Cargando…
Molecular docking and molecular dynamics study Lianhua Qingwen granules (LHQW) treats COVID-19 by inhibiting inflammatory response and regulating cell survival
PURPOSE: 2019 Coronavirus disease (COVID-19) is endangering health of populations worldwide. Latest research has proved that Lianhua Qingwen granules (LHQW) can reduce tissue damage caused by inflammatory reactions and relieve patients’ clinical symptoms. However, the mechanism of LHQW treats COVID-...
Autores principales: | , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Frontiers Media S.A.
2022
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9729774/ https://www.ncbi.nlm.nih.gov/pubmed/36506032 http://dx.doi.org/10.3389/fcimb.2022.1044770 |
_version_ | 1784845542549880832 |
---|---|
author | Cao, Jun-Feng Gong, Yunli Wu, Mei Xiong, Li Chen, Shengyan Huang, Haonan Zhou, Xinge Peng, Ying-chun Shen, Xue-fang Qu, Jinyu Wang, Yi-li Zhang, Xiao |
author_facet | Cao, Jun-Feng Gong, Yunli Wu, Mei Xiong, Li Chen, Shengyan Huang, Haonan Zhou, Xinge Peng, Ying-chun Shen, Xue-fang Qu, Jinyu Wang, Yi-li Zhang, Xiao |
author_sort | Cao, Jun-Feng |
collection | PubMed |
description | PURPOSE: 2019 Coronavirus disease (COVID-19) is endangering health of populations worldwide. Latest research has proved that Lianhua Qingwen granules (LHQW) can reduce tissue damage caused by inflammatory reactions and relieve patients’ clinical symptoms. However, the mechanism of LHQW treats COVID-19 is currently lacking. Therefore, we employed computer simulations to investigate the mechanism of LHQW treats COVID-19 by modulating inflammatory response. METHODS: We employed bioinformatics to screen active ingredients in LHQW and intersection gene targets. PPI, GO and KEGG was used to analyze relationship of intersection gene targets. Molecular dynamics simulations validated the binding stability of active ingredients and target proteins. Binding free energy, radius of gyration and the solvent accessible surface area were analyzed by supercomputer platform. RESULTS: COVID-19 had 4628 gene targets, LHQW had 1409 gene targets, intersection gene targets were 415. Bioinformatics analysis showed that intersection targets were closely related to inflammation and immunomodulatory. Molecular docking suggested that active ingredients (including: licopyranocoumarin, Glycyrol and 3-3-Oxopropanoic acid) in LHQW played a role in treating COVID-19 by acting on CSF2, CXCL8, CCR5, NLRP3, IFNG and TNF. Molecular dynamics was used to prove the binding stability of active ingredients and protein targets. CONCLUSION: The mechanism of active ingredients in LHQW treats COVID-19 was investigated by computer simulations. We found that active ingredients in LHQW not only reduce cell damage and tissue destruction by inhibiting the inflammatory response through CSF2, CXCL8, CCR5 and IFNG, but also regulate cell survival and growth through NLRP3 and TNF thereby reducing apoptosis. |
format | Online Article Text |
id | pubmed-9729774 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | Frontiers Media S.A. |
record_format | MEDLINE/PubMed |
spelling | pubmed-97297742022-12-09 Molecular docking and molecular dynamics study Lianhua Qingwen granules (LHQW) treats COVID-19 by inhibiting inflammatory response and regulating cell survival Cao, Jun-Feng Gong, Yunli Wu, Mei Xiong, Li Chen, Shengyan Huang, Haonan Zhou, Xinge Peng, Ying-chun Shen, Xue-fang Qu, Jinyu Wang, Yi-li Zhang, Xiao Front Cell Infect Microbiol Cellular and Infection Microbiology PURPOSE: 2019 Coronavirus disease (COVID-19) is endangering health of populations worldwide. Latest research has proved that Lianhua Qingwen granules (LHQW) can reduce tissue damage caused by inflammatory reactions and relieve patients’ clinical symptoms. However, the mechanism of LHQW treats COVID-19 is currently lacking. Therefore, we employed computer simulations to investigate the mechanism of LHQW treats COVID-19 by modulating inflammatory response. METHODS: We employed bioinformatics to screen active ingredients in LHQW and intersection gene targets. PPI, GO and KEGG was used to analyze relationship of intersection gene targets. Molecular dynamics simulations validated the binding stability of active ingredients and target proteins. Binding free energy, radius of gyration and the solvent accessible surface area were analyzed by supercomputer platform. RESULTS: COVID-19 had 4628 gene targets, LHQW had 1409 gene targets, intersection gene targets were 415. Bioinformatics analysis showed that intersection targets were closely related to inflammation and immunomodulatory. Molecular docking suggested that active ingredients (including: licopyranocoumarin, Glycyrol and 3-3-Oxopropanoic acid) in LHQW played a role in treating COVID-19 by acting on CSF2, CXCL8, CCR5, NLRP3, IFNG and TNF. Molecular dynamics was used to prove the binding stability of active ingredients and protein targets. CONCLUSION: The mechanism of active ingredients in LHQW treats COVID-19 was investigated by computer simulations. We found that active ingredients in LHQW not only reduce cell damage and tissue destruction by inhibiting the inflammatory response through CSF2, CXCL8, CCR5 and IFNG, but also regulate cell survival and growth through NLRP3 and TNF thereby reducing apoptosis. Frontiers Media S.A. 2022-11-24 /pmc/articles/PMC9729774/ /pubmed/36506032 http://dx.doi.org/10.3389/fcimb.2022.1044770 Text en Copyright © 2022 Cao, Gong, Wu, Xiong, Chen, Huang, Zhou, Peng, Shen, Qu, Wang and Zhang https://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 | Cellular and Infection Microbiology Cao, Jun-Feng Gong, Yunli Wu, Mei Xiong, Li Chen, Shengyan Huang, Haonan Zhou, Xinge Peng, Ying-chun Shen, Xue-fang Qu, Jinyu Wang, Yi-li Zhang, Xiao Molecular docking and molecular dynamics study Lianhua Qingwen granules (LHQW) treats COVID-19 by inhibiting inflammatory response and regulating cell survival |
title | Molecular docking and molecular dynamics study Lianhua Qingwen granules (LHQW) treats COVID-19 by inhibiting inflammatory response and regulating cell survival |
title_full | Molecular docking and molecular dynamics study Lianhua Qingwen granules (LHQW) treats COVID-19 by inhibiting inflammatory response and regulating cell survival |
title_fullStr | Molecular docking and molecular dynamics study Lianhua Qingwen granules (LHQW) treats COVID-19 by inhibiting inflammatory response and regulating cell survival |
title_full_unstemmed | Molecular docking and molecular dynamics study Lianhua Qingwen granules (LHQW) treats COVID-19 by inhibiting inflammatory response and regulating cell survival |
title_short | Molecular docking and molecular dynamics study Lianhua Qingwen granules (LHQW) treats COVID-19 by inhibiting inflammatory response and regulating cell survival |
title_sort | molecular docking and molecular dynamics study lianhua qingwen granules (lhqw) treats covid-19 by inhibiting inflammatory response and regulating cell survival |
topic | Cellular and Infection Microbiology |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9729774/ https://www.ncbi.nlm.nih.gov/pubmed/36506032 http://dx.doi.org/10.3389/fcimb.2022.1044770 |
work_keys_str_mv | AT caojunfeng moleculardockingandmoleculardynamicsstudylianhuaqingwengranuleslhqwtreatscovid19byinhibitinginflammatoryresponseandregulatingcellsurvival AT gongyunli moleculardockingandmoleculardynamicsstudylianhuaqingwengranuleslhqwtreatscovid19byinhibitinginflammatoryresponseandregulatingcellsurvival AT wumei moleculardockingandmoleculardynamicsstudylianhuaqingwengranuleslhqwtreatscovid19byinhibitinginflammatoryresponseandregulatingcellsurvival AT xiongli moleculardockingandmoleculardynamicsstudylianhuaqingwengranuleslhqwtreatscovid19byinhibitinginflammatoryresponseandregulatingcellsurvival AT chenshengyan moleculardockingandmoleculardynamicsstudylianhuaqingwengranuleslhqwtreatscovid19byinhibitinginflammatoryresponseandregulatingcellsurvival AT huanghaonan moleculardockingandmoleculardynamicsstudylianhuaqingwengranuleslhqwtreatscovid19byinhibitinginflammatoryresponseandregulatingcellsurvival AT zhouxinge moleculardockingandmoleculardynamicsstudylianhuaqingwengranuleslhqwtreatscovid19byinhibitinginflammatoryresponseandregulatingcellsurvival AT pengyingchun moleculardockingandmoleculardynamicsstudylianhuaqingwengranuleslhqwtreatscovid19byinhibitinginflammatoryresponseandregulatingcellsurvival AT shenxuefang moleculardockingandmoleculardynamicsstudylianhuaqingwengranuleslhqwtreatscovid19byinhibitinginflammatoryresponseandregulatingcellsurvival AT qujinyu moleculardockingandmoleculardynamicsstudylianhuaqingwengranuleslhqwtreatscovid19byinhibitinginflammatoryresponseandregulatingcellsurvival AT wangyili moleculardockingandmoleculardynamicsstudylianhuaqingwengranuleslhqwtreatscovid19byinhibitinginflammatoryresponseandregulatingcellsurvival AT zhangxiao moleculardockingandmoleculardynamicsstudylianhuaqingwengranuleslhqwtreatscovid19byinhibitinginflammatoryresponseandregulatingcellsurvival |