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Structural definition of hSP-D recognition of Salmonella enterica LPS inner core oligosaccharides reveals alternative binding modes for the same LPS

The crystal structures of a biologically and therapeutically active recombinant homotrimeric fragment of native human SP-D (hSP-D) complexed with the inner core oligosaccharide of the Salmonella enterica sv Minnesota rough strains R5 and R7 (rough mutant chemotypes Rc and Rd1) have been determined....

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Autores principales: Littlejohn, Jamie R., da Silva, Ruben F., Neale, William A., Smallcombe, Carrie C., Clark, Howard W., Mackay, Rose-Marie A., Watson, Alastair S., Madsen, Jens, Hood, Derek W., Burns, Ian, Greenhough, Trevor J., Shrive, Annette K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6005524/
https://www.ncbi.nlm.nih.gov/pubmed/29912941
http://dx.doi.org/10.1371/journal.pone.0199175
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author Littlejohn, Jamie R.
da Silva, Ruben F.
Neale, William A.
Smallcombe, Carrie C.
Clark, Howard W.
Mackay, Rose-Marie A.
Watson, Alastair S.
Madsen, Jens
Hood, Derek W.
Burns, Ian
Greenhough, Trevor J.
Shrive, Annette K.
author_facet Littlejohn, Jamie R.
da Silva, Ruben F.
Neale, William A.
Smallcombe, Carrie C.
Clark, Howard W.
Mackay, Rose-Marie A.
Watson, Alastair S.
Madsen, Jens
Hood, Derek W.
Burns, Ian
Greenhough, Trevor J.
Shrive, Annette K.
author_sort Littlejohn, Jamie R.
collection PubMed
description The crystal structures of a biologically and therapeutically active recombinant homotrimeric fragment of native human SP-D (hSP-D) complexed with the inner core oligosaccharide of the Salmonella enterica sv Minnesota rough strains R5 and R7 (rough mutant chemotypes Rc and Rd1) have been determined. The structures reveal that hSP-D specifically and preferentially targets the LPS inner core via the innermost conserved Hep-Kdo pair with the flexibility for alternative recognition when this preferred epitope is not available for binding. Hep-Kdo binding is achieved through calcium dependent recognition of the heptose dihydroxyethyl side chain coupled with specific interactions between the Kdo and the binding site flanking residues Arg343 and Asp325 with evidence for an extended binding site for LPS inner cores containing multiple Kdo residues. In one subunit of the R5-bound structure this preferred mode of binding is precluded by the crystal lattice and oligosaccharide is bound through the terminal inner core glucose. The structures presented here thus provide unique multiple insights into the recognition and binding of bacterial LPS by hSP-D. Not only is it demonstrated that hSP-D targets the highly conserved LPS proximal inner core Hep-Kdo motif, but also that hSP-D can recognise either terminal or non-terminal sugars and has the flexibility and versatility to adopt alternative strategies for bacterial recognition, utilising alternative LPS epitopes when the preferred inner core Hep-Kdo disaccharide is not available for binding.
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spelling pubmed-60055242018-06-25 Structural definition of hSP-D recognition of Salmonella enterica LPS inner core oligosaccharides reveals alternative binding modes for the same LPS Littlejohn, Jamie R. da Silva, Ruben F. Neale, William A. Smallcombe, Carrie C. Clark, Howard W. Mackay, Rose-Marie A. Watson, Alastair S. Madsen, Jens Hood, Derek W. Burns, Ian Greenhough, Trevor J. Shrive, Annette K. PLoS One Research Article The crystal structures of a biologically and therapeutically active recombinant homotrimeric fragment of native human SP-D (hSP-D) complexed with the inner core oligosaccharide of the Salmonella enterica sv Minnesota rough strains R5 and R7 (rough mutant chemotypes Rc and Rd1) have been determined. The structures reveal that hSP-D specifically and preferentially targets the LPS inner core via the innermost conserved Hep-Kdo pair with the flexibility for alternative recognition when this preferred epitope is not available for binding. Hep-Kdo binding is achieved through calcium dependent recognition of the heptose dihydroxyethyl side chain coupled with specific interactions between the Kdo and the binding site flanking residues Arg343 and Asp325 with evidence for an extended binding site for LPS inner cores containing multiple Kdo residues. In one subunit of the R5-bound structure this preferred mode of binding is precluded by the crystal lattice and oligosaccharide is bound through the terminal inner core glucose. The structures presented here thus provide unique multiple insights into the recognition and binding of bacterial LPS by hSP-D. Not only is it demonstrated that hSP-D targets the highly conserved LPS proximal inner core Hep-Kdo motif, but also that hSP-D can recognise either terminal or non-terminal sugars and has the flexibility and versatility to adopt alternative strategies for bacterial recognition, utilising alternative LPS epitopes when the preferred inner core Hep-Kdo disaccharide is not available for binding. Public Library of Science 2018-06-18 /pmc/articles/PMC6005524/ /pubmed/29912941 http://dx.doi.org/10.1371/journal.pone.0199175 Text en © 2018 Littlejohn et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Littlejohn, Jamie R.
da Silva, Ruben F.
Neale, William A.
Smallcombe, Carrie C.
Clark, Howard W.
Mackay, Rose-Marie A.
Watson, Alastair S.
Madsen, Jens
Hood, Derek W.
Burns, Ian
Greenhough, Trevor J.
Shrive, Annette K.
Structural definition of hSP-D recognition of Salmonella enterica LPS inner core oligosaccharides reveals alternative binding modes for the same LPS
title Structural definition of hSP-D recognition of Salmonella enterica LPS inner core oligosaccharides reveals alternative binding modes for the same LPS
title_full Structural definition of hSP-D recognition of Salmonella enterica LPS inner core oligosaccharides reveals alternative binding modes for the same LPS
title_fullStr Structural definition of hSP-D recognition of Salmonella enterica LPS inner core oligosaccharides reveals alternative binding modes for the same LPS
title_full_unstemmed Structural definition of hSP-D recognition of Salmonella enterica LPS inner core oligosaccharides reveals alternative binding modes for the same LPS
title_short Structural definition of hSP-D recognition of Salmonella enterica LPS inner core oligosaccharides reveals alternative binding modes for the same LPS
title_sort structural definition of hsp-d recognition of salmonella enterica lps inner core oligosaccharides reveals alternative binding modes for the same lps
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6005524/
https://www.ncbi.nlm.nih.gov/pubmed/29912941
http://dx.doi.org/10.1371/journal.pone.0199175
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