4.8 Article

Outer membrane protein size and LPS O-antigen define protective antibody targeting to the Salmonella surface

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NATURE COMMUNICATIONS
卷 11, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41467-020-14655-9

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资金

  1. MRC [MR/R005974/1]
  2. BBSRC [BB/L009986/1, BB/N002776/1]
  3. Wellcome Trust [108372/A/15/Z]
  4. US National Institutes of Health [R01-GM123169]
  5. National Science Foundation [MCB-1452464]
  6. Mexican National Research Council (CONACyT) [SEP-CONACYT CB-2015-256402, SRE-CONACYT 263683]
  7. IMSS project [FIS/IMSS/PROT/G17/1682]
  8. NSF [TG-MCB130173, ACI-1548562]
  9. BBSRC [BB/L009986/1, BB/N002776/1, 1940269] Funding Source: UKRI
  10. MRC [MR/N023706/1, MR/P008852/1, MR/R005974/1] Funding Source: UKRI
  11. Wellcome Trust [108372/A/15/Z] Funding Source: Wellcome Trust

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The O-antigen of LPS is known to limit the binding of antibody to bacterial surface antigens. Here the AUs show that the chemical and physical structure of the O-antigen are central factors in limiting the exposure of surface antigens to antibodies during Salmonella infection, thus defining their protective qualities. Lipopolysaccharide (LPS) O-antigen (O-Ag) is known to limit antibody binding to surface antigens, although the relationship between antibody, O-Ag and other outer-membrane antigens is poorly understood. Here we report, immunization with the trimeric porin OmpD from Salmonella Typhimurium (STmOmpD) protects against infection. Atomistic molecular dynamics simulations indicate this is because OmpD trimers generate footprints within the O-Ag layer sufficiently sized for a single IgG Fab to access. While STmOmpD differs from its orthologue in S. Enteritidis (SEn) by a single amino-acid residue, immunization with STmOmpD confers minimal protection to SEn. This is due to the OmpD-O-Ag interplay restricting IgG binding, with the pairing of OmpD with its native O-Ag being essential for optimal protection after immunization. Thus, both the chemical and physical structure of O-Ag are key for the presentation of specific epitopes within proteinaceous surface-antigens. This enhances combinatorial antigenic diversity in Gram-negative bacteria, while reducing associated fitness costs.

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