Ritzmann Noah, Manioglu Selen, Hiller Sebastian, Müller Daniel J
Department of Biosystems Science and Engineering, Eidgenössische Technische Hochschule (ETH) Zürich, Mattenstrasse 26, 4058 Basel, Switzerland.
Biozentrum, University of Basel, Spitalstrasse 41, 4056 Basel, Switzerland.
Structure. 2022 Mar 3;30(3):350-359.e3. doi: 10.1016/j.str.2021.11.004. Epub 2021 Dec 6.
The β-barrel assembly machinery (BAM) complex is an essential component of Escherichia coli that inserts and folds outer membrane proteins (OMPs). The natural antibiotic compound darobactin inhibits BamA, the central unit of BAM. Here, we employ dynamic single-molecule force spectroscopy (SMFS) to better understand the structure-function relationship of BamA and its inhibition by darobactin. The five N-terminal polypeptide transport (POTRA) domains show low mechanical, kinetic, and energetic stabilities. In contrast, the structural region linking the POTRA domains to the transmembrane β-barrel exposes the highest mechanical stiffness and lowest kinetic stability within BamA, thus indicating a mechano-functional role. Within the β-barrel, the four N-terminal β-hairpins H1-H4 expose the highest mechanical stabilities and stiffnesses, while the four C-terminal β-hairpins H5-H6 show lower stabilities and higher flexibilities. This asymmetry within the β-barrel suggests that substrates funneling into the lateral gate formed by β-hairpins H1 and H8 can force the flexible C-terminal β-hairpins to change conformations.
β-桶组装机制(BAM)复合物是大肠杆菌的一个重要组成部分,负责插入和折叠外膜蛋白(OMPs)。天然抗生素化合物达罗巴汀抑制BAM的核心单元BamA。在此,我们采用动态单分子力谱(SMFS)来更好地理解BamA的结构-功能关系及其被达罗巴汀抑制的机制。五个N端多肽转运(POTRA)结构域显示出较低的机械、动力学和能量稳定性。相比之下,连接POTRA结构域与跨膜β-桶的结构区域在BamA中表现出最高的机械刚度和最低的动力学稳定性,因此表明其具有机械功能作用。在β-桶内,四个N端β-发夹H1-H4表现出最高的机械稳定性和刚度,而四个C端β-发夹H5-H8则表现出较低的稳定性和较高的柔韧性。β-桶内的这种不对称性表明,底物进入由β-发夹H1和H8形成的侧向门时,可迫使柔性的C端β-发夹改变构象。