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Nep1-like proteins as a target for plant pathogen control

The lack of efficient methods to control the major diseases of crops most important to agriculture leads to huge economic losses and seriously threatens global food security. Many of the most important microbial plant pathogens, including bacteria, fungi, and oomycetes, secrete necrosis- and ethylen...

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Autores principales: Pirc, Katja, Hodnik, Vesna, Snoj, Tina, Lenarčič, Tea, Caserman, Simon, Podobnik, Marjetka, Böhm, Hannah, Albert, Isabell, Kotar, Anita, Plavec, Janez, Borišek, Jure, Damuzzo, Martina, Magistrato, Alessandra, Brus, Boris, Sosič, Izidor, Gobec, Stanislav, Nürnberger, Thorsten, Anderluh, Gregor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8078777/
https://www.ncbi.nlm.nih.gov/pubmed/33857257
http://dx.doi.org/10.1371/journal.ppat.1009477
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author Pirc, Katja
Hodnik, Vesna
Snoj, Tina
Lenarčič, Tea
Caserman, Simon
Podobnik, Marjetka
Böhm, Hannah
Albert, Isabell
Kotar, Anita
Plavec, Janez
Borišek, Jure
Damuzzo, Martina
Magistrato, Alessandra
Brus, Boris
Sosič, Izidor
Gobec, Stanislav
Nürnberger, Thorsten
Anderluh, Gregor
author_facet Pirc, Katja
Hodnik, Vesna
Snoj, Tina
Lenarčič, Tea
Caserman, Simon
Podobnik, Marjetka
Böhm, Hannah
Albert, Isabell
Kotar, Anita
Plavec, Janez
Borišek, Jure
Damuzzo, Martina
Magistrato, Alessandra
Brus, Boris
Sosič, Izidor
Gobec, Stanislav
Nürnberger, Thorsten
Anderluh, Gregor
author_sort Pirc, Katja
collection PubMed
description The lack of efficient methods to control the major diseases of crops most important to agriculture leads to huge economic losses and seriously threatens global food security. Many of the most important microbial plant pathogens, including bacteria, fungi, and oomycetes, secrete necrosis- and ethylene-inducing peptide 1 (Nep1)-like proteins (NLPs), which critically contribute to the virulence and spread of the disease. NLPs are cytotoxic to eudicot plants, as they disturb the plant plasma membrane by binding to specific plant membrane sphingolipid receptors. Their pivotal role in plant infection and broad taxonomic distribution makes NLPs a promising target for the development of novel phytopharmaceutical compounds. To identify compounds that bind to NLPs from the oomycetes Pythium aphanidermatum and Phytophthora parasitica, a library of 587 small molecules, most of which are commercially unavailable, was screened by surface plasmon resonance. Importantly, compounds that exhibited the highest affinity to NLPs were also found to inhibit NLP-mediated necrosis in tobacco leaves and Phytophthora infestans growth on potato leaves. Saturation transfer difference-nuclear magnetic resonance and molecular modelling of the most promising compound, anthranilic acid derivative, confirmed stable binding to the NLP protein, which resulted in decreased necrotic activity and reduced ion leakage from tobacco leaves. We, therefore, confirmed that NLPs are an appealing target for the development of novel phytopharmaceutical agents and strategies, which aim to directly interfere with the function of these major microbial virulence factors. The compounds identified in this study represent lead structures for further optimization and antimicrobial product development.
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spelling pubmed-80787772021-05-05 Nep1-like proteins as a target for plant pathogen control Pirc, Katja Hodnik, Vesna Snoj, Tina Lenarčič, Tea Caserman, Simon Podobnik, Marjetka Böhm, Hannah Albert, Isabell Kotar, Anita Plavec, Janez Borišek, Jure Damuzzo, Martina Magistrato, Alessandra Brus, Boris Sosič, Izidor Gobec, Stanislav Nürnberger, Thorsten Anderluh, Gregor PLoS Pathog Research Article The lack of efficient methods to control the major diseases of crops most important to agriculture leads to huge economic losses and seriously threatens global food security. Many of the most important microbial plant pathogens, including bacteria, fungi, and oomycetes, secrete necrosis- and ethylene-inducing peptide 1 (Nep1)-like proteins (NLPs), which critically contribute to the virulence and spread of the disease. NLPs are cytotoxic to eudicot plants, as they disturb the plant plasma membrane by binding to specific plant membrane sphingolipid receptors. Their pivotal role in plant infection and broad taxonomic distribution makes NLPs a promising target for the development of novel phytopharmaceutical compounds. To identify compounds that bind to NLPs from the oomycetes Pythium aphanidermatum and Phytophthora parasitica, a library of 587 small molecules, most of which are commercially unavailable, was screened by surface plasmon resonance. Importantly, compounds that exhibited the highest affinity to NLPs were also found to inhibit NLP-mediated necrosis in tobacco leaves and Phytophthora infestans growth on potato leaves. Saturation transfer difference-nuclear magnetic resonance and molecular modelling of the most promising compound, anthranilic acid derivative, confirmed stable binding to the NLP protein, which resulted in decreased necrotic activity and reduced ion leakage from tobacco leaves. We, therefore, confirmed that NLPs are an appealing target for the development of novel phytopharmaceutical agents and strategies, which aim to directly interfere with the function of these major microbial virulence factors. The compounds identified in this study represent lead structures for further optimization and antimicrobial product development. Public Library of Science 2021-04-15 /pmc/articles/PMC8078777/ /pubmed/33857257 http://dx.doi.org/10.1371/journal.ppat.1009477 Text en © 2021 Pirc et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://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
Pirc, Katja
Hodnik, Vesna
Snoj, Tina
Lenarčič, Tea
Caserman, Simon
Podobnik, Marjetka
Böhm, Hannah
Albert, Isabell
Kotar, Anita
Plavec, Janez
Borišek, Jure
Damuzzo, Martina
Magistrato, Alessandra
Brus, Boris
Sosič, Izidor
Gobec, Stanislav
Nürnberger, Thorsten
Anderluh, Gregor
Nep1-like proteins as a target for plant pathogen control
title Nep1-like proteins as a target for plant pathogen control
title_full Nep1-like proteins as a target for plant pathogen control
title_fullStr Nep1-like proteins as a target for plant pathogen control
title_full_unstemmed Nep1-like proteins as a target for plant pathogen control
title_short Nep1-like proteins as a target for plant pathogen control
title_sort nep1-like proteins as a target for plant pathogen control
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8078777/
https://www.ncbi.nlm.nih.gov/pubmed/33857257
http://dx.doi.org/10.1371/journal.ppat.1009477
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