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Discovery of MINC1, a GTPase-Activating Protein Small Molecule Inhibitor, Targeting MgcRacGAP

The Rho family of Ras superfamily small GTPases regulates a broad range of biological processes such as migration, differentiation, cell growth and cell survival. Therefore, the availability of small molecule modulators as tool compounds could greatly enhance research on these proteins and their bio...

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Autores principales: van Adrichem, Arjan J., Fagerholm, Annika, Turunen, Laura, Lehto, Anna, Saarela, Jani, Koskinen, Ari, Repasky, Gretchen A., Wennerberg, Krister
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Bentham Science Publishers 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4435052/
https://www.ncbi.nlm.nih.gov/pubmed/25479424
http://dx.doi.org/10.2174/1386207318666141205112730
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author van Adrichem, Arjan J.
Fagerholm, Annika
Turunen, Laura
Lehto, Anna
Saarela, Jani
Koskinen, Ari
Repasky, Gretchen A.
Wennerberg, Krister
author_facet van Adrichem, Arjan J.
Fagerholm, Annika
Turunen, Laura
Lehto, Anna
Saarela, Jani
Koskinen, Ari
Repasky, Gretchen A.
Wennerberg, Krister
author_sort van Adrichem, Arjan J.
collection PubMed
description The Rho family of Ras superfamily small GTPases regulates a broad range of biological processes such as migration, differentiation, cell growth and cell survival. Therefore, the availability of small molecule modulators as tool compounds could greatly enhance research on these proteins and their biological function. To this end, we designed a biochemical, high throughput screening assay with complementary follow-up assays to identify small molecule compounds inhibiting MgcRacGAP, a Rho family GTPase activating protein involved in cytokinesis and transcriptionally upregulated in many cancers. We first performed an in-house screen of 20,480 compounds, and later we tested the assay against 342,046 compounds from the NIH Molecular Libraries Small Molecule Repository. Primary screening hit rates were about 1% with the majority of those affecting the primary readout, an enzyme-coupled GDP detection assay. After orthogonal and counter screens, we identified two hits with high selectivity towards MgcRacGAP, compared with other RhoGAPs, and potencies in the low micromolar range. The most promising hit, termed MINC1, was then examined with cell-based testing where it was observed to induce an increased rate of cytokinetic failure and multinucleation in addition to other cell division defects, suggesting that it may act as an MgcRacGAP inhibitor also in cells.
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spelling pubmed-44350522015-05-22 Discovery of MINC1, a GTPase-Activating Protein Small Molecule Inhibitor, Targeting MgcRacGAP van Adrichem, Arjan J. Fagerholm, Annika Turunen, Laura Lehto, Anna Saarela, Jani Koskinen, Ari Repasky, Gretchen A. Wennerberg, Krister Comb Chem High Throughput Screen Article The Rho family of Ras superfamily small GTPases regulates a broad range of biological processes such as migration, differentiation, cell growth and cell survival. Therefore, the availability of small molecule modulators as tool compounds could greatly enhance research on these proteins and their biological function. To this end, we designed a biochemical, high throughput screening assay with complementary follow-up assays to identify small molecule compounds inhibiting MgcRacGAP, a Rho family GTPase activating protein involved in cytokinesis and transcriptionally upregulated in many cancers. We first performed an in-house screen of 20,480 compounds, and later we tested the assay against 342,046 compounds from the NIH Molecular Libraries Small Molecule Repository. Primary screening hit rates were about 1% with the majority of those affecting the primary readout, an enzyme-coupled GDP detection assay. After orthogonal and counter screens, we identified two hits with high selectivity towards MgcRacGAP, compared with other RhoGAPs, and potencies in the low micromolar range. The most promising hit, termed MINC1, was then examined with cell-based testing where it was observed to induce an increased rate of cytokinetic failure and multinucleation in addition to other cell division defects, suggesting that it may act as an MgcRacGAP inhibitor also in cells. Bentham Science Publishers 2015-01 2015-01 /pmc/articles/PMC4435052/ /pubmed/25479424 http://dx.doi.org/10.2174/1386207318666141205112730 Text en ©Bentham Science Publishers. http://creativecommons.org/licenses/by-nc/3.0/ This is an open access article licensed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) which permits unrestricted, non-commercial use, distribution and reproduction in any medium, provided the work is properly cited.
spellingShingle Article
van Adrichem, Arjan J.
Fagerholm, Annika
Turunen, Laura
Lehto, Anna
Saarela, Jani
Koskinen, Ari
Repasky, Gretchen A.
Wennerberg, Krister
Discovery of MINC1, a GTPase-Activating Protein Small Molecule Inhibitor, Targeting MgcRacGAP
title Discovery of MINC1, a GTPase-Activating Protein Small Molecule Inhibitor, Targeting MgcRacGAP
title_full Discovery of MINC1, a GTPase-Activating Protein Small Molecule Inhibitor, Targeting MgcRacGAP
title_fullStr Discovery of MINC1, a GTPase-Activating Protein Small Molecule Inhibitor, Targeting MgcRacGAP
title_full_unstemmed Discovery of MINC1, a GTPase-Activating Protein Small Molecule Inhibitor, Targeting MgcRacGAP
title_short Discovery of MINC1, a GTPase-Activating Protein Small Molecule Inhibitor, Targeting MgcRacGAP
title_sort discovery of minc1, a gtpase-activating protein small molecule inhibitor, targeting mgcracgap
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4435052/
https://www.ncbi.nlm.nih.gov/pubmed/25479424
http://dx.doi.org/10.2174/1386207318666141205112730
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