The molecular basis of regulation of bacterial capsule assembly by Wzc
Bacterial extracellular polysaccharides (EPSs) play critical roles in virulence. Many bacteria assemble EPSs via a multi-protein “Wzx-Wzy” system, involving glycan polymerization at the outer face of the cytoplasmic/inner membrane. Gram-negative species couple polymerization with translocation acros...
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Veröffentlicht in: | Nature communications 2021-07, Vol.12 (1), p.4349-4349, Article 4349 |
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Sprache: | eng |
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Zusammenfassung: | Bacterial extracellular polysaccharides (EPSs) play critical roles in virulence. Many bacteria assemble EPSs via a multi-protein “Wzx-Wzy” system, involving glycan polymerization at the outer face of the cytoplasmic/inner membrane. Gram-negative species couple polymerization with translocation across the periplasm and outer membrane and the master regulator of the system is the tyrosine autokinase, Wzc. This near atomic cryo-EM structure of dephosphorylated Wzc from
E. coli
shows an octameric assembly with a large central cavity formed by transmembrane helices. The tyrosine autokinase domain forms the cytoplasm region, while the periplasmic region contains small folded motifs and helical bundles. The helical bundles are essential for function, most likely through interaction with the outer membrane translocon, Wza. Autophosphorylation of the tyrosine-rich C-terminus of Wzc results in disassembly of the octamer into multiply phosphorylated monomers. We propose that the cycling between phosphorylated monomer and dephosphorylated octamer regulates glycan polymerization and translocation.
The Wzc–Wza complex forms part of the bacterial extracellular polysaccharides synthesis machinery, where cycling of the Wzc between phosphorylation states is crucial to both synthesis and export. Here the authors report the structure of the Wzc octamer and provide insight into its regulation through phosphorylation. |
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ISSN: | 2041-1723 2041-1723 |
DOI: | 10.1038/s41467-021-24652-1 |