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Myxobacterial depsipeptide chondramides interrupt SARS-CoV-2 entry by targeting its broad, cell tropic spike protein.
Fernandez, Rey Arturo; Quimque, Mark Tristan; Notarte, Kin Israel; Manzano, Joe Anthony; Pilapil, Delfin Yñigo; de Leon, Von Novi; San Jose, John Jeric; Villalobos, Omar; Muralidharan, Nisha Harur; Gromiha, M Michael; Brogi, Simone; Macabeo, Allan Patrick G.
Afiliação
  • Fernandez RA; Laboratory for Organic Reactivity, Discovery and Synthesis (LORDS), Research Center for the Natural and Applied Sciences, University of Santo Tomas, Manila, Philippines.
  • Quimque MT; Laboratory for Organic Reactivity, Discovery and Synthesis (LORDS), Research Center for the Natural and Applied Sciences, University of Santo Tomas, Manila, Philippines.
  • Notarte KI; The Graduate School, University of Santo Tomas, Manila, Philippines.
  • Manzano JA; Chemistry Department, College of Science and Mathematics, Mindanao State University - Iligan Institute of Technology, Tibanga, Iligan City, Philippines.
  • Pilapil DY; Faculty of Medicine and Surgery, University of Santo Tomas, Manila, Philippines.
  • de Leon VN; Laboratory for Organic Reactivity, Discovery and Synthesis (LORDS), Research Center for the Natural and Applied Sciences, University of Santo Tomas, Manila, Philippines.
  • San Jose JJ; Department of Biological Sciences, College of Science, University of Santo Tomas, Manila, Philippines.
  • Villalobos O; Laboratory for Organic Reactivity, Discovery and Synthesis (LORDS), Research Center for the Natural and Applied Sciences, University of Santo Tomas, Manila, Philippines.
  • Muralidharan NH; Department of Biological Sciences, College of Science, University of Santo Tomas, Manila, Philippines.
  • Gromiha MM; Laboratory for Organic Reactivity, Discovery and Synthesis (LORDS), Research Center for the Natural and Applied Sciences, University of Santo Tomas, Manila, Philippines.
  • Brogi S; Department of Biological Sciences, College of Science, University of Santo Tomas, Manila, Philippines.
  • Macabeo APG; Laboratory for Organic Reactivity, Discovery and Synthesis (LORDS), Research Center for the Natural and Applied Sciences, University of Santo Tomas, Manila, Philippines.
J Biomol Struct Dyn ; 40(22): 12209-12220, 2022.
Article em En | MEDLINE | ID: mdl-34463219
The severity of the COVID-19 pandemic has necessitated the search for drugs against SARS-CoV-2. In this study, we explored via in silico approaches myxobacterial secondary metabolites against various receptor-binding regions of SARS-CoV-2 spike which are responsible in recognition and attachment to host cell receptors mechanisms, namely ACE2, GRP78, and NRP1. In general, cyclic depsipeptide chondramides conferred high affinities toward the spike RBD, showing strong binding to the known viral hot spots Arg403, Gln493 and Gln498 and better selectivity compared to most host cell receptors studied. Among them, chondramide C3 (1) exhibited a binding energy which remained relatively constant when docked against most of the spike variants. Chondramide C (2) on the other hand exhibited strong affinity against spike variants identified in the United Kingdom (N501Y), South Africa (N501Y, E484K, K417N) and Brazil (N501Y, E484K, K417T). Chondramide C6 (9) showed highest BE towards GRP78 RBD. Molecular dynamics simulations were also performed for chondramides 1 and 2 against SARS-CoV-2 spike RBD of the Wuhan wild-type and the South African variant, respectively, where resulting complexes demonstrated dynamic stability within a 120-ns simulation time. Protein-protein binding experiments using HADDOCK illustrated weaker binding affinity for complexed chondramide ligands in the RBD against the studied host cell receptors. The chondramide derivatives in general possessed favorable pharmacokinetic properties, highlighting their potential as prototypic anti-COVID-19 drugs limiting viral attachment and possibly minimizing viral infection.Communicated by Ramaswamy H. Sarma.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Depsipeptídeos / COVID-19 Limite: Humans Idioma: En Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Depsipeptídeos / COVID-19 Limite: Humans Idioma: En Ano de publicação: 2022 Tipo de documento: Article