Marty Michael T
Department of Chemistry and Biochemistry and Bio5 Institute, University of Arizona, Tucson, AZ 85721.
Int J Mass Spectrom. 2020 Dec;458. doi: 10.1016/j.ijms.2020.116436. Epub 2020 Sep 16.
Cells are surrounded by a protective lipid bilayer membrane, and membrane proteins in the bilayer control the flow of chemicals, information, and energy across this barrier. Many therapeutics target membrane proteins, and some directly target the lipid membrane itself. However, interactions within biological membranes are challenging to study due to their heterogeneity and insolubility. Mass spectrometry (MS) has become a powerful technique for studying membrane proteins, especially how membrane proteins interact with their surrounding lipid environment. Although detergent micelles are the most common membrane mimetic, nanodiscs are emerging as a promising platform for MS. Nanodiscs, nanoscale lipid bilayers encircled by two scaffold proteins, provide a controllable lipid bilayer for solubilizing membrane proteins. This Young Scientist Perspective focuses on native MS of intact nanodiscs and highlights the unique experiments enabled by making membranes fly, including studying membrane protein-lipid interactions and exploring the specificity of fragile transmembrane peptide complexes. It will also explore current challenges and future perspectives for interfacing nanodiscs with MS.
细胞被一层保护性的脂质双分子层膜所包围,双分子层中的膜蛋白控制着化学物质、信息和能量穿过这道屏障的流动。许多治疗药物靶向膜蛋白,有些则直接靶向脂质膜本身。然而,由于生物膜的异质性和不溶性,研究其内部相互作用具有挑战性。质谱(MS)已成为研究膜蛋白的强大技术,尤其是研究膜蛋白如何与其周围脂质环境相互作用。尽管去污剂胶束是最常见的膜模拟物,但纳米圆盘正成为质谱分析中一个很有前景的平台。纳米圆盘是由两种支架蛋白环绕的纳米级脂质双分子层,为溶解膜蛋白提供了可控的脂质双分子层。这篇青年科学家观点文章聚焦于完整纳米圆盘的原生质谱,并突出了通过使膜飞行而实现的独特实验,包括研究膜蛋白-脂质相互作用以及探索脆弱跨膜肽复合物的特异性。文章还将探讨纳米圆盘与质谱联用当前面临的挑战和未来前景。