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The Search for Herbal Antibiotics: An In-Silico Investigation of Antibacterial Phytochemicals

Recently, the emergence and spread of pathogenic bacterial resistance to many antibiotics (multidrug-resistant strains) have been increasing throughout the world. This phenomenon is of great concern and there is a need to find alternative chemotherapeutic agents to combat these antibiotic-resistant...

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Autores principales: Snow Setzer, Mary, Sharifi-Rad, Javad, Setzer, William N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5039526/
https://www.ncbi.nlm.nih.gov/pubmed/27626453
http://dx.doi.org/10.3390/antibiotics5030030
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author Snow Setzer, Mary
Sharifi-Rad, Javad
Setzer, William N.
author_facet Snow Setzer, Mary
Sharifi-Rad, Javad
Setzer, William N.
author_sort Snow Setzer, Mary
collection PubMed
description Recently, the emergence and spread of pathogenic bacterial resistance to many antibiotics (multidrug-resistant strains) have been increasing throughout the world. This phenomenon is of great concern and there is a need to find alternative chemotherapeutic agents to combat these antibiotic-resistant microorganisms. Higher plants may serve as a resource for new antimicrobials to replace or augment current therapeutic options. In this work, we have carried out a molecular docking study of a total of 561 antibacterial phytochemicals listed in the Dictionary of Natural Products, including 77 alkaloids (17 indole alkaloids, 27 isoquinoline alkaloids, 4 steroidal alkaloids, and 28 miscellaneous alkaloids), 99 terpenoids (5 monoterpenoids, 31 sesquiterpenoids, 52 diterpenoids, and 11 triterpenoids), 309 polyphenolics (87 flavonoids, 25 chalcones, 41 isoflavonoids, 5 neoflavonoids, 12 pterocarpans, 10 chromones, 7 condensed tannins, 11 coumarins, 30 stilbenoids, 2 lignans, 5 phenylpropanoids, 13 xanthones, 5 hydrolyzable tannins, and 56 miscellaneous phenolics), 30 quinones, and 46 miscellaneous phytochemicals, with six bacterial protein targets (peptide deformylase, DNA gyrase/topoisomerase IV, UDP-galactose mutase, protein tyrosine phosphatase, cytochrome P450 CYP121, and NAD(+)-dependent DNA ligase). In addition, 35 known inhibitors were docked with their respective targets for comparison purposes. Prenylated polyphenolics showed the best docking profiles, while terpenoids had the poorest. The most susceptible protein targets were peptide deformylases and NAD(+)-dependent DNA ligases.
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spelling pubmed-50395262016-10-04 The Search for Herbal Antibiotics: An In-Silico Investigation of Antibacterial Phytochemicals Snow Setzer, Mary Sharifi-Rad, Javad Setzer, William N. Antibiotics (Basel) Article Recently, the emergence and spread of pathogenic bacterial resistance to many antibiotics (multidrug-resistant strains) have been increasing throughout the world. This phenomenon is of great concern and there is a need to find alternative chemotherapeutic agents to combat these antibiotic-resistant microorganisms. Higher plants may serve as a resource for new antimicrobials to replace or augment current therapeutic options. In this work, we have carried out a molecular docking study of a total of 561 antibacterial phytochemicals listed in the Dictionary of Natural Products, including 77 alkaloids (17 indole alkaloids, 27 isoquinoline alkaloids, 4 steroidal alkaloids, and 28 miscellaneous alkaloids), 99 terpenoids (5 monoterpenoids, 31 sesquiterpenoids, 52 diterpenoids, and 11 triterpenoids), 309 polyphenolics (87 flavonoids, 25 chalcones, 41 isoflavonoids, 5 neoflavonoids, 12 pterocarpans, 10 chromones, 7 condensed tannins, 11 coumarins, 30 stilbenoids, 2 lignans, 5 phenylpropanoids, 13 xanthones, 5 hydrolyzable tannins, and 56 miscellaneous phenolics), 30 quinones, and 46 miscellaneous phytochemicals, with six bacterial protein targets (peptide deformylase, DNA gyrase/topoisomerase IV, UDP-galactose mutase, protein tyrosine phosphatase, cytochrome P450 CYP121, and NAD(+)-dependent DNA ligase). In addition, 35 known inhibitors were docked with their respective targets for comparison purposes. Prenylated polyphenolics showed the best docking profiles, while terpenoids had the poorest. The most susceptible protein targets were peptide deformylases and NAD(+)-dependent DNA ligases. MDPI 2016-09-12 /pmc/articles/PMC5039526/ /pubmed/27626453 http://dx.doi.org/10.3390/antibiotics5030030 Text en © 2016 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC-BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Snow Setzer, Mary
Sharifi-Rad, Javad
Setzer, William N.
The Search for Herbal Antibiotics: An In-Silico Investigation of Antibacterial Phytochemicals
title The Search for Herbal Antibiotics: An In-Silico Investigation of Antibacterial Phytochemicals
title_full The Search for Herbal Antibiotics: An In-Silico Investigation of Antibacterial Phytochemicals
title_fullStr The Search for Herbal Antibiotics: An In-Silico Investigation of Antibacterial Phytochemicals
title_full_unstemmed The Search for Herbal Antibiotics: An In-Silico Investigation of Antibacterial Phytochemicals
title_short The Search for Herbal Antibiotics: An In-Silico Investigation of Antibacterial Phytochemicals
title_sort search for herbal antibiotics: an in-silico investigation of antibacterial phytochemicals
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5039526/
https://www.ncbi.nlm.nih.gov/pubmed/27626453
http://dx.doi.org/10.3390/antibiotics5030030
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