Platisa Jelena, Vasan Ganesh, Yang Amy, Pieribone Vincent A
The John B. Pierce Laboratory, Inc. , New Haven, Connecticut 06519, United States.
ACS Chem Neurosci. 2017 Mar 15;8(3):513-523. doi: 10.1021/acschemneuro.6b00234. Epub 2017 Feb 2.
Genetically encoded calcium indicators (GECIs) produce unprecedentedly large signals that have enabled routine optical recording of single neuron activity in vivo in rodent brain. Genetically encoded voltage indicators (GEVIs) offer a more direct measure of neuronal electrical status, however the signal-to-noise characteristics and signal polarity of the probes developed to date have precluded routine use in vivo. We applied directed evolution to target modulable areas of the fluorescent protein in GEVI ArcLight to create the first GFP-based GEVI (Marina) that exhibits a ΔF/ΔV with a positive slope relationship. We found that only three rounds of site-directed mutagenesis produced a family of "brightening" GEVIs with voltage sensitivities comparable to that seen in the parent probe ArcLight. This shift in signal polarity is an essential first step to producing voltage indicators with signal-to-noise characteristics comparable to GECIs to support widespread use in vivo.
基因编码钙指示剂(GECIs)能产生前所未有的大信号,这使得在啮齿动物大脑中对单个神经元活动进行常规光学记录成为可能。基因编码电压指示剂(GEVIs)能更直接地测量神经元的电状态,然而,迄今为止开发的探针的信噪比特性和信号极性阻碍了其在体内的常规使用。我们应用定向进化来靶向GEVI ArcLight中荧光蛋白的可调节区域,以创建首个基于绿色荧光蛋白(GFP)的GEVI(Marina),它表现出具有正斜率关系的ΔF/ΔV。我们发现,仅三轮定点诱变就产生了一系列“增强型”GEVIs,其电压敏感性与亲本探针ArcLight相当。信号极性的这种转变是生产具有与GECIs相当的信噪比特性以支持在体内广泛应用的电压指示剂的关键第一步。