Allosteric modulation of α1β3γ2 GABAA receptors by farnesol through the neurosteroid sites

变构调节 γ-氨基丁酸受体 法尼醇 化学 离子通道 生物物理学 跨膜结构域 受体 神经活性类固醇 生物化学 生物
作者
B. Jeevan,Christopher T. Szlenk,Ayobami Diyaolu,Peter Obi,Haiyang Wei,Xutong Shi,K. Michael Gibson,Senthil Natesan,Jean‐Baptiste Roullet
出处
期刊:Biophysical Journal [Elsevier BV]
卷期号:122 (5): 849-867 被引量:1
标识
DOI:10.1016/j.bpj.2023.01.032
摘要

In mammalian cells, all-trans farnesol, a 15-carbon isoprenol, is a product of the mevalonate pathway. It is the natural substrate of alcohol dehydrogenase and a substrate for CYP2E1, two enzymes implicated in ethanol metabolism. Studies have shown that farnesol is present in the human brain and inhibits voltage-gated Ca2+ channels at much lower concentrations than ethanol. Here we show that farnesol modulates the activity of γ-aminobutyric acid type A receptors (GABAARs), some of which also mediate the sedative activity of ethanol. Electrophysiology experiments performed in HEK cells expressing human α1β3γ2 or α6β3γ2 GABAARs revealed that farnesol increased chloride currents through positive allosteric modulation of these receptors and showed dependence on both the alcoholic functional group of farnesol and the length of the alkyl chain for activity. In silico studies using long-timescale unbiased all-atom molecular dynamics (MD) simulations of the human α1β3γ2 GABAA receptors revealed that farnesol modulates the channel by directly binding to the transmembrane neurosteroid-binding site, after partitioning into the surrounding membrane and reaching the receptor by lateral diffusion. Channel activation by farnesol was further characterized by several structural and dynamic variables, such as global twisting of the receptor's extracellular domain, tilting of the transmembrane M2 helices, radius, cross-sectional area, hydration status, and electrostatic potential of the channel pore. Our results expand the pharmacological activities of farnesol to yet another class of ion channels implicated in neurotransmission, thus providing a novel path for understanding and treatment of diseases involving GABAA receptor dysfunction.
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