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Pierce into Structural Changes of Interactions Between Mutated Spike Glycoproteins and ACE2 to Evaluate Its Potential Biological and Therapeutic Consequences

The structural consequences of ongoing mutations on the SARS-CoV-2 spike-protein remains to be fully elucidated. These mutations could change the binding affinity between the virus and its target cell. Moreover, obtaining new mutations would also change the therapeutic efficacy of the designed drug...

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Autores principales: Hashemi, Zahra Sadat, Zarei, Mahboubeh, Mubarak, Shaden M. H., Hessami, Anahita, Mard-Soltani, Maysam, Khalesi, Bahman, Zakeri, Alireza, Rahbar, Mohammad Reza, Jahangiri, Abolfazl, Pourzardosht, Navid, Khalili, Saeed
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Netherlands 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8674523/
https://www.ncbi.nlm.nih.gov/pubmed/34931119
http://dx.doi.org/10.1007/s10989-021-10346-1
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author Hashemi, Zahra Sadat
Zarei, Mahboubeh
Mubarak, Shaden M. H.
Hessami, Anahita
Mard-Soltani, Maysam
Khalesi, Bahman
Zakeri, Alireza
Rahbar, Mohammad Reza
Jahangiri, Abolfazl
Pourzardosht, Navid
Khalili, Saeed
author_facet Hashemi, Zahra Sadat
Zarei, Mahboubeh
Mubarak, Shaden M. H.
Hessami, Anahita
Mard-Soltani, Maysam
Khalesi, Bahman
Zakeri, Alireza
Rahbar, Mohammad Reza
Jahangiri, Abolfazl
Pourzardosht, Navid
Khalili, Saeed
author_sort Hashemi, Zahra Sadat
collection PubMed
description The structural consequences of ongoing mutations on the SARS-CoV-2 spike-protein remains to be fully elucidated. These mutations could change the binding affinity between the virus and its target cell. Moreover, obtaining new mutations would also change the therapeutic efficacy of the designed drug candidates. To evaluate these consequences, 3D structure of a mutant spike protein was predicted and checked for stability, cavity sites, and residue depth. The docking analyses were performed between the 3D model of the mutated spike protein and the ACE2 protein and an engineered therapeutic ACE2 against COVID-19. The obtained results revealed that the N501Y substitution has altered the interaction orientation, augmented the number of interface bonds, and increased the affinity against the ACE2. On the other hand, the P681H mutation contributed to the increased cavity size and relatively higher residue depth. The binding affinity between the engineered therapeutic ACE2 and the mutant spike was significantly higher with a distinguished binding orientation. It could be concluded that the mutant spike protein increased the affinity, preserved the location, changed the orientation, and altered the interface amino acids of its interaction with both the ACE2 and its therapeutic engineered version. The obtained results corroborate the more aggressive nature of mutated SARS-CoV-2 due to their higher binding affinity. Moreover, designed ACe2-baased therapeutics would be still highly effective against covid-19, which could be the result of conserved nature of cellular ACE2. SUPPLEMENTARY INFORMATION: The online version contains supplementary material available at 10.1007/s10989-021-10346-1.
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spelling pubmed-86745232021-12-16 Pierce into Structural Changes of Interactions Between Mutated Spike Glycoproteins and ACE2 to Evaluate Its Potential Biological and Therapeutic Consequences Hashemi, Zahra Sadat Zarei, Mahboubeh Mubarak, Shaden M. H. Hessami, Anahita Mard-Soltani, Maysam Khalesi, Bahman Zakeri, Alireza Rahbar, Mohammad Reza Jahangiri, Abolfazl Pourzardosht, Navid Khalili, Saeed Int J Pept Res Ther Article The structural consequences of ongoing mutations on the SARS-CoV-2 spike-protein remains to be fully elucidated. These mutations could change the binding affinity between the virus and its target cell. Moreover, obtaining new mutations would also change the therapeutic efficacy of the designed drug candidates. To evaluate these consequences, 3D structure of a mutant spike protein was predicted and checked for stability, cavity sites, and residue depth. The docking analyses were performed between the 3D model of the mutated spike protein and the ACE2 protein and an engineered therapeutic ACE2 against COVID-19. The obtained results revealed that the N501Y substitution has altered the interaction orientation, augmented the number of interface bonds, and increased the affinity against the ACE2. On the other hand, the P681H mutation contributed to the increased cavity size and relatively higher residue depth. The binding affinity between the engineered therapeutic ACE2 and the mutant spike was significantly higher with a distinguished binding orientation. It could be concluded that the mutant spike protein increased the affinity, preserved the location, changed the orientation, and altered the interface amino acids of its interaction with both the ACE2 and its therapeutic engineered version. The obtained results corroborate the more aggressive nature of mutated SARS-CoV-2 due to their higher binding affinity. Moreover, designed ACe2-baased therapeutics would be still highly effective against covid-19, which could be the result of conserved nature of cellular ACE2. SUPPLEMENTARY INFORMATION: The online version contains supplementary material available at 10.1007/s10989-021-10346-1. Springer Netherlands 2021-12-16 2022 /pmc/articles/PMC8674523/ /pubmed/34931119 http://dx.doi.org/10.1007/s10989-021-10346-1 Text en © The Author(s), under exclusive licence to Springer Nature B.V. 2021 This article is made available via the PMC Open Access Subset for unrestricted research re-use and secondary analysis in any form or by any means with acknowledgement of the original source. These permissions are granted for the duration of the World Health Organization (WHO) declaration of COVID-19 as a global pandemic.
spellingShingle Article
Hashemi, Zahra Sadat
Zarei, Mahboubeh
Mubarak, Shaden M. H.
Hessami, Anahita
Mard-Soltani, Maysam
Khalesi, Bahman
Zakeri, Alireza
Rahbar, Mohammad Reza
Jahangiri, Abolfazl
Pourzardosht, Navid
Khalili, Saeed
Pierce into Structural Changes of Interactions Between Mutated Spike Glycoproteins and ACE2 to Evaluate Its Potential Biological and Therapeutic Consequences
title Pierce into Structural Changes of Interactions Between Mutated Spike Glycoproteins and ACE2 to Evaluate Its Potential Biological and Therapeutic Consequences
title_full Pierce into Structural Changes of Interactions Between Mutated Spike Glycoproteins and ACE2 to Evaluate Its Potential Biological and Therapeutic Consequences
title_fullStr Pierce into Structural Changes of Interactions Between Mutated Spike Glycoproteins and ACE2 to Evaluate Its Potential Biological and Therapeutic Consequences
title_full_unstemmed Pierce into Structural Changes of Interactions Between Mutated Spike Glycoproteins and ACE2 to Evaluate Its Potential Biological and Therapeutic Consequences
title_short Pierce into Structural Changes of Interactions Between Mutated Spike Glycoproteins and ACE2 to Evaluate Its Potential Biological and Therapeutic Consequences
title_sort pierce into structural changes of interactions between mutated spike glycoproteins and ace2 to evaluate its potential biological and therapeutic consequences
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8674523/
https://www.ncbi.nlm.nih.gov/pubmed/34931119
http://dx.doi.org/10.1007/s10989-021-10346-1
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