Blue-shifted ancyromonad channelrhodopsins for multiplex optogenetics.

IF 6.4 1区 生物学 Q1 BIOLOGY
eLife Pub Date : 2025-09-19 DOI:10.7554/eLife.106508
Elena G Govorunova, Oleg A Sineshchekov, Hai Li, Yueyang Gou, Hongmei Chen, Shuyuan Yang, Yumei Wang, Stephen Mitchell, Alyssa Palmateer, Leonid S Brown, François St-Pierre, Mingshan Xue, John L Spudich
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Abstract

Light-gated ion channels from protists (channelrhodopsins or ChRs) are optogenetic tools widely used for controlling neurons and cardiomyocytes. Multiplex optogenetic applications require spectrally separated molecules, which are difficult to engineer without disrupting channel function. Scanning numerous sequence databases, we identified three naturally blue-shifted ChRs from ancyromonads. They form a separate branch on the phylogenetic tree and contain residue motifs characteristic of anion ChRs (ACRs). However, only two conduct chloride, whereas the closely related Nutomonas longa homolog generates inward cation currents in mammalian cells under physiological conditions, significantly exceeding those by previously known tools with similar spectral maxima (peak absorption at ~440 nm). Measurements of transient absorption changes and pH titration of purified proteins combined with mutant analysis revealed the roles of the residues in the photoactive site. Ancyromonad ChRs could be activated by near-infrared two-photon illumination, a technique that enables the deeper-tissue optogenetic activation of specific neurons in three dimensions. Both ancyromonad ACRs allowed optogenetic silencing of mouse cortical neurons in brain slices. Ancyromonas sigmoides ACR (AnsACR) expression in cholinergic neurons enabled photoinhibition of pharyngeal muscle contraction in live worms. Overall, our results deepen the mechanistic understanding of light-gated channel function and expand the optogenetic toolkit with potent, blue-shifted ChRs.

多重光遗传学的蓝移单胞菌通道视紫红质。
原生生物的光门控离子通道(通道视紫红质或ChRs)是广泛用于控制神经元和心肌细胞的光遗传学工具。多路光遗传应用需要光谱分离的分子,这很难在不破坏通道功能的情况下进行设计。通过对大量序列数据库的扫描,我们确定了三个自然蓝移的ChRs。它们在系统发育树上形成一个单独的分支,并包含阴离子ChRs (ACRs)特征的残基。然而,只有两种能传导氯离子,而密切相关的长肉单胞菌同系物在哺乳动物细胞中在生理条件下产生向内的阳离子电流,显著超过了先前已知的具有相似光谱最大值(吸收峰在~440 nm)的工具。瞬时吸收变化的测量和纯化蛋白的pH滴定结合突变分析揭示了残基在光活性位点的作用。Ancyromonad ChRs可以通过近红外双光子照明激活,这种技术可以在三维空间中实现特定神经元的深层组织光遗传激活。这两种单胞菌ACRs都可以在脑切片中对小鼠皮质神经元进行光遗传沉默。乙酰单胞菌ACR (AnsACR)在胆碱能神经元中的表达使活虫咽部肌肉收缩具有光抑制作用。总的来说,我们的研究结果加深了对光门控通道功能的机制理解,并通过有效的蓝移ChRs扩展了光遗传学工具包。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
eLife
eLife BIOLOGY-
CiteScore
12.90
自引率
3.90%
发文量
3122
审稿时长
17 weeks
期刊介绍: eLife is a distinguished, not-for-profit, peer-reviewed open access scientific journal that specializes in the fields of biomedical and life sciences. eLife is known for its selective publication process, which includes a variety of article types such as: Research Articles: Detailed reports of original research findings. Short Reports: Concise presentations of significant findings that do not warrant a full-length research article. Tools and Resources: Descriptions of new tools, technologies, or resources that facilitate scientific research. Research Advances: Brief reports on significant scientific advancements that have immediate implications for the field. Scientific Correspondence: Short communications that comment on or provide additional information related to published articles. Review Articles: Comprehensive overviews of a specific topic or field within the life sciences.
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