首页> 外文期刊>The Journal of biological chemistry >Multidimensional screening yields channelrhodopsin variants having improved photocurrent and order-of-magnitude reductions in calcium and proton currents
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Multidimensional screening yields channelrhodopsin variants having improved photocurrent and order-of-magnitude reductions in calcium and proton currents

机译:多维筛选可产生通道视紫红质变体,这些变体具有改善的光电流以及钙和质子电流的数量级降低

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Channelrhodopsins (ChRs) are light-gated ion channels in widespread use in neuroscience for mediating the genetically targetable optical control of neurons (optogenetics). ChRs pass multiple kinds of ions, and although nonspecific ChR-mediated conductance is not an issue in many neuroscience studies, conductance of calcium and protons, which can mediate diverse cellular signals, may be undesirable in some instances. Here, we turned our attention to the creation of ChRs that have high cation photocurrent but pass fewer calcium ions and protons. We developed an automated, time-resolved screening method capable of rapidly phenotyping channelrhodopsin-2 (ChR2) variants. We found substitution mutations throughout ChR2 that could boost current while altering ion selectivity and observed that the mutations that reduced calcium or proton conductance have additive effects. By combining four mutations, we obtained a ChR, ChromeQ, with improved photocurrent that possesses order-of-magnitude reductions in calcium and proton conductance and high fidelity in driving repetitive action potentials in neurons. The approach presented here offers a viable pathway toward customization of complex physiological properties of optogenetic tools. We propose that our screening method not only enables elucidation of new ChR variants that affect microbial opsin performance but may also reveal new principles of optogenetic protein engineering.
机译:通道视紫红质(ChRs)是光门控离子通道,在神经科学中被广泛使用,用于介导对神经元进行遗传靶向的光学控制(光遗传学)。 ChRs通过多种离子,尽管在许多神经科学研究中非特异性ChR介导的电导不是问题,但在某些情况下,钙和质子的电导可能会介导多种细胞信号,因此可能是不可取的。在这里,我们将注意力转向具有高阳离子光电流但传递较少钙离子和质子的ChR的产生。我们开发了一种能够快速表型化channelrhodopsin-2(ChR2)变体的自动化的时间分辨筛选方法。我们发现整个ChR2中的替代突变可在改变离子选择性的同时提高电流,并观察到降低钙或质子电导的突变具有加和作用。通过组合四个突变,我们获得了具有增强的光电流的ChR,ChromeQ,该光电流具有钙和质子电导的数量级降低,并且在驱动神经元中的重复动作电位方面具有很高的保真度。本文介绍的方法为定制光遗传学工具的复杂生理特性提供了可行的途径。我们建议,我们的筛选方法不仅可以阐明影响微生物视蛋白性能的新ChR变体,而且还可以揭示光遗传蛋白工程的新原理。

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