Authors
Javier A Linares-Pastén, Antoni Planas
Published in
Protein science : a publication of the Protein Society. Volume 35. Issue 9. Pages e70770.
Abstract
Retaining glycosyltransferases catalyze the formation of stereochemically conserved glycosidic bonds through mechanisms that remain debated. Using bovine α1,3-galactosyltransferase (α3GalT) as a model, we combine mutagenesis, equilibrium unfolding, kinetics, and molecular dynamics simulations to understand how donor-induced loop ordering promotes catalysis. Alanine-scanning mutagenesis of the C-terminal loop (Thr358-Val368) identified Lys359, Tyr361, and Arg365 as critical for donor binding, catalysis, and ligand-dependent stabilization. In addition, D225A and E317A were inactive and showed minimal ligand-induced stabilization, consistent with impaired metal binding and substrate stabilization, respectively. Donor binding induces an ordered conformation in the C-terminus, reducing its local flexibility by 30% and pre-organizing the active site for catalysis. MD-derived energy profiles differed markedly for the donor (UDP-Gal) and acceptor (lactose) in the ternary complex. In this context, experimental apparent Kₘ values indicate higher donor affinity than acceptor affinity. Our results show that donor binding stabilizes the C-terminal loop, assembling a competent complex for catalysis. These findings support a general coupling between conformational gating, donor stabilization, and the catalytic mechanism in retaining GT-A-fold enzymes.
PMID:
42603117
Bibliographic data and abstract were imported from PubMed on 15 Aug 2026.
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