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Physiologically relevant orthogonal assays for the discovery of small-molecule modulators of WIP1 phosphatase in high-throughput screens

WT P53-Induced Phosphatase 1 (WIP1) is a member of the magnesium-dependent serine/threonine protein phosphatase (PPM) family and is induced by P53 in response to DNA damage. In several human cancers, the WIP1 protein is overexpressed, which is generally associated with a worse prognosis. Although WI...

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Autores principales: Clausse, Victor, Tao, Dingyin, Debnath, Subrata, Fang, Yuhong, Tagad, Harichandra D., Wang, Yuhong, Sun, Hongmao, LeClair, Christopher A., Mazur, Sharlyn J., Lane, Kelly, Shi, Zhen-Dan, Vasalatiy, Olga, Eells, Rebecca, Baker, Lynn K., Henderson, Mark J., Webb, Martin R., Shen, Min, Hall, Matthew D., Appella, Ettore, Appella, Daniel H., Coussens, Nathan P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6873202/
https://www.ncbi.nlm.nih.gov/pubmed/31481464
http://dx.doi.org/10.1074/jbc.RA119.010201
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author Clausse, Victor
Tao, Dingyin
Debnath, Subrata
Fang, Yuhong
Tagad, Harichandra D.
Wang, Yuhong
Sun, Hongmao
LeClair, Christopher A.
Mazur, Sharlyn J.
Lane, Kelly
Shi, Zhen-Dan
Vasalatiy, Olga
Eells, Rebecca
Baker, Lynn K.
Henderson, Mark J.
Webb, Martin R.
Shen, Min
Hall, Matthew D.
Appella, Ettore
Appella, Daniel H.
Coussens, Nathan P.
author_facet Clausse, Victor
Tao, Dingyin
Debnath, Subrata
Fang, Yuhong
Tagad, Harichandra D.
Wang, Yuhong
Sun, Hongmao
LeClair, Christopher A.
Mazur, Sharlyn J.
Lane, Kelly
Shi, Zhen-Dan
Vasalatiy, Olga
Eells, Rebecca
Baker, Lynn K.
Henderson, Mark J.
Webb, Martin R.
Shen, Min
Hall, Matthew D.
Appella, Ettore
Appella, Daniel H.
Coussens, Nathan P.
author_sort Clausse, Victor
collection PubMed
description WT P53-Induced Phosphatase 1 (WIP1) is a member of the magnesium-dependent serine/threonine protein phosphatase (PPM) family and is induced by P53 in response to DNA damage. In several human cancers, the WIP1 protein is overexpressed, which is generally associated with a worse prognosis. Although WIP1 is an attractive therapeutic target, no potent, selective, and bioactive small-molecule modulator with favorable pharmacokinetics has been reported. Phosphatase enzymes are among the most challenging targets for small molecules because of the difficulty of achieving both modulator selectivity and bioavailability. Another major obstacle has been the availability of robust and physiologically relevant phosphatase assays that are suitable for high-throughput screening. Here, we describe orthogonal biochemical WIP1 activity assays that utilize phosphopeptides from native WIP1 substrates. We optimized an MS assay to quantify the enzymatically dephosphorylated peptide reaction product in a 384-well format. Additionally, a red-shifted fluorescence assay was optimized in a 1,536-well format to enable real-time WIP1 activity measurements through the detection of the orthogonal reaction product, P(i). We validated these two optimized assays by quantitative high-throughput screening against the National Center for Advancing Translational Sciences (NCATS) Pharmaceutical Collection and used secondary assays to confirm and evaluate inhibitors identified in the primary screen. Five inhibitors were further tested with an orthogonal WIP1 activity assay and surface plasmon resonance binding studies. Our results validate the application of miniaturized physiologically relevant and orthogonal WIP1 activity assays to discover small-molecule modulators from high-throughput screens.
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spelling pubmed-68732022019-11-25 Physiologically relevant orthogonal assays for the discovery of small-molecule modulators of WIP1 phosphatase in high-throughput screens Clausse, Victor Tao, Dingyin Debnath, Subrata Fang, Yuhong Tagad, Harichandra D. Wang, Yuhong Sun, Hongmao LeClair, Christopher A. Mazur, Sharlyn J. Lane, Kelly Shi, Zhen-Dan Vasalatiy, Olga Eells, Rebecca Baker, Lynn K. Henderson, Mark J. Webb, Martin R. Shen, Min Hall, Matthew D. Appella, Ettore Appella, Daniel H. Coussens, Nathan P. J Biol Chem Methods and Resources WT P53-Induced Phosphatase 1 (WIP1) is a member of the magnesium-dependent serine/threonine protein phosphatase (PPM) family and is induced by P53 in response to DNA damage. In several human cancers, the WIP1 protein is overexpressed, which is generally associated with a worse prognosis. Although WIP1 is an attractive therapeutic target, no potent, selective, and bioactive small-molecule modulator with favorable pharmacokinetics has been reported. Phosphatase enzymes are among the most challenging targets for small molecules because of the difficulty of achieving both modulator selectivity and bioavailability. Another major obstacle has been the availability of robust and physiologically relevant phosphatase assays that are suitable for high-throughput screening. Here, we describe orthogonal biochemical WIP1 activity assays that utilize phosphopeptides from native WIP1 substrates. We optimized an MS assay to quantify the enzymatically dephosphorylated peptide reaction product in a 384-well format. Additionally, a red-shifted fluorescence assay was optimized in a 1,536-well format to enable real-time WIP1 activity measurements through the detection of the orthogonal reaction product, P(i). We validated these two optimized assays by quantitative high-throughput screening against the National Center for Advancing Translational Sciences (NCATS) Pharmaceutical Collection and used secondary assays to confirm and evaluate inhibitors identified in the primary screen. Five inhibitors were further tested with an orthogonal WIP1 activity assay and surface plasmon resonance binding studies. Our results validate the application of miniaturized physiologically relevant and orthogonal WIP1 activity assays to discover small-molecule modulators from high-throughput screens. American Society for Biochemistry and Molecular Biology 2019-11-15 2019-09-03 /pmc/articles/PMC6873202/ /pubmed/31481464 http://dx.doi.org/10.1074/jbc.RA119.010201 Text en © 2019 Clausse et al. Author's Choice—Final version open access under the terms of the Creative Commons CC-BY license (http://creativecommons.org/licenses/by/4.0) .
spellingShingle Methods and Resources
Clausse, Victor
Tao, Dingyin
Debnath, Subrata
Fang, Yuhong
Tagad, Harichandra D.
Wang, Yuhong
Sun, Hongmao
LeClair, Christopher A.
Mazur, Sharlyn J.
Lane, Kelly
Shi, Zhen-Dan
Vasalatiy, Olga
Eells, Rebecca
Baker, Lynn K.
Henderson, Mark J.
Webb, Martin R.
Shen, Min
Hall, Matthew D.
Appella, Ettore
Appella, Daniel H.
Coussens, Nathan P.
Physiologically relevant orthogonal assays for the discovery of small-molecule modulators of WIP1 phosphatase in high-throughput screens
title Physiologically relevant orthogonal assays for the discovery of small-molecule modulators of WIP1 phosphatase in high-throughput screens
title_full Physiologically relevant orthogonal assays for the discovery of small-molecule modulators of WIP1 phosphatase in high-throughput screens
title_fullStr Physiologically relevant orthogonal assays for the discovery of small-molecule modulators of WIP1 phosphatase in high-throughput screens
title_full_unstemmed Physiologically relevant orthogonal assays for the discovery of small-molecule modulators of WIP1 phosphatase in high-throughput screens
title_short Physiologically relevant orthogonal assays for the discovery of small-molecule modulators of WIP1 phosphatase in high-throughput screens
title_sort physiologically relevant orthogonal assays for the discovery of small-molecule modulators of wip1 phosphatase in high-throughput screens
topic Methods and Resources
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6873202/
https://www.ncbi.nlm.nih.gov/pubmed/31481464
http://dx.doi.org/10.1074/jbc.RA119.010201
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