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Enhanced Antiviral Activity of Human Surfactant Protein D by Site-Specific Engineering of the Carbohydrate Recognition Domain

Innate immunity is critical in the early containment of influenza A virus (IAV) infection and surfactant protein D (SP-D) plays a crucial role in innate defense against IAV in the lungs. Multivalent lectin-mediated interactions of SP-D with IAVs result in viral aggregation, reduced epithelial infect...

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Autores principales: van Eijk, Martin, Hillaire, Marine L. B., Rimmelzwaan, Guus F., Rynkiewicz, Michael J., White, Mitchell R., Hartshorn, Kevan L., Hessing, Martin, Koolmees, Peter A., Tersteeg, Monique H., van Es, Maarten H., Meijerhof, Tjarko, Huckriede, Anke, Haagsman, Henk P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6842947/
https://www.ncbi.nlm.nih.gov/pubmed/31749796
http://dx.doi.org/10.3389/fimmu.2019.02476
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author van Eijk, Martin
Hillaire, Marine L. B.
Rimmelzwaan, Guus F.
Rynkiewicz, Michael J.
White, Mitchell R.
Hartshorn, Kevan L.
Hessing, Martin
Koolmees, Peter A.
Tersteeg, Monique H.
van Es, Maarten H.
Meijerhof, Tjarko
Huckriede, Anke
Haagsman, Henk P.
author_facet van Eijk, Martin
Hillaire, Marine L. B.
Rimmelzwaan, Guus F.
Rynkiewicz, Michael J.
White, Mitchell R.
Hartshorn, Kevan L.
Hessing, Martin
Koolmees, Peter A.
Tersteeg, Monique H.
van Es, Maarten H.
Meijerhof, Tjarko
Huckriede, Anke
Haagsman, Henk P.
author_sort van Eijk, Martin
collection PubMed
description Innate immunity is critical in the early containment of influenza A virus (IAV) infection and surfactant protein D (SP-D) plays a crucial role in innate defense against IAV in the lungs. Multivalent lectin-mediated interactions of SP-D with IAVs result in viral aggregation, reduced epithelial infection, and enhanced IAV clearance by phagocytic cells. Previous studies showed that porcine SP-D (pSP-D) exhibits distinct antiviral activity against IAV as compared to human SP-D (hSP-D), mainly due to key residues in the lectin domain of pSP-D that contribute to its profound neutralizing activity. These observations provided the basis for the design of a full-length recombinant mutant form of hSP-D, designated as “improved SP-D” (iSP-D). Inspired by pSP-D, the lectin domain of iSP-D has 5 amino acids replaced (Asp324Asn, Asp330Asn, Val251Glu, Lys287Gln, Glu289Lys) and 3 amino acids inserted (326Gly-Ser-Ser). Characterization of iSP-D revealed no major differences in protein assembly and saccharide binding selectivity as compared to hSP-D. However, hemagglutination inhibition measurements showed that iSP-D expressed strongly enhanced activity compared to hSP-D against 31 different IAV strains tested, including (pandemic) IAVs that were resistant for neutralization by hSP-D. Furthermore, iSP-D showed increased viral aggregation and enhanced protection of MDCK cells against infection by IAV. Importantly, prophylactic or therapeutic application of iSP-D decreased weight loss and reduced viral lung titers in a murine model of IAV infection using a clinical isolate of H1N1pdm09 virus. These studies demonstrate the potential of iSP-D as a novel human-based antiviral inhalation drug that may provide immediate protection against or recovery from respiratory (pandemic) IAV infections in humans.
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spelling pubmed-68429472019-11-20 Enhanced Antiviral Activity of Human Surfactant Protein D by Site-Specific Engineering of the Carbohydrate Recognition Domain van Eijk, Martin Hillaire, Marine L. B. Rimmelzwaan, Guus F. Rynkiewicz, Michael J. White, Mitchell R. Hartshorn, Kevan L. Hessing, Martin Koolmees, Peter A. Tersteeg, Monique H. van Es, Maarten H. Meijerhof, Tjarko Huckriede, Anke Haagsman, Henk P. Front Immunol Immunology Innate immunity is critical in the early containment of influenza A virus (IAV) infection and surfactant protein D (SP-D) plays a crucial role in innate defense against IAV in the lungs. Multivalent lectin-mediated interactions of SP-D with IAVs result in viral aggregation, reduced epithelial infection, and enhanced IAV clearance by phagocytic cells. Previous studies showed that porcine SP-D (pSP-D) exhibits distinct antiviral activity against IAV as compared to human SP-D (hSP-D), mainly due to key residues in the lectin domain of pSP-D that contribute to its profound neutralizing activity. These observations provided the basis for the design of a full-length recombinant mutant form of hSP-D, designated as “improved SP-D” (iSP-D). Inspired by pSP-D, the lectin domain of iSP-D has 5 amino acids replaced (Asp324Asn, Asp330Asn, Val251Glu, Lys287Gln, Glu289Lys) and 3 amino acids inserted (326Gly-Ser-Ser). Characterization of iSP-D revealed no major differences in protein assembly and saccharide binding selectivity as compared to hSP-D. However, hemagglutination inhibition measurements showed that iSP-D expressed strongly enhanced activity compared to hSP-D against 31 different IAV strains tested, including (pandemic) IAVs that were resistant for neutralization by hSP-D. Furthermore, iSP-D showed increased viral aggregation and enhanced protection of MDCK cells against infection by IAV. Importantly, prophylactic or therapeutic application of iSP-D decreased weight loss and reduced viral lung titers in a murine model of IAV infection using a clinical isolate of H1N1pdm09 virus. These studies demonstrate the potential of iSP-D as a novel human-based antiviral inhalation drug that may provide immediate protection against or recovery from respiratory (pandemic) IAV infections in humans. Frontiers Media S.A. 2019-10-22 /pmc/articles/PMC6842947/ /pubmed/31749796 http://dx.doi.org/10.3389/fimmu.2019.02476 Text en Copyright © 2019 van Eijk, Hillaire, Rimmelzwaan, Rynkiewicz, White, Hartshorn, Hessing, Koolmees, Tersteeg, van Es, Meijerhof, Huckriede and Haagsman. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Immunology
van Eijk, Martin
Hillaire, Marine L. B.
Rimmelzwaan, Guus F.
Rynkiewicz, Michael J.
White, Mitchell R.
Hartshorn, Kevan L.
Hessing, Martin
Koolmees, Peter A.
Tersteeg, Monique H.
van Es, Maarten H.
Meijerhof, Tjarko
Huckriede, Anke
Haagsman, Henk P.
Enhanced Antiviral Activity of Human Surfactant Protein D by Site-Specific Engineering of the Carbohydrate Recognition Domain
title Enhanced Antiviral Activity of Human Surfactant Protein D by Site-Specific Engineering of the Carbohydrate Recognition Domain
title_full Enhanced Antiviral Activity of Human Surfactant Protein D by Site-Specific Engineering of the Carbohydrate Recognition Domain
title_fullStr Enhanced Antiviral Activity of Human Surfactant Protein D by Site-Specific Engineering of the Carbohydrate Recognition Domain
title_full_unstemmed Enhanced Antiviral Activity of Human Surfactant Protein D by Site-Specific Engineering of the Carbohydrate Recognition Domain
title_short Enhanced Antiviral Activity of Human Surfactant Protein D by Site-Specific Engineering of the Carbohydrate Recognition Domain
title_sort enhanced antiviral activity of human surfactant protein d by site-specific engineering of the carbohydrate recognition domain
topic Immunology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6842947/
https://www.ncbi.nlm.nih.gov/pubmed/31749796
http://dx.doi.org/10.3389/fimmu.2019.02476
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