Freie Universität Berlin , Department of Physics, Theoretical Molecular Biophysics Group , Arnimallee 14 , D-14195 Berlin , Germany.
University of Alberta , Department of Biochemistry, Membrane Protein Disease Research Group , Edmonton , Alberta T6G 2H7 , Canada.
Chem Rev. 2019 May 8;119(9):6162-6183. doi: 10.1021/acs.chemrev.8b00596. Epub 2019 Apr 25.
Membranes surrounding the biological cell and its internal compartments host proteins that catalyze chemical reactions essential for the functioning of the cell. Rather than being a passive structural matrix that holds membrane-embedded proteins in place, the membrane can largely shape the conformational energy landscape of membrane proteins and impact the energetics of their chemical reaction. Here, we highlight the challenges in understanding how lipids impact the conformational energy landscape of macromolecular membrane complexes whose functioning involves chemical reactions including proton transfer. We review here advances in our understanding of how chemical reactions occur at membrane interfaces gleaned with both theoretical and experimental advances using simple protein systems as guides. Our perspective is that of bridging experiments with theory to understand general physicochemical principles of membrane reactions, with a long term goal of furthering our understanding of the role of the lipids on the functioning of complex macromolecular assemblies at the membrane interface.
细胞膜及其内部隔室包围着生物细胞,其中的蛋白质能催化化学反应,对细胞的正常运行至关重要。细胞膜并不是一个起被动支撑作用的结构基质,它可以在很大程度上塑造膜蛋白的构象能量景观,并影响其化学反应的能量学。在这里,我们强调了理解脂质如何影响涉及质子转移等化学反应的大分子膜复合物的构象能量景观所面临的挑战。我们在此回顾了利用简单蛋白质体系作为指导,通过理论和实验进展,在理解膜界面化学反应方面取得的进展。我们的观点是,将实验与理论相结合,以了解膜反应的一般物理化学原理,最终目标是进一步了解脂质在膜界面上复杂大分子组装体功能中的作用。