Department of Chemistry, New York University , New York, New York 10003, United States.
J Phys Chem B. 2018 Mar 1;122(8):2314-2322. doi: 10.1021/acs.jpcb.8b00479. Epub 2018 Feb 19.
It is known that the lipid composition within a cellular membrane can influence membrane protein structure and function. In this Article, we investigated how structural changes to a membrane protein upon substrate binding can impact the lipid bilayer. To carry out this study, we reconstituted the secondary active drug transporter EmrE into a variety of phospholipid bilayers varying in headgroup and chain length and carried out differential scanning calorimetry (DSC) and solid-state NMR experiments. The DSC results revealed a difference in cooperativity of the lipid phase transition for drug-free EmrE protonated at glutamic acid 14 (i.e., proton-loaded form) and the tetraphenylphosphonium (TPP) bound form of the protein (i.e., drug-loaded form). To complement these findings, we acquired magic-angle-spinning (MAS) spectra in the presence and absence of TPP by directly probing the phospholipid headgroup using P NMR. These spectra showed a reduction in lipid line widths around the main phase transition for samples where EmrE was bound to TPP compared to the drug free form. Finally, we collected oriented solid-state NMR spectra on isotopically enriched EmrE that displayed chemical shift perturbations to both transmembrane and loop residues upon TPP binding. All of these results prompt us to propose a mechanism whereby substrate-induced changes to the structural dynamics of EmrE alters the surrounding lipids within the bilayer.
众所周知,细胞膜内的脂质成分可以影响膜蛋白的结构和功能。在本文中,我们研究了底物结合后膜蛋白结构的变化如何影响脂质双层。为了进行这项研究,我们将二级主动药物转运蛋白 EmrE 重新构建到各种磷脂双层中,这些双层的头基和链长不同,并进行了差示扫描量热法(DSC)和固态 NMR 实验。DSC 结果表明,在没有药物的情况下,谷氨酸 14 质子化的 EmrE(即质子加载形式)和蛋白结合的四苯膦(TPP)形式(即药物加载形式)的脂质相转变的协同性存在差异。为了补充这些发现,我们通过直接用 P NMR 探测磷脂头基,在存在和不存在 TPP 的情况下获得了魔角旋转(MAS)谱。与无药物形式相比,与 TPP 结合的 EmrE 样品中,主相变周围的脂质线宽减小。最后,我们收集了同位素标记的 EmrE 的定向固态 NMR 谱,结果显示 TPP 结合后,跨膜和环残基的化学位移发生了变化。所有这些结果都促使我们提出一种机制,即底物诱导的 EmrE 结构动力学变化改变了双层中周围的脂质。