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Roig-Zamboni, V.

Publications and source records attributed to Roig-Zamboni, V..

2 recordsLinked to original sources

A short C-terminal plug motif in a conserved type 4 pilus component controls pilus-tip localisation and filament biogenesis

Type 4a pili (T4aP), the most widespread and functionally versatile subtype of the type 4 filaments (T4F) superfamily, are functionalised at their tip by the adhesin PilC/PilY1. How this unusually large non-pilin protein is stably displayed at the pilus tip, and why is it required for pilus biogenesis, remains unknown. Here, using a multidisciplinary approach in Neisseria meningitidis, we show that the last 12 residues of PilC, representing ~1% of the protein, are both necessary and sufficient for pilus-tip localisation and filament biogenesis. X-ray crystallography reveals that this short "plug" motif binds the PilK subunit (within a complex of four minor pilins that caps the pilus) through {beta}-strand augmentation, a mode of interaction not previously characterised in T4F. Binding assays with synthetic peptides establish the specificity and affinity of this interaction, while the addition of a plug peptide extracellularly to cultures of a{Delta} pilC mutant restores pilus biogenesis. We show, using different methods, that the plug motif markedly stabilises PilK, providing an explanation for the requirement of PilC in pilus biogenesis. Consequently, expression of a PilK protein carrying a fused plug in N. meningitidis bypasses the requirement for PilC in pilus biogenesis. Together, these findings define the molecular basis of PilC/PilY1 function and localisation, reconcile all previous observations, and establish a broadly applicable model for T4aP biogenesis.

microbiology↗

Screening for Polysaccharide Utilization Loci Targeting Marine Polysaccharides

Polysaccharide utilization loci (PULs) have been a goldmine for the characterization of novel carbohydrate active enzymes (CAZymes) and the understanding of their synergistic degradation of complex polysaccharides. We collected PUL predictions containing CAZymes from glycoside hydrolase families GH29, GH50 and GH117, expected to participate in marine polysaccharide breakdown. We explored the evolutionary diversity in these families in terms of sequences and PUL composition, based on sulfatases and CAZymes. From 41 selected PULs, more than 400 putative enzymes were produced, purified and screened on a large collection of carbohydrates. We attributed a function to more than 130 enzymes from five sulfatase subfamilies, 29 known CAZymes families and discovered an activity for 4 families previously of unknown function, including an -L-galactosidase structurally and functionally characterized with mutants. Finally, our detailed analysis of the enzymatic synergies in five PULs, two targeting marine polysaccharides and three targeting eukaryotic polysaccharides, by marine and human gut organisms, highlight the efficiency of our exploratory strategy.

biochemistry↗