Department of Biology and Department of Chemistry, Massachusetts Institute of Technology, Cambridge, United States.
Thermo Fisher Scientific, San Jose, United States.
Elife. 2024 Feb 15;12:RP91125. doi: 10.7554/eLife.91125.
Bacterial cell surface glycoconjugates are critical for cell survival and for interactions between bacteria and their hosts. Consequently, the pathways responsible for their biosynthesis have untapped potential as therapeutic targets. The localization of many glycoconjugate biosynthesis enzymes to the membrane represents a significant challenge for expressing, purifying, and characterizing these enzymes. Here, we leverage cutting-edge detergent-free methods to stabilize, purify, and structurally characterize WbaP, a phosphoglycosyl transferase (PGT) from the (LT2) O-antigen biosynthesis. From a functional perspective, these studies establish WbaP as a homodimer, reveal the structural elements responsible for dimerization, shed light on the regulatory role of a domain of unknown function embedded within WbaP, and identify conserved structural motifs between PGTs and functionally unrelated UDP-sugar dehydratases. From a technological perspective, the strategy developed here is generalizable and provides a toolkit for studying other classes of small membrane proteins embedded in liponanoparticles beyond PGTs.
细菌细胞表面糖缀合物对于细胞存活以及细菌与其宿主之间的相互作用至关重要。因此,负责其生物合成的途径具有未开发的治疗靶点潜力。许多糖缀合物生物合成酶定位于膜上,这代表着表达、纯化和表征这些酶的重大挑战。在这里,我们利用前沿的无去污剂方法来稳定、纯化和结构表征 WbaP,这是来自 (LT2)O-抗原生物合成的磷酸糖基转移酶 (PGT)。从功能角度来看,这些研究将 WbaP 确立为同源二聚体,揭示了负责二聚化的结构元素,阐明了嵌入 WbaP 中的未知功能域的调节作用,并确定了 PGT 与功能上无关的 UDP-糖脱水酶之间保守的结构基序。从技术角度来看,这里开发的策略具有通用性,并为研究其他类别的小膜蛋白提供了工具包,这些小膜蛋白嵌入脂质体纳米颗粒中,不仅限于 PGT。