Hénault Camille M, Sun Jiayin, Therien J P Daniel, daCosta Corrie J B, Carswell Casey L, Labriola Jonathan M, Juranka Peter F, Baenziger John E
Department of Biochemistry, Microbiology, and Immunology, University of Ottawa, 451 Smyth Rd, Ottawa, ON K1H 8M5, Canada.
Department of Biochemistry, Microbiology, and Immunology, University of Ottawa, 451 Smyth Rd, Ottawa, ON K1H 8M5, Canada.
Neuropharmacology. 2015 Sep;96(Pt B):157-68. doi: 10.1016/j.neuropharm.2014.11.011. Epub 2014 Nov 26.
With the availability of high resolution structural data, increasing attention has focused on the mechanisms by which drugs and endogenous compounds allosterically modulate nicotinic acetylcholine receptor (nAChR) function. Lipids are potent modulators of the nAChR from Torpedo. Membrane lipids influence nAChR function by both conformational selection and kinetic mechanisms, stabilizing varying proportions of pre-existing resting, open, desensitized, and uncoupled conformations, as well as influencing the transitions between these conformational states. Structural and functional data highlight a role for the lipid-exposed M4 transmembrane α-helix of each subunit in lipid sensing, and suggest that lipids influence gating by altering the binding of M4 to the adjacent transmembrane α-helices, M1 and M3. M4 has also been implicated in both the folding and trafficking of nAChRs to the cell surface, as well as in the potentiation of nAChR gating by neurosteroids. Here, we discuss the roles of M4 in the folding, trafficking, and allosteric modulation of nAChRs. We also consider the hypothesis that variable chemistry at the M4-M1/M3 transmembrane α-helical interface in different nAChR subunits governs the capacity for potentiation by activating lipids. This article is part of the Special Issue entitled 'The Nicotinic Acetylcholine Receptor: From Molecular Biology to Cognition'.
随着高分辨率结构数据的可得性,越来越多的关注集中在药物和内源性化合物对烟碱型乙酰胆碱受体(nAChR)功能进行变构调节的机制上。脂质是来自电鳐的nAChR的强效调节剂。膜脂通过构象选择和动力学机制影响nAChR功能,稳定不同比例的预先存在的静息、开放、脱敏和非偶联构象,以及影响这些构象状态之间的转变。结构和功能数据突出了每个亚基暴露于脂质的M4跨膜α螺旋在脂质传感中的作用,并表明脂质通过改变M4与相邻跨膜α螺旋M1和M3的结合来影响门控。M4还与nAChRs折叠和转运到细胞表面有关,以及与神经甾体对nAChR门控的增强有关。在这里,我们讨论M4在nAChRs折叠、转运和变构调节中的作用。我们还考虑了这样一种假说,即不同nAChR亚基中M4-M1/M3跨膜α螺旋界面处的可变化学性质决定了激活脂质增强作用的能力。本文是名为“烟碱型乙酰胆碱受体:从分子生物学到认知”特刊的一部分。