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Structure of the Neisseria Adhesin Complex Protein (ACP) and its role as a novel lysozyme inhibitor

Pathogenic and commensal Neisseria species produce an Adhesin Complex Protein, which was first characterised in Neisseria meningitidis (Nm) as a novel surface-exposed adhesin with vaccine potential. In the current study, the crystal structure of a recombinant (r)Nm-ACP Type I protein was determined...

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Autores principales: Humbert, María Victoria, Awanye, Amaka Marian, Lian, Lu-Yun, Derrick, Jeremy P., Christodoulides, Myron
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5507604/
https://www.ncbi.nlm.nih.gov/pubmed/28662181
http://dx.doi.org/10.1371/journal.ppat.1006448
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author Humbert, María Victoria
Awanye, Amaka Marian
Lian, Lu-Yun
Derrick, Jeremy P.
Christodoulides, Myron
author_facet Humbert, María Victoria
Awanye, Amaka Marian
Lian, Lu-Yun
Derrick, Jeremy P.
Christodoulides, Myron
author_sort Humbert, María Victoria
collection PubMed
description Pathogenic and commensal Neisseria species produce an Adhesin Complex Protein, which was first characterised in Neisseria meningitidis (Nm) as a novel surface-exposed adhesin with vaccine potential. In the current study, the crystal structure of a recombinant (r)Nm-ACP Type I protein was determined to 1.4 Å resolution: the fold resembles an eight-stranded β-barrel, stabilized by a disulphide bond between the first (Cys38) and last (Cys121) β-strands. There are few main-chain hydrogen bonds linking β4-β5 and β8-β1, so the structure divides into two four-stranded anti-parallel β-sheets (β1-β4 and β5-β8). The computed surface electrostatic charge distribution showed that the β1-β4 sheet face is predominantly basic, whereas the β5-β8 sheet is apolar, apart from the loop between β4 and β5. Concentrations of rNm-ACP and rNeisseria gonorrhoeae-ACP proteins ≥0.25 μg/ml significantly inhibited by ~80–100% (P<0.05) the in vitro activity of human lysozyme (HL) over 24 h. Specificity was demonstrated by the ability of murine anti-Neisseria ACP sera to block ACP inhibition and restore HL activity. ACP expression conferred tolerance to HL activity, as demonstrated by significant 3–9 fold reductions (P<0.05) in the growth of meningococcal and gonococcal acp gene knock-out mutants in the presence of lysozyme. In addition, wild-type Neisseria lactamica treated with purified ACP-specific rabbit IgG antibodies showed similar fold reductions in bacterial growth, compared with untreated bacteria (P<0.05). Nm-ACPI is structurally similar to the MliC/PliC protein family of lysozyme inhibitors. However, Neisseria ACP proteins show <20% primary sequence similarity with these inhibitors and do not share any conserved MliC/PliC sequence motifs associated with lysozyme recognition. These observations suggest that Neisseria ACP adopts a different mode of lysozyme inhibition and that the ability of ACP to inhibit lysozyme activity could be important for host colonization by both pathogenic and commensal Neisseria organisms. Thus, ACP represents a dual target for developing Neisseria vaccines and drugs to inhibit host-pathogen interactions.
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spelling pubmed-55076042017-07-25 Structure of the Neisseria Adhesin Complex Protein (ACP) and its role as a novel lysozyme inhibitor Humbert, María Victoria Awanye, Amaka Marian Lian, Lu-Yun Derrick, Jeremy P. Christodoulides, Myron PLoS Pathog Research Article Pathogenic and commensal Neisseria species produce an Adhesin Complex Protein, which was first characterised in Neisseria meningitidis (Nm) as a novel surface-exposed adhesin with vaccine potential. In the current study, the crystal structure of a recombinant (r)Nm-ACP Type I protein was determined to 1.4 Å resolution: the fold resembles an eight-stranded β-barrel, stabilized by a disulphide bond between the first (Cys38) and last (Cys121) β-strands. There are few main-chain hydrogen bonds linking β4-β5 and β8-β1, so the structure divides into two four-stranded anti-parallel β-sheets (β1-β4 and β5-β8). The computed surface electrostatic charge distribution showed that the β1-β4 sheet face is predominantly basic, whereas the β5-β8 sheet is apolar, apart from the loop between β4 and β5. Concentrations of rNm-ACP and rNeisseria gonorrhoeae-ACP proteins ≥0.25 μg/ml significantly inhibited by ~80–100% (P<0.05) the in vitro activity of human lysozyme (HL) over 24 h. Specificity was demonstrated by the ability of murine anti-Neisseria ACP sera to block ACP inhibition and restore HL activity. ACP expression conferred tolerance to HL activity, as demonstrated by significant 3–9 fold reductions (P<0.05) in the growth of meningococcal and gonococcal acp gene knock-out mutants in the presence of lysozyme. In addition, wild-type Neisseria lactamica treated with purified ACP-specific rabbit IgG antibodies showed similar fold reductions in bacterial growth, compared with untreated bacteria (P<0.05). Nm-ACPI is structurally similar to the MliC/PliC protein family of lysozyme inhibitors. However, Neisseria ACP proteins show <20% primary sequence similarity with these inhibitors and do not share any conserved MliC/PliC sequence motifs associated with lysozyme recognition. These observations suggest that Neisseria ACP adopts a different mode of lysozyme inhibition and that the ability of ACP to inhibit lysozyme activity could be important for host colonization by both pathogenic and commensal Neisseria organisms. Thus, ACP represents a dual target for developing Neisseria vaccines and drugs to inhibit host-pathogen interactions. Public Library of Science 2017-06-29 /pmc/articles/PMC5507604/ /pubmed/28662181 http://dx.doi.org/10.1371/journal.ppat.1006448 Text en © 2017 Humbert 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
Humbert, María Victoria
Awanye, Amaka Marian
Lian, Lu-Yun
Derrick, Jeremy P.
Christodoulides, Myron
Structure of the Neisseria Adhesin Complex Protein (ACP) and its role as a novel lysozyme inhibitor
title Structure of the Neisseria Adhesin Complex Protein (ACP) and its role as a novel lysozyme inhibitor
title_full Structure of the Neisseria Adhesin Complex Protein (ACP) and its role as a novel lysozyme inhibitor
title_fullStr Structure of the Neisseria Adhesin Complex Protein (ACP) and its role as a novel lysozyme inhibitor
title_full_unstemmed Structure of the Neisseria Adhesin Complex Protein (ACP) and its role as a novel lysozyme inhibitor
title_short Structure of the Neisseria Adhesin Complex Protein (ACP) and its role as a novel lysozyme inhibitor
title_sort structure of the neisseria adhesin complex protein (acp) and its role as a novel lysozyme inhibitor
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5507604/
https://www.ncbi.nlm.nih.gov/pubmed/28662181
http://dx.doi.org/10.1371/journal.ppat.1006448
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