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◆ Nature Communications2025-12-06· Substrate (aquarium)

Mechanistic snapshots of lipid-linked sugar transfer

Ryan T. Morgan, Stefano Motta, Eva Gil‐Iturbe, Biddut Bhattacharjee, Mohammad T. Anwar, Giovanni Di Muccio, Alice Romagnoli, Bedangshu Mishra, Khuram U. Ashraf, Injin Bang, Daniele Di Marino, Todd L. Lowary, Matthias Quick, Vasileios I. Petrou, Michael H. B. Stowell, Rie Nygaard, Filippo Mancia

原始摘要(英文原文)· Original abstract
Enzymes undergo dynamic conformational changes during catalysis, yet conventional high-resolution structural methods typically capture only the most stable states. Here, we address this gap using rapid UV photolysis of a chemically caged substrate with cryogenic time-resolved electron microscopy (cryo-TREM). We elucidate the catalytic mechanism of GtrB, a membrane-bound glycosyltransferase that transfers glucose from UDP-glucose to the lipid carrier undecaprenyl phosphate. We visualized how GtrB, which has an active site ~15 Å from the membrane, transitions during the catalytic cycle to move each substrate in proximity for catalysis. From a single dataset, we resolved distinct conformational states: the initial substrate-bound state, a catalytically poised intermediate, and the product-bound state. Through molecular dynamics simulations and biochemical analyses, we identify coordinated movements within the active site that drive catalysis. These findings provide a molecular framework for understanding how glycosyltransferases function and highlight a broadly applicable strategy for capturing dynamic enzymatic states in native-like environments. Here the authors applied cryogenic time-resolved electron microscopy with rapid UV photolysis of a caged substrate to elucidate the catalytic mechanism of lipid-sugar transfer within the bacterial membrane by the glycosyltransferase GtrB.
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