Department of Medicinal Chemistry, Virginia Commonwealth University, Richmond, VA 23298.
Institute for Structural Biology, Drug Discovery and Development, Virginia Commonwealth University, Richmond, VA 23219.
Proc Natl Acad Sci U S A. 2018 Dec 18;115(51):12985-12990. doi: 10.1073/pnas.1812526115. Epub 2018 Dec 3.
Membrane proteins function in native cell membranes, but extraction into isolated particles is needed for many biochemical and structural analyses. Commonly used detergent-extraction methods destroy naturally associated lipid bilayers. Here, we devised a detergent-free method for preparing cell-membrane nanoparticles to study the multidrug exporter AcrB, by cryo-EM at 3.2-Å resolution. We discovered a remarkably well-organized lipid-bilayer structure associated with transmembrane domains of the AcrB trimer. This bilayer patch comprises 24 lipid molecules; inner leaflet chains are packed in a hexagonal array, whereas the outer leaflet has highly irregular but ordered packing. Protein side chains interact with both leaflets and participate in the hexagonal pattern. We suggest that the lipid bilayer supports and harmonizes peristaltic motions through AcrB trimers. In AcrB D407A, a putative proton-relay mutant, lipid bilayer buttresses protein interactions lost in crystal structures after detergent-solubilization. Our detergent-free system preserves lipid-protein interactions for visualization and should be broadly applicable.
膜蛋白在天然细胞膜中发挥作用,但为了进行许多生化和结构分析,需要将其提取到分离的颗粒中。常用的去污剂提取方法会破坏天然相关的脂质双层。在这里,我们设计了一种无去污剂的方法来制备细胞膜纳米颗粒,以便通过 cryo-EM 在 3.2-Å 分辨率下研究多药外排泵 AcrB。我们发现了一种与 AcrB 三聚体跨膜结构域相关的组织非常好的脂质双层结构。这个双层斑块包含 24 个脂质分子;内层链以六边形排列排列,而外层则具有高度不规则但有序的排列。蛋白质侧链与两个叶层相互作用,并参与六边形模式。我们认为脂质双层通过 AcrB 三聚体支持和协调蠕动运动。在 AcrB D407A 中,一种假定的质子传递突变体,脂质双层支撑了在去污剂溶解后在晶体结构中丢失的蛋白质相互作用。我们的无去污剂系统可保留脂质-蛋白质相互作用,以便可视化,并且应该具有广泛的适用性。