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利用内向质子泵化视紫红蛋白对哺乳动物细胞进行光遗传学胞质酸化。

Optogenetic cytosol acidification of mammalian cells using an inward proton-pumping rhodopsin.

机构信息

Research Center for Molecular Mechanisms of Aging and Age-Related Diseases, Moscow Institute of Physics and Technology, Dolgoprudny, Russia.

Research Center for Molecular Mechanisms of Aging and Age-Related Diseases, Moscow Institute of Physics and Technology, Dolgoprudny, Russia; Shemyakin-Ovchinnikov Institute of Bioorganic Chemistry RAS, Moscow, Russia.

出版信息

Int J Biol Macromol. 2023 Jul 1;242(Pt 3):124949. doi: 10.1016/j.ijbiomac.2023.124949. Epub 2023 May 22.

Abstract

Ion gradients are a universal form of energy, information storage and conversion in living cells. Advances in optogenetics inspire the development of novel tools towards control of different cellular processes with light. Rhodopsins are perspective tools for optogenetic manipulation of ion gradients in cells and subcellular compartments, controlling pH of the cytosol and intracellular organelles. The key step of the development of new optogenetic tools is evaluation of their efficiency. Here, we used a high-throughput quantitative method for comparing efficiency of proton-pumping rhodopsins in Escherichia coli cells. This approach allowed us to show that an inward proton pump xenorhodopsin from Nanosalina sp. (NsXeR) is a powerful tool for optogenetic control of pH of mammalian subcellular compartments. Further, we demonstrate that NsXeR can be used for fast optogenetic acidification of the cytosol of mammalian cells. This is the first evidence of optogenetic cytosol acidification by an inward proton pump at physiological pH values. Our approach offers unique opportunities to study cellular metabolism at normal and pathological conditions and might help to understand the role of pH dysregulation in cellular dysfunctions.

摘要

离子梯度是活细胞中能量、信息存储和转换的一种普遍形式。光遗传学的进步激发了开发新工具的灵感,以实现用光控制不同的细胞过程。视蛋白是用光遗传学手段调控细胞和亚细胞区室中离子梯度的有前途的工具,可以控制细胞质和细胞内细胞器的 pH 值。开发新的光遗传学工具的关键步骤是评估它们的效率。在这里,我们使用高通量定量方法比较了在大肠杆菌细胞中质子泵视蛋白的效率。这种方法使我们能够表明,来自 Nanosalina sp. 的内向质子泵 Xenorhodopsin (NsXeR) 是光遗传学控制哺乳动物亚细胞区室 pH 值的有力工具。此外,我们证明 NsXeR 可用于快速光遗传学酸化哺乳动物细胞的细胞质。这是首例在生理 pH 值下通过内向质子泵进行光遗传学细胞质酸化的证据。我们的方法为在正常和病理条件下研究细胞代谢提供了独特的机会,并可能有助于理解 pH 值失调在细胞功能障碍中的作用。

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