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A New Class of Multimerization Selective Inhibitors of HIV-1 Integrase

The quinoline-based allosteric HIV-1 integrase (IN) inhibitors (ALLINIs) are promising candidates for clinically useful antiviral agents. Studies using these compounds have highlighted the role of IN in both early and late stages of virus replication. However, dissecting the exact mechanism of actio...

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Autores principales: Sharma, Amit, Slaughter, Alison, Jena, Nivedita, Feng, Lei, Kessl, Jacques J., Fadel, Hind J., Malani, Nirav, Male, Frances, Wu, Li, Poeschla, Eric, Bushman, Frederic D., Fuchs, James R., Kvaratskhelia, Mamuka
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4038613/
https://www.ncbi.nlm.nih.gov/pubmed/24874515
http://dx.doi.org/10.1371/journal.ppat.1004171
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author Sharma, Amit
Slaughter, Alison
Jena, Nivedita
Feng, Lei
Kessl, Jacques J.
Fadel, Hind J.
Malani, Nirav
Male, Frances
Wu, Li
Poeschla, Eric
Bushman, Frederic D.
Fuchs, James R.
Kvaratskhelia, Mamuka
author_facet Sharma, Amit
Slaughter, Alison
Jena, Nivedita
Feng, Lei
Kessl, Jacques J.
Fadel, Hind J.
Malani, Nirav
Male, Frances
Wu, Li
Poeschla, Eric
Bushman, Frederic D.
Fuchs, James R.
Kvaratskhelia, Mamuka
author_sort Sharma, Amit
collection PubMed
description The quinoline-based allosteric HIV-1 integrase (IN) inhibitors (ALLINIs) are promising candidates for clinically useful antiviral agents. Studies using these compounds have highlighted the role of IN in both early and late stages of virus replication. However, dissecting the exact mechanism of action of the quinoline-based ALLINIs has been complicated by the multifunctional nature of these inhibitors because they both inhibit IN binding with its cofactor LEDGF/p75 and promote aberrant IN multimerization with similar potencies in vitro. Here we report design of small molecules that allowed us to probe the role of HIV-1 IN multimerization independently from IN-LEDGF/p75 interactions in infected cells. We altered the rigid quinoline moiety in ALLINIs and designed pyridine-based molecules with a rotatable single bond to allow these compounds to bridge between interacting IN subunits optimally and promote oligomerization. The most potent pyridine-based inhibitor, KF116, potently (EC(50) of 0.024 µM) blocked HIV-1 replication by inducing aberrant IN multimerization in virus particles, whereas it was not effective when added to target cells. Furthermore, KF116 inhibited the HIV-1 IN variant with the A128T substitution, which confers resistance to the majority of quinoline-based ALLINIs. A genome-wide HIV-1 integration site analysis demonstrated that addition of KF116 to target or producer cells did not affect LEDGF/p75-dependent HIV-1 integration in host chromosomes, indicating that this compound is not detectably inhibiting IN-LEDGF/p75 binding. These findings delineate the significance of correctly ordered IN structure for HIV-1 particle morphogenesis and demonstrate feasibility of exploiting IN multimerization as a therapeutic target. Furthermore, pyridine-based compounds present a novel class of multimerization selective IN inhibitors as investigational probes for HIV-1 molecular biology.
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spelling pubmed-40386132014-06-05 A New Class of Multimerization Selective Inhibitors of HIV-1 Integrase Sharma, Amit Slaughter, Alison Jena, Nivedita Feng, Lei Kessl, Jacques J. Fadel, Hind J. Malani, Nirav Male, Frances Wu, Li Poeschla, Eric Bushman, Frederic D. Fuchs, James R. Kvaratskhelia, Mamuka PLoS Pathog Research Article The quinoline-based allosteric HIV-1 integrase (IN) inhibitors (ALLINIs) are promising candidates for clinically useful antiviral agents. Studies using these compounds have highlighted the role of IN in both early and late stages of virus replication. However, dissecting the exact mechanism of action of the quinoline-based ALLINIs has been complicated by the multifunctional nature of these inhibitors because they both inhibit IN binding with its cofactor LEDGF/p75 and promote aberrant IN multimerization with similar potencies in vitro. Here we report design of small molecules that allowed us to probe the role of HIV-1 IN multimerization independently from IN-LEDGF/p75 interactions in infected cells. We altered the rigid quinoline moiety in ALLINIs and designed pyridine-based molecules with a rotatable single bond to allow these compounds to bridge between interacting IN subunits optimally and promote oligomerization. The most potent pyridine-based inhibitor, KF116, potently (EC(50) of 0.024 µM) blocked HIV-1 replication by inducing aberrant IN multimerization in virus particles, whereas it was not effective when added to target cells. Furthermore, KF116 inhibited the HIV-1 IN variant with the A128T substitution, which confers resistance to the majority of quinoline-based ALLINIs. A genome-wide HIV-1 integration site analysis demonstrated that addition of KF116 to target or producer cells did not affect LEDGF/p75-dependent HIV-1 integration in host chromosomes, indicating that this compound is not detectably inhibiting IN-LEDGF/p75 binding. These findings delineate the significance of correctly ordered IN structure for HIV-1 particle morphogenesis and demonstrate feasibility of exploiting IN multimerization as a therapeutic target. Furthermore, pyridine-based compounds present a novel class of multimerization selective IN inhibitors as investigational probes for HIV-1 molecular biology. Public Library of Science 2014-05-29 /pmc/articles/PMC4038613/ /pubmed/24874515 http://dx.doi.org/10.1371/journal.ppat.1004171 Text en © 2014 Sharma et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Sharma, Amit
Slaughter, Alison
Jena, Nivedita
Feng, Lei
Kessl, Jacques J.
Fadel, Hind J.
Malani, Nirav
Male, Frances
Wu, Li
Poeschla, Eric
Bushman, Frederic D.
Fuchs, James R.
Kvaratskhelia, Mamuka
A New Class of Multimerization Selective Inhibitors of HIV-1 Integrase
title A New Class of Multimerization Selective Inhibitors of HIV-1 Integrase
title_full A New Class of Multimerization Selective Inhibitors of HIV-1 Integrase
title_fullStr A New Class of Multimerization Selective Inhibitors of HIV-1 Integrase
title_full_unstemmed A New Class of Multimerization Selective Inhibitors of HIV-1 Integrase
title_short A New Class of Multimerization Selective Inhibitors of HIV-1 Integrase
title_sort new class of multimerization selective inhibitors of hiv-1 integrase
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4038613/
https://www.ncbi.nlm.nih.gov/pubmed/24874515
http://dx.doi.org/10.1371/journal.ppat.1004171
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