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Molecular structure and enzymatic mechanism of the human collagen hydroxylysine galactosyltransferase GLT25D1/COLGALT1

Articolo
Data di Pubblicazione:
2025
Abstract:
During collagen biosynthesis, lysine residues undergo extensive post-translational modifications through the alternate action of two distinct metal ion-dependent enzyme families (i.e., LH/PLODs and GLT25D/COLGALT), ultimately producing the highly conserved α-(1,2)-glucosyl-β-(1,O)-galactosyl-5-hydroxylysine pattern. Malfunctions in these enzymes are linked to developmental pathologies and extracellular matrix alterations associated to enhanced aggressiveness of solid tumors. Here, we characterized human GLT25D1/COLGALT1, revealing an elongated head-to-head homodimeric assembly. Each monomer encompasses two domains (named GT1 and GT2), both unexpectedly capable of binding metal ion cofactors and UDP-α-galactose donor substrates, resulting in four candidate catalytic sites per dimer. We identify the catalytic site in GT2, featuring an unusual Glu-Asp-Asp motif critical for Mn2+ binding, ruling out direct catalytic roles for the GT1 domain, but showing that in this domain the unexpectedly bound Ca2+ and UDP-α-galactose cofactors are critical for folding stability. Dimerization, albeit not essential for GLT25D1/COLGALT1 activity, provides a critical molecular contact site for multi-enzyme assembly interactions with partner multifunctional LH/PLOD lysyl hydroxylase-glycosyltransferase enzymes.
Tipologia CRIS:
1.1 Articolo in rivista
Keywords:
X-ray crystallography, Supramolecular assembly, Glycobiology, Transferases, Metalloproteins
Elenco autori:
De Marco, Matteo; Rai, Sristi Raj; Scietti, Luigi; Mattoteia, Daiana; Liberi, Stefano; Moroni, Elisabetta; Pinnola, Alberta; Vetrano, Alice; Iacobucci, Claudio; Santambrogio, Carlo; Colombo, Giorgio; Forneris, Federico
Autori di Ateneo:
COLOMBO GIORGIO
DE MARCO MATTEO
FORNERIS FEDERICO
MORONI ELISABETTA
PINNOLA ALBERTA
Link alla scheda completa:
https://iris.unipv.it/handle/11571/1523755
Pubblicato in:
NATURE COMMUNICATIONS
Journal
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URL

https://www.nature.com/articles/s41467-025-59017-5
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