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远红杂交电压指示剂,通过活神经元上视蛋白的生物正交工程实现。

A far-red hybrid voltage indicator enabled by bioorthogonal engineering of rhodopsin on live neurons.

机构信息

College of Chemistry and Molecular Engineering, Synthetic and Functional Biomolecules Center, Beijing National Laboratory for Molecular Sciences, Key Laboratory of Bioorganic Chemistry and Molecular Engineering of the Ministry of Education, Peking University, Beijing, China.

School of Life Sciences, Tsinghua University, Beijing, China.

出版信息

Nat Chem. 2021 May;13(5):472-479. doi: 10.1038/s41557-021-00641-1. Epub 2021 Apr 15.

Abstract

Membrane potential is a key aspect of cellular signalling and is dynamically regulated by an array of ion-selective pumps and channels. Fluorescent voltage indicators enable non-invasive optical recording of the cellular membrane potential with high spatial resolution. Here, we report a palette of bright and sensitive hybrid voltage indicators (HVIs) with fluorescence intensities sensitive to changes in membrane potential via electrochromic Förster resonance energy transfer. Enzyme-mediated site-specific incorporation of a probe, followed by an inverse-electron-demand Diels-Alder cycloaddition, was used to create enhanced voltage-sensing rhodopsins with hybrid dye-protein architectures. The most sensitive indicator, HVI-Cy3, displays high voltage sensitivity (-39% ΔF/F per 100 mV) and millisecond response kinetics, enabling optical recording of action potentials at a sampling rate of 400 Hz over 10 min across a large neuronal population. The far-red indicator HVI-Cy5 could be paired with optogenetic actuators and green/red-emitting fluorescent indicators, allowing an all-optical investigation of neuronal electrophysiology.

摘要

膜电位是细胞信号传递的一个关键方面,其受到一系列离子选择性泵和通道的动态调节。荧光电压指示剂可实现对细胞膜电位的非侵入性光学记录,具有高空间分辨率。在这里,我们报告了一系列明亮且灵敏的杂交电压指示剂(HVIs),其荧光强度可通过电致变色Förster 共振能量转移对膜电位的变化产生响应。通过酶介导的位点特异性探针掺入,然后进行逆电子需求 Diels-Alder 环加成反应,构建了具有杂交染料-蛋白结构的增强型电压敏感视紫红质。最灵敏的指示剂 HVI-Cy3 显示出高的电压灵敏度(每 100 mV 降低 39%ΔF/F)和毫秒级的响应动力学,可在 10 分钟内以 400 Hz 的采样率在大神经元群体中记录动作电位。远红色指示剂 HVI-Cy5 可以与光遗传学致动器和绿色/红色荧光指示剂配对,从而可以对神经元电生理学进行全光学研究。

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