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Mining of potential drug targets through the identification of essential and analogous enzymes in the genomes of pathogens of Glycine max, Zea mays and Solanum lycopersicum

Pesticides are one of the most widely used pest and disease control measures in plant crops and their indiscriminate use poses a direct risk to the health of populations and environment around the world. As a result, there is a great need for the development of new, less toxic molecules to be employ...

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Autores principales: da Silva, Rangeline Azevedo, Pereira, Leandro de Mattos, Silveira, Melise Chaves, Jardim, Rodrigo, de Miranda, Antonio Basilio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5969768/
https://www.ncbi.nlm.nih.gov/pubmed/29799863
http://dx.doi.org/10.1371/journal.pone.0197511
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author da Silva, Rangeline Azevedo
Pereira, Leandro de Mattos
Silveira, Melise Chaves
Jardim, Rodrigo
de Miranda, Antonio Basilio
author_facet da Silva, Rangeline Azevedo
Pereira, Leandro de Mattos
Silveira, Melise Chaves
Jardim, Rodrigo
de Miranda, Antonio Basilio
author_sort da Silva, Rangeline Azevedo
collection PubMed
description Pesticides are one of the most widely used pest and disease control measures in plant crops and their indiscriminate use poses a direct risk to the health of populations and environment around the world. As a result, there is a great need for the development of new, less toxic molecules to be employed against plant pathogens. In this work, we employed an in silico approach to study the genes coding for enzymes of the genomes of three commercially important plants, soybean (Glycine max), tomato (Solanum lycopersicum) and corn (Zea mays), as well as 15 plant pathogens (4 bacteria and 11 fungi), focusing on revealing a set of essential and non-homologous isofunctional enzymes (NISEs) that could be prioritized as drug targets. By combining sequence and structural data, we obtained an initial set of 568 cases of analogy, of which 97 were validated and further refined, revealing a subset of 29 essential enzymatic activities with a total of 119 different structural forms, most belonging to central metabolic routes, including the carbohydrate metabolism, the metabolism of amino acids, among others. Further, another subset of 26 enzymatic activities possess a tertiary structure specific for the pathogen, not present in plants, men and Apis mellifera, which may be of importance for the development of specific enzymatic inhibitors against plant diseases that are less harmful to humans and the environment.
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spelling pubmed-59697682018-06-08 Mining of potential drug targets through the identification of essential and analogous enzymes in the genomes of pathogens of Glycine max, Zea mays and Solanum lycopersicum da Silva, Rangeline Azevedo Pereira, Leandro de Mattos Silveira, Melise Chaves Jardim, Rodrigo de Miranda, Antonio Basilio PLoS One Research Article Pesticides are one of the most widely used pest and disease control measures in plant crops and their indiscriminate use poses a direct risk to the health of populations and environment around the world. As a result, there is a great need for the development of new, less toxic molecules to be employed against plant pathogens. In this work, we employed an in silico approach to study the genes coding for enzymes of the genomes of three commercially important plants, soybean (Glycine max), tomato (Solanum lycopersicum) and corn (Zea mays), as well as 15 plant pathogens (4 bacteria and 11 fungi), focusing on revealing a set of essential and non-homologous isofunctional enzymes (NISEs) that could be prioritized as drug targets. By combining sequence and structural data, we obtained an initial set of 568 cases of analogy, of which 97 were validated and further refined, revealing a subset of 29 essential enzymatic activities with a total of 119 different structural forms, most belonging to central metabolic routes, including the carbohydrate metabolism, the metabolism of amino acids, among others. Further, another subset of 26 enzymatic activities possess a tertiary structure specific for the pathogen, not present in plants, men and Apis mellifera, which may be of importance for the development of specific enzymatic inhibitors against plant diseases that are less harmful to humans and the environment. Public Library of Science 2018-05-25 /pmc/articles/PMC5969768/ /pubmed/29799863 http://dx.doi.org/10.1371/journal.pone.0197511 Text en © 2018 Silva 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
da Silva, Rangeline Azevedo
Pereira, Leandro de Mattos
Silveira, Melise Chaves
Jardim, Rodrigo
de Miranda, Antonio Basilio
Mining of potential drug targets through the identification of essential and analogous enzymes in the genomes of pathogens of Glycine max, Zea mays and Solanum lycopersicum
title Mining of potential drug targets through the identification of essential and analogous enzymes in the genomes of pathogens of Glycine max, Zea mays and Solanum lycopersicum
title_full Mining of potential drug targets through the identification of essential and analogous enzymes in the genomes of pathogens of Glycine max, Zea mays and Solanum lycopersicum
title_fullStr Mining of potential drug targets through the identification of essential and analogous enzymes in the genomes of pathogens of Glycine max, Zea mays and Solanum lycopersicum
title_full_unstemmed Mining of potential drug targets through the identification of essential and analogous enzymes in the genomes of pathogens of Glycine max, Zea mays and Solanum lycopersicum
title_short Mining of potential drug targets through the identification of essential and analogous enzymes in the genomes of pathogens of Glycine max, Zea mays and Solanum lycopersicum
title_sort mining of potential drug targets through the identification of essential and analogous enzymes in the genomes of pathogens of glycine max, zea mays and solanum lycopersicum
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5969768/
https://www.ncbi.nlm.nih.gov/pubmed/29799863
http://dx.doi.org/10.1371/journal.pone.0197511
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