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In silico study reveals binding potential of rotenone at multiple sites of pulmonary surfactant proteins: A matter of concern

Rotenone is a broad-spectrum pesticide employed in various agricultural practices all over the world. Human beings are exposed to this chemical through oral, nasal, and dermal routes. Inhalation of rotenone exposes bio-molecular components of lungs to this chemical. Biophysical activity of lungs is...

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Autores principales: Rajak, Prem, Roy, Sumedha, Pal, Achintya Kumar, Paramanik, Manas, Dutta, Moumita, Podder, Sayanti, Sarkar, Saurabh, Ganguly, Abhratanu, Mandi, Moutushi, Dutta, Anik, Das, Kanchana, Ghanty, Siddhartha, Khatun, Salma
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8666459/
https://www.ncbi.nlm.nih.gov/pubmed/34917955
http://dx.doi.org/10.1016/j.crtox.2021.11.003
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author Rajak, Prem
Roy, Sumedha
Pal, Achintya Kumar
Paramanik, Manas
Dutta, Moumita
Podder, Sayanti
Sarkar, Saurabh
Ganguly, Abhratanu
Mandi, Moutushi
Dutta, Anik
Das, Kanchana
Ghanty, Siddhartha
Khatun, Salma
author_facet Rajak, Prem
Roy, Sumedha
Pal, Achintya Kumar
Paramanik, Manas
Dutta, Moumita
Podder, Sayanti
Sarkar, Saurabh
Ganguly, Abhratanu
Mandi, Moutushi
Dutta, Anik
Das, Kanchana
Ghanty, Siddhartha
Khatun, Salma
author_sort Rajak, Prem
collection PubMed
description Rotenone is a broad-spectrum pesticide employed in various agricultural practices all over the world. Human beings are exposed to this chemical through oral, nasal, and dermal routes. Inhalation of rotenone exposes bio-molecular components of lungs to this chemical. Biophysical activity of lungs is precisely regulated by pulmonary surfactant to facilitate gaseous exchange. Surfactant proteins (SPs) are the fundamental components of pulmonary surfactant. SPs like SP-A and SP-D have antimicrobial activities providing a crucial first line of defense against infections in lungs whereas SP-B and SP-C are mainly involved in respiratory cycle and reduction of surface tension at air–water interface. In this study, molecular docking analysis using AutoDock Vina has been conducted to investigate binding potential of rotenone with the four SPs. Results indicate that, rotenone can bind with carbohydrate recognition domain (CRD) of SP-A, N-, and C- terminal peptide of SP-B, SP-C, and CRD of SP-D at multiples sites via several interaction mediators such as H bonds, C–H bonds, alkyl bonds, pi-pi stacked, Van der Waals interaction, and other. Such interactions of rotenone with SPs can disrupt biophysical and anti-microbial functions of SPs in lungs that may invite respiratory ailments and pathogenic infections.
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spelling pubmed-86664592021-12-15 In silico study reveals binding potential of rotenone at multiple sites of pulmonary surfactant proteins: A matter of concern Rajak, Prem Roy, Sumedha Pal, Achintya Kumar Paramanik, Manas Dutta, Moumita Podder, Sayanti Sarkar, Saurabh Ganguly, Abhratanu Mandi, Moutushi Dutta, Anik Das, Kanchana Ghanty, Siddhartha Khatun, Salma Curr Res Toxicol Article Rotenone is a broad-spectrum pesticide employed in various agricultural practices all over the world. Human beings are exposed to this chemical through oral, nasal, and dermal routes. Inhalation of rotenone exposes bio-molecular components of lungs to this chemical. Biophysical activity of lungs is precisely regulated by pulmonary surfactant to facilitate gaseous exchange. Surfactant proteins (SPs) are the fundamental components of pulmonary surfactant. SPs like SP-A and SP-D have antimicrobial activities providing a crucial first line of defense against infections in lungs whereas SP-B and SP-C are mainly involved in respiratory cycle and reduction of surface tension at air–water interface. In this study, molecular docking analysis using AutoDock Vina has been conducted to investigate binding potential of rotenone with the four SPs. Results indicate that, rotenone can bind with carbohydrate recognition domain (CRD) of SP-A, N-, and C- terminal peptide of SP-B, SP-C, and CRD of SP-D at multiples sites via several interaction mediators such as H bonds, C–H bonds, alkyl bonds, pi-pi stacked, Van der Waals interaction, and other. Such interactions of rotenone with SPs can disrupt biophysical and anti-microbial functions of SPs in lungs that may invite respiratory ailments and pathogenic infections. Elsevier 2021-12-04 /pmc/articles/PMC8666459/ /pubmed/34917955 http://dx.doi.org/10.1016/j.crtox.2021.11.003 Text en © 2021 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Rajak, Prem
Roy, Sumedha
Pal, Achintya Kumar
Paramanik, Manas
Dutta, Moumita
Podder, Sayanti
Sarkar, Saurabh
Ganguly, Abhratanu
Mandi, Moutushi
Dutta, Anik
Das, Kanchana
Ghanty, Siddhartha
Khatun, Salma
In silico study reveals binding potential of rotenone at multiple sites of pulmonary surfactant proteins: A matter of concern
title In silico study reveals binding potential of rotenone at multiple sites of pulmonary surfactant proteins: A matter of concern
title_full In silico study reveals binding potential of rotenone at multiple sites of pulmonary surfactant proteins: A matter of concern
title_fullStr In silico study reveals binding potential of rotenone at multiple sites of pulmonary surfactant proteins: A matter of concern
title_full_unstemmed In silico study reveals binding potential of rotenone at multiple sites of pulmonary surfactant proteins: A matter of concern
title_short In silico study reveals binding potential of rotenone at multiple sites of pulmonary surfactant proteins: A matter of concern
title_sort in silico study reveals binding potential of rotenone at multiple sites of pulmonary surfactant proteins: a matter of concern
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8666459/
https://www.ncbi.nlm.nih.gov/pubmed/34917955
http://dx.doi.org/10.1016/j.crtox.2021.11.003
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