Department of Biochemistry, University of Cambridge , Tennis Court Road, Cambridge CB 1QW, United Kingdom.
ACS Chem Neurosci. 2018 Feb 21;9(2):284-290. doi: 10.1021/acschemneuro.7b00315. Epub 2017 Nov 9.
GABAρ receptors are a subfamily of the GABA receptor family of pentameric ligand-gated ion channels (pLGICs). Each of the five subunits has four transmembrane α-helices (M1-M4), with M4 most distant from the central pore. Aromatic residues in this M4 helix are important for receptor assembly in pLGICs and also may interact with adjacent lipids and/or residues in neighboring α-helices and the extracellular domain to modify or enable channel gating. This study examines the role of M4 receptor aromatic residues in the GABAρ receptor transmembrane domain using site-directed mutagenesis and subsequent expression in HEK293 cells, probing functional parameters using a fluorescent membrane-potential-sensitive dye. The data indicate that many of the aromatic residues in M4 play a role in receptor function, as substitution with other residues can ablate and/or modify functional parameters. Modeling showed that these residues likely interact with residues in the adjacent M1 and M3 α-helices and/or residues in the Cys-loop in the extracellular domain. We suggest that many of these aromatic interactions contribute to an "aromatic zipper", which allows interactions between M4 and the rest of the receptor that are essential for function. Thus, the data support other studies showing that M4 does not play a passive role in "protecting" the other transmembrane helices from the lipid bilayer but is actively involved in the function of the protein.
GABAρ 受体是五聚体配体门控离子通道 (pLGIC) 家族中 GABA 受体家族的一个亚家族。五个亚基中的每一个都有四个跨膜 α-螺旋 (M1-M4),M4 离中央孔最远。该 M4 螺旋中的芳香族残基对于 pLGIC 中的受体组装很重要,并且还可能与相邻脂质和/或相邻 α-螺旋和细胞外域中的残基相互作用,以修饰或启用通道门控。本研究使用定点诱变和随后在 HEK293 细胞中的表达,研究了 GABAρ 受体跨膜结构域中 M4 受体芳香族残基的作用,使用荧光膜电位敏感染料探测功能参数。数据表明,M4 中的许多芳香族残基在受体功能中起作用,因为用其他残基取代可以消除和/或修饰功能参数。建模表明,这些残基可能与相邻 M1 和 M3 α-螺旋中的残基和/或细胞外域中的 Cys 环中的残基相互作用。我们认为,这些芳香族相互作用中的许多有助于“形成”一个“芳香拉链”,这允许 M4 与受体的其余部分之间进行相互作用,这些相互作用对于功能至关重要。因此,数据支持其他研究表明,M4 并没有在“保护”其他跨膜螺旋免受脂质双层的影响方面发挥被动作用,而是积极参与蛋白质的功能。