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Inhibition of HIV-1 infection in humanized mice and metabolic stability of protein phosphatase-1-targeting small molecule 1E7-03

We recently identified the protein phosphatase-1 - targeting compound, 1E7-03 which inhibited HIV-1 in vitro. Here, we investigated the effect of 1E7-03 on HIV-1 infection in vivo by analyzing its metabolic stability and antiviral activity of 1E7-03 and its metabolites in HIV-1 infected NSG-humanize...

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Autores principales: Lin, Xionghao, Kumari, Namita, DeMarino, Catherine, Kont, Yasemin Saygideğer, Ammosova, Tatiana, Kulkarni, Amol, Jerebtsova, Marina, Vazquez-Meves, Guelaguetza, Ivanov, Andrey, Dmytro, Kovalskyy, Üren, Aykut, Kashanchi, Fatah, Nekhai, Sergei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5652740/
https://www.ncbi.nlm.nih.gov/pubmed/29100346
http://dx.doi.org/10.18632/oncotarget.19999
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author Lin, Xionghao
Kumari, Namita
DeMarino, Catherine
Kont, Yasemin Saygideğer
Ammosova, Tatiana
Kulkarni, Amol
Jerebtsova, Marina
Vazquez-Meves, Guelaguetza
Ivanov, Andrey
Dmytro, Kovalskyy
Üren, Aykut
Kashanchi, Fatah
Nekhai, Sergei
author_facet Lin, Xionghao
Kumari, Namita
DeMarino, Catherine
Kont, Yasemin Saygideğer
Ammosova, Tatiana
Kulkarni, Amol
Jerebtsova, Marina
Vazquez-Meves, Guelaguetza
Ivanov, Andrey
Dmytro, Kovalskyy
Üren, Aykut
Kashanchi, Fatah
Nekhai, Sergei
author_sort Lin, Xionghao
collection PubMed
description We recently identified the protein phosphatase-1 - targeting compound, 1E7-03 which inhibited HIV-1 in vitro. Here, we investigated the effect of 1E7-03 on HIV-1 infection in vivo by analyzing its metabolic stability and antiviral activity of 1E7-03 and its metabolites in HIV-1 infected NSG-humanized mice. 1E7-03 was degraded in serum and formed two major degradation products, DP1 and DP3, which bound protein phosphatase-1 in vitro. However, their anti-viral activities were significantly reduced due to inefficient cell permeability. In cultured cells, 1E7-03 reduced expression of several protein phosphatase-1 regulatory subunits including Sds22 as determined by a label free quantitative proteomics analysis. In HIV-1-infected humanized mice, 1E7-03 significantly reduced plasma HIV-1 RNA levels, similar to the previously described HIV-1 transcription inhibitor F07#13. We synthesized a DP1 analog, DP1-07 with a truncated side chain, which showed improved cell permeability and longer pharmacokinetic retention in mice. But DP1-07 was less efficient than 1E7-03 as a HIV-1 inhibitor both in vitro and in vivo, indicating that the full side chain of 1E7-03 was essential for its anti-HIV activity. Analysis of 1E7-03 stability in plasma and liver microsomes showed that the compound was stable in human, primate and ferret plasma but not in rodent plasma. However, 1E7-03 was not stable in human liver microsomes. Our findings suggest that 1E7-03 is a good candidate for future development of HIV-1 transcription inhibitors. Further structural modification and advanced formulations are needed to improve its metabolic stability and enhance its antiviral activity in non-human primate animals and humans.
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spelling pubmed-56527402017-11-02 Inhibition of HIV-1 infection in humanized mice and metabolic stability of protein phosphatase-1-targeting small molecule 1E7-03 Lin, Xionghao Kumari, Namita DeMarino, Catherine Kont, Yasemin Saygideğer Ammosova, Tatiana Kulkarni, Amol Jerebtsova, Marina Vazquez-Meves, Guelaguetza Ivanov, Andrey Dmytro, Kovalskyy Üren, Aykut Kashanchi, Fatah Nekhai, Sergei Oncotarget Research Paper We recently identified the protein phosphatase-1 - targeting compound, 1E7-03 which inhibited HIV-1 in vitro. Here, we investigated the effect of 1E7-03 on HIV-1 infection in vivo by analyzing its metabolic stability and antiviral activity of 1E7-03 and its metabolites in HIV-1 infected NSG-humanized mice. 1E7-03 was degraded in serum and formed two major degradation products, DP1 and DP3, which bound protein phosphatase-1 in vitro. However, their anti-viral activities were significantly reduced due to inefficient cell permeability. In cultured cells, 1E7-03 reduced expression of several protein phosphatase-1 regulatory subunits including Sds22 as determined by a label free quantitative proteomics analysis. In HIV-1-infected humanized mice, 1E7-03 significantly reduced plasma HIV-1 RNA levels, similar to the previously described HIV-1 transcription inhibitor F07#13. We synthesized a DP1 analog, DP1-07 with a truncated side chain, which showed improved cell permeability and longer pharmacokinetic retention in mice. But DP1-07 was less efficient than 1E7-03 as a HIV-1 inhibitor both in vitro and in vivo, indicating that the full side chain of 1E7-03 was essential for its anti-HIV activity. Analysis of 1E7-03 stability in plasma and liver microsomes showed that the compound was stable in human, primate and ferret plasma but not in rodent plasma. However, 1E7-03 was not stable in human liver microsomes. Our findings suggest that 1E7-03 is a good candidate for future development of HIV-1 transcription inhibitors. Further structural modification and advanced formulations are needed to improve its metabolic stability and enhance its antiviral activity in non-human primate animals and humans. Impact Journals LLC 2017-08-07 /pmc/articles/PMC5652740/ /pubmed/29100346 http://dx.doi.org/10.18632/oncotarget.19999 Text en Copyright: © 2017 Lin et al. http://creativecommons.org/licenses/by/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License 3.0 (http://creativecommons.org/licenses/by/3.0/) (CC BY 3.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper
Lin, Xionghao
Kumari, Namita
DeMarino, Catherine
Kont, Yasemin Saygideğer
Ammosova, Tatiana
Kulkarni, Amol
Jerebtsova, Marina
Vazquez-Meves, Guelaguetza
Ivanov, Andrey
Dmytro, Kovalskyy
Üren, Aykut
Kashanchi, Fatah
Nekhai, Sergei
Inhibition of HIV-1 infection in humanized mice and metabolic stability of protein phosphatase-1-targeting small molecule 1E7-03
title Inhibition of HIV-1 infection in humanized mice and metabolic stability of protein phosphatase-1-targeting small molecule 1E7-03
title_full Inhibition of HIV-1 infection in humanized mice and metabolic stability of protein phosphatase-1-targeting small molecule 1E7-03
title_fullStr Inhibition of HIV-1 infection in humanized mice and metabolic stability of protein phosphatase-1-targeting small molecule 1E7-03
title_full_unstemmed Inhibition of HIV-1 infection in humanized mice and metabolic stability of protein phosphatase-1-targeting small molecule 1E7-03
title_short Inhibition of HIV-1 infection in humanized mice and metabolic stability of protein phosphatase-1-targeting small molecule 1E7-03
title_sort inhibition of hiv-1 infection in humanized mice and metabolic stability of protein phosphatase-1-targeting small molecule 1e7-03
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5652740/
https://www.ncbi.nlm.nih.gov/pubmed/29100346
http://dx.doi.org/10.18632/oncotarget.19999
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