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Povolo, L.

Publications and source records attributed to Povolo, L..

2 recordsLinked to original sources

Structure and mechanism of the human TMEM260 O-mannosyltransferase

Protein O-linked mannose (O-Man) glycosylation is essential for mammalian development, and mutations in its biosynthetic glycosyltransferases cause severe muscular, neurological and cardiac disorders. Despite its biological and clinical importance, the structural basis of mammalian O-Man biosynthesis has remained unknown. Here we report cryo-electron microscopy (cryo-EM) structures of human TMEM260, an endoplasmic reticulum glycosyltransferase that selectively catalyzes O-mannosylation of semaphorin plexin receptors and receptor tyrosine kinases cMET and RON, key regulators of cell guidance and migration. Structures of TMEM260 in a ternary complex with its natural donor dolichyl-phosphate-{beta}-mannose (Dol-P-Man) and an acceptor peptide derived from plexin-B2, together with binary complexes with Dol-P-Man or a synthetic donor analogue, capture physiologically relevant, substrate-loaded states and reveal the structural basis of O-Man transfer. We identify a conserved O-mannosylation sequon that underlies acceptor specificity and show that TMEM260 modifies extended polypeptide substrates, consistent with a co-translational glycosylation mechanism. These findings establish the molecular mechanism of a mammalian O-mannosyltransferase required for the maturation of physiologically critical receptors and provide a structural framework for interpreting TMEM260-associated congenital malformations.

biophysics↗

Global view of domain-specific O-linked mannose glycosylation in glycoengineered cells

Protein O-linked mannose (O-Man) glycosylation is an evolutionary conserved post-translational modification (PTM) that fulfills important biological roles during embryonic development. Three non-redundant enzyme families, POMT1/POMT2, TMTC1-4 and TMEM260, selectively coordinate the initiation of protein O-Man glycosylation on distinct classes of transmembrane proteins, including -dystroglycan, cadherins and plexin receptors. However, a systematic investigation of their substrate specificities is lacking, in part due to the ubiquitous expression of O-Man glycosyltransferases in cells, which precludes analysis of pathway-specific O-Man glycosylation on a proteome-wide scale. Here, we apply a targeted workflow for membrane glycoproteomics across five human cell lines to extensively map O-Man substrates and genetically deconstruct O-Man initiation by individual and combinatorial knock-out (KO) of O-Man glycosyltransferase genes. We established a human cell library for analysis of substrate specificities of individual O-Man initiation pathways by quantitative glycoproteomics. Our results identify 180 O-Man glycoproteins, demonstrate new protein targets for the POMT1/POMT2 pathway and show that TMTC1-4 and TMEM260 pathways widely target distinct Ig-like protein domains of plasma membrane proteins involved in cell-cell and cell-extracellular matrix interactions. The identification of O-Man on Ig-like folds adds further knowledge on the emerging concept of domain-specific O-Man glycosylation which opens for functional studies of O-Man glycosylated adhesion molecules and receptors.

molecular biology↗