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Toward Structurally Novel and Metabolically Stable HIV-1 Capsid-Targeting Small Molecules

HIV-1 capsid protein (CA) plays an important role in many steps of viral replication and represents an appealing antiviral target. Several CA-targeting small molecules of various chemotypes have been studied, but the peptidomimetic PF74 has drawn particular interest due to its potent antiviral activ...

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Autores principales: Vernekar, Sanjeev Kumar V., Sahani, Rajkumar Lalji, Casey, Mary C., Kankanala, Jayakanth, Wang, Lei, Kirby, Karen A., Du, Haijuan, Zhang, Huanchun, Tedbury, Philip R., Xie, Jiashu, Sarafianos, Stefan G., Wang, Zhengqiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7232165/
https://www.ncbi.nlm.nih.gov/pubmed/32316297
http://dx.doi.org/10.3390/v12040452
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author Vernekar, Sanjeev Kumar V.
Sahani, Rajkumar Lalji
Casey, Mary C.
Kankanala, Jayakanth
Wang, Lei
Kirby, Karen A.
Du, Haijuan
Zhang, Huanchun
Tedbury, Philip R.
Xie, Jiashu
Sarafianos, Stefan G.
Wang, Zhengqiang
author_facet Vernekar, Sanjeev Kumar V.
Sahani, Rajkumar Lalji
Casey, Mary C.
Kankanala, Jayakanth
Wang, Lei
Kirby, Karen A.
Du, Haijuan
Zhang, Huanchun
Tedbury, Philip R.
Xie, Jiashu
Sarafianos, Stefan G.
Wang, Zhengqiang
author_sort Vernekar, Sanjeev Kumar V.
collection PubMed
description HIV-1 capsid protein (CA) plays an important role in many steps of viral replication and represents an appealing antiviral target. Several CA-targeting small molecules of various chemotypes have been studied, but the peptidomimetic PF74 has drawn particular interest due to its potent antiviral activity, well-characterized binding mode, and unique mechanism of action. Importantly, PF74 competes against important host factors for binding, conferring highly desirable antiviral phenotypes. However, further development of PF74 is hindered by its prohibitively poor metabolic stability, which necessitates the search for structurally novel and metabolically stable chemotypes. We have conducted a pharmacophore-based shape similarity search for compounds mimicking PF74. We report herein the analog synthesis and structure-activity relationship (SAR) of two hits from the search, and a third hit designed via molecular hybridization. All analogs were characterized for their effect on CA hexamer stability, antiviral activity, and cytotoxicity. These assays identified three active compounds that moderately stabilize CA hexamer and inhibit HIV-1. The most potent analog (10) inhibited HIV-1 comparably to PF74 but demonstrated drastically improved metabolic stability in liver microsomes (31 min vs. 0.7 min t(1/2)). Collectively, the current studies identified a structurally novel and metabolically stable PF74-like chemotype for targeting HIV-1 CA.
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spelling pubmed-72321652020-05-22 Toward Structurally Novel and Metabolically Stable HIV-1 Capsid-Targeting Small Molecules Vernekar, Sanjeev Kumar V. Sahani, Rajkumar Lalji Casey, Mary C. Kankanala, Jayakanth Wang, Lei Kirby, Karen A. Du, Haijuan Zhang, Huanchun Tedbury, Philip R. Xie, Jiashu Sarafianos, Stefan G. Wang, Zhengqiang Viruses Article HIV-1 capsid protein (CA) plays an important role in many steps of viral replication and represents an appealing antiviral target. Several CA-targeting small molecules of various chemotypes have been studied, but the peptidomimetic PF74 has drawn particular interest due to its potent antiviral activity, well-characterized binding mode, and unique mechanism of action. Importantly, PF74 competes against important host factors for binding, conferring highly desirable antiviral phenotypes. However, further development of PF74 is hindered by its prohibitively poor metabolic stability, which necessitates the search for structurally novel and metabolically stable chemotypes. We have conducted a pharmacophore-based shape similarity search for compounds mimicking PF74. We report herein the analog synthesis and structure-activity relationship (SAR) of two hits from the search, and a third hit designed via molecular hybridization. All analogs were characterized for their effect on CA hexamer stability, antiviral activity, and cytotoxicity. These assays identified three active compounds that moderately stabilize CA hexamer and inhibit HIV-1. The most potent analog (10) inhibited HIV-1 comparably to PF74 but demonstrated drastically improved metabolic stability in liver microsomes (31 min vs. 0.7 min t(1/2)). Collectively, the current studies identified a structurally novel and metabolically stable PF74-like chemotype for targeting HIV-1 CA. MDPI 2020-04-16 /pmc/articles/PMC7232165/ /pubmed/32316297 http://dx.doi.org/10.3390/v12040452 Text en © 2020 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
Vernekar, Sanjeev Kumar V.
Sahani, Rajkumar Lalji
Casey, Mary C.
Kankanala, Jayakanth
Wang, Lei
Kirby, Karen A.
Du, Haijuan
Zhang, Huanchun
Tedbury, Philip R.
Xie, Jiashu
Sarafianos, Stefan G.
Wang, Zhengqiang
Toward Structurally Novel and Metabolically Stable HIV-1 Capsid-Targeting Small Molecules
title Toward Structurally Novel and Metabolically Stable HIV-1 Capsid-Targeting Small Molecules
title_full Toward Structurally Novel and Metabolically Stable HIV-1 Capsid-Targeting Small Molecules
title_fullStr Toward Structurally Novel and Metabolically Stable HIV-1 Capsid-Targeting Small Molecules
title_full_unstemmed Toward Structurally Novel and Metabolically Stable HIV-1 Capsid-Targeting Small Molecules
title_short Toward Structurally Novel and Metabolically Stable HIV-1 Capsid-Targeting Small Molecules
title_sort toward structurally novel and metabolically stable hiv-1 capsid-targeting small molecules
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7232165/
https://www.ncbi.nlm.nih.gov/pubmed/32316297
http://dx.doi.org/10.3390/v12040452
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