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11TU

Crystal structure of alpha/beta-hydrolase macrolide esterase EstT from Bacillus cereus (S102A mutant) in complex with linearized tylvalosin

This is a non-PDB format compatible entry.
Summary for 11TU
Entry DOI10.2210/pdb11tu/pdb
Descriptoralpha/beta-hydrolase macrolide esterase EstT, linearized tylvalosin (3 entities in total)
Functional Keywordsalpha/beta-hydrolase, esterase, macrolide resistance, hydrolase
Biological sourceBacillus cereus
Total number of polymer chains1
Total formula weight32569.92
Authors
Kelly, E.T.R.,Blanchet, J.,Berghuis, A.M. (deposition date: 2026-03-12, release date: 2026-04-08, Last modification date: 2026-07-29)
Primary citationKelly, E.T.R.,Myziuk, I.,Hemmings, M.Z.,Mulla, Z.,Blanchet, J.,Ruzzini, A.,Berghuis, A.M.
Hydration and hydrolysis define antibiotic resistance conferred by macrolide esterases.
Proc.Natl.Acad.Sci.USA, 123:e2611077123-e2611077123, 2026
Cited by
PubMed Abstract: Macrolides are an antibiotic class widely used in both human and veterinary medicine, and function by interfering with protein synthesis. Regrettably, numerous strategies for evading the antibiotic properties of macrolides have been found in bacteria, including enzyme-mediated inactivation. These mechanisms are now widely disseminated among pathogenic, animal-associated, and environmental bacteria making them a One Health issue. Macrolide esterases, which hydrolyze the macrolactone's ester bond, confer one such resistance mechanism. Two types of macrolide esterases have thus far been identified, the well-studied erythromycin esterases and the recently discovered Est-type enzymes that belong to the α/β-hydrolase superfamily. We present detailed structure-function studies for four diverse Est type esterases: which only share 44 to 66% sequence identity (EstT, EstT, EstT, and EstX). In addition to resistance profiling and substrate specificity studies, we present structures for all four enzymes, including structures for EstT and EstX in complex with tylosin and tylvalosin macrolides, posthydrolysis. Complementing the data with mutational and kinetic studies allowed for a detailed analysis of the structural basis for macrolide-enzyme interactions. Combined, the data suggest that promiscuous binding and imprecise positioning, mediated by a water-cage, dictate substrate specificity for Est-type macrolide resistance enzymes. These insights may prove beneficial for next-generation antibiotic development.
PubMed: 42455676
DOI: 10.1073/pnas.2611077123
PDB entries with the same primary citation
Experimental method
X-RAY DIFFRACTION (1.7 Å)
Structure validation

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