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利用光激活腺苷酸环化酶对超极化激活的环核苷酸门控通道的实时纳米级动力学进行光遗传学调控。

Optogenetic modulation of real-time nanoscale dynamics of HCN channels using photoactivated adenylyl cyclases.

作者信息

Tanwar Meenakshi, Kateriya Suneel, Nair Deepak, Jose Mini

机构信息

Centre for Neuroscience, Indian Institute of Science Bangalore-560012 India

Laboratory of Optobiology, School of Biotechnology, Jawaharlal Nehru University New Delhi-110067 India.

出版信息

RSC Chem Biol. 2021 Mar 8;2(3):863-875. doi: 10.1039/d0cb00124d. eCollection 2021 Jun 1.

Abstract

Adenosine 3',5'-cyclic monophosphate (cAMP) is a key second messenger that activates several signal transduction pathways in eukaryotic cells. Alteration of basal levels of cAMP is known to activate protein kinases, regulate phosphodiesterases and modulate the activity of ion channels such as Hyper polarization-activated cyclic nucleotide gated channels (HCN). Recent advances in optogenetics have resulted in the availability of novel genetically encoded molecules with the capability to alter cytoplasmic profiles of cAMP with unprecedented spatial and temporal precision. Using single molecule based super-resolution microscopy and different optogenetic modulators of cellular cAMP in both live and fixed cells, we illustrate a novel paradigm to report alteration in nanoscale confinement of ectopically expressed HCN channels. We characterized the efficacy of cAMP generation using ensemble photoactivation of different optogenetic modulators. Then we demonstrate that local modulation of cAMP alters the exchange of membrane bound HCN channels with its nanoenvironment. Additionally, using high density single particle tracking in combination with both acute and chronic optogenetic elevation of cAMP in the cytoplasm, we show that HCN channels are confined to sub 100 nm sized functional domains on the plasma membrane. The nanoscale properties of these domains along with the exchange kinetics of HCN channels in and out of these molecular zones are altered upon temporal changes in the cytoplasmic cAMP. Using HCN2 point mutants and a truncated construct of HCN2 with altered sensitivity to cAMP, we confirmed these alterations in lateral organization of HCN2 to be specific to cAMP binding. Thus, combining these advanced non-invasive paradigms, we report a cAMP dependent ensemble and single particle behavior of HCN channels mediated by its cyclic nucleotide binding domain, opening innovative ways to dissect biochemical pathways at the nanoscale and real-time in living cells.

摘要

3',5'-环磷酸腺苷(cAMP)是一种关键的第二信使,可激活真核细胞中的多种信号转导途径。已知cAMP基础水平的改变会激活蛋白激酶、调节磷酸二酯酶并调节离子通道的活性,如超极化激活的环核苷酸门控通道(HCN)。光遗传学的最新进展使得能够获得新型的基因编码分子,这些分子能够以前所未有的空间和时间精度改变cAMP的细胞质分布。利用基于单分子的超分辨率显微镜以及活细胞和固定细胞中细胞cAMP的不同光遗传学调节剂,我们阐述了一种新的模式,用于报告异位表达的HCN通道在纳米尺度限制下的变化。我们通过不同光遗传学调节剂的整体光激活来表征cAMP生成的效率。然后我们证明,cAMP的局部调节会改变膜结合的HCN通道与其纳米环境之间的交换。此外,结合高密度单粒子追踪以及细胞质中cAMP的急性和慢性光遗传学升高,我们表明HCN通道被限制在质膜上小于100nm大小的功能域中。这些功能域的纳米尺度特性以及HCN通道进出这些分子区域的交换动力学,会随着细胞质中cAMP的时间变化而改变。使用HCN2点突变体和对cAMP敏感性改变的HCN2截短构建体,我们证实HCN2侧向组织的这些改变是cAMP结合特有的。因此,结合这些先进的非侵入性模式,我们报告了由其环核苷酸结合域介导的HCN通道的cAMP依赖性整体和单粒子行为,为在纳米尺度实时剖析活细胞中的生化途径开辟了创新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0224/8341789/40669f676dc7/d0cb00124d-f1.jpg

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