Department of Chemistry; University of Puerto Rico, Rio Piedras Campus, San Juan, Puerto Rico.
Channels (Austin). 2012 Mar-Apr;6(2):111-23. doi: 10.4161/chan.19540. Epub 2012 Mar 1.
The lipid-protein interface is an important domain of the nicotinic acetylcholine receptor (nAChR) that has recently garnered increased relevance. Several studies have made significant advances toward determining the structure and dynamics of the lipid-exposed domains of the nAChR. However, there is still a need to gain insight into the mechanism by which lipid-protein interactions regulate the function and conformational transitions of the nAChR. In this study, we extended the tryptophan scanning mutagenesis (TrpScanM) approach to dissect secondary structure and monitor the conformational changes experienced by the δM4 transmembrane domain (TMD) of the Torpedo californica nAChR, and to identify which positions on this domain are potentially linked to the regulation of ion channel kinetics. The difference in oscillation patterns between the closed- and open-channel states suggests a substantial conformational change along this domain as a consequence of channel activation. Furthermore, TrpScanM revealed distortions along the helical structure of this TMD that are not present on current models of the nAChR. Our results show that a Thr-Pro motif at positions 462-463 markedly bends the helical structure of the TMD, consistent with the recent crystallographic structure of the GluCl Cys-loop receptor which reveals a highly bent TMD4 in each subunit. This Thr-Pro motif acts as a molecular hinge that delineates two gating blocks in the δM4 TMD. These results suggest a model in which a hinge-bending motion that tilts the helical structure is combined with a spring-like motion during transition between the closed- and open-channel states of the δM4 TMD.
脂质-蛋白界面是烟碱型乙酰胆碱受体(nAChR)的一个重要结构域,最近受到了越来越多的关注。几项研究在确定 nAChR 中脂质暴露结构域的结构和动力学方面取得了重大进展。然而,仍需要深入了解脂质-蛋白相互作用调节 nAChR 功能和构象转变的机制。在这项研究中,我们扩展了色氨酸扫描突变(TrpScanM)方法,以剖析二级结构并监测加利福尼亚虎纹蟾蜍 nAChR 的 δM4 跨膜结构域(TMD)所经历的构象变化,并确定该结构域上的哪些位置可能与离子通道动力学的调节有关。在关闭和开放通道状态之间的振荡模式差异表明,通道激活会导致该结构域发生实质性构象变化。此外,TrpScanM 揭示了该 TMD 螺旋结构中存在的扭曲,而当前的 nAChR 模型中没有这些扭曲。我们的研究结果表明,位于 462-463 位的 Thr-Pro 模体明显弯曲了 TMD 的螺旋结构,这与最近的 GluCl Cys-loop 受体晶体结构一致,该结构揭示了每个亚基中高度弯曲的 TMD4。这个 Thr-Pro 模体充当分子铰链,将 δM4 TMD 划分成两个门控块。这些结果表明,一种铰链弯曲运动使螺旋结构倾斜,与 δM4 TMD 从关闭状态到开放状态的转变期间的弹簧样运动相结合的模型。