位。这使得对生理学进行大规模改进的全光学因果询问成为可能。

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