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An Unbiased Cell Morphology–Based Screen for New, Biologically Active Small Molecules

We have implemented an unbiased cell morphology–based screen to identify small-molecule modulators of cellular processes using the Cytometrix (TM) automated imaging and analysis system. This assay format provides unbiased analysis of morphological effects induced by small molecules by capturing phen...

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Detalles Bibliográficos
Autores principales: Tanaka, Masahiro, Bateman, Raynard, Rauh, Daniel, Vaisberg, Eugeni, Ramachandani, Shyam, Zhang, Chao, Hansen, Kirk C, Burlingame, Alma L, Trautman, Jay K, Shokat, Kevan M, Adams, Cynthia L
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2005
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1073692/
https://www.ncbi.nlm.nih.gov/pubmed/15799708
http://dx.doi.org/10.1371/journal.pbio.0030128
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author Tanaka, Masahiro
Bateman, Raynard
Rauh, Daniel
Vaisberg, Eugeni
Ramachandani, Shyam
Zhang, Chao
Hansen, Kirk C
Burlingame, Alma L
Trautman, Jay K
Shokat, Kevan M
Adams, Cynthia L
author_facet Tanaka, Masahiro
Bateman, Raynard
Rauh, Daniel
Vaisberg, Eugeni
Ramachandani, Shyam
Zhang, Chao
Hansen, Kirk C
Burlingame, Alma L
Trautman, Jay K
Shokat, Kevan M
Adams, Cynthia L
author_sort Tanaka, Masahiro
collection PubMed
description We have implemented an unbiased cell morphology–based screen to identify small-molecule modulators of cellular processes using the Cytometrix (TM) automated imaging and analysis system. This assay format provides unbiased analysis of morphological effects induced by small molecules by capturing phenotypic readouts of most known classes of pharmacological agents and has the potential to read out pathways for which little is known. Four human-cancer cell lines and one noncancerous primary cell type were treated with 107 small molecules comprising four different protein kinase–inhibitor scaffolds. Cellular phenotypes induced by each compound were quantified by multivariate statistical analysis of the morphology, staining intensity, and spatial attributes of the cellular nuclei, microtubules, and Golgi compartments. Principal component analysis was used to identify inhibitors of cellular components not targeted by known protein kinase inhibitors. Here we focus on a hydroxyl-substituted analog (hydroxy-PP) of the known Src-family kinase inhibitor PP2 because it induced cell-specific morphological features distinct from all known kinase inhibitors in the collection. We used affinity purification to identify a target of hydroxy-PP, carbonyl reductase 1 (CBR1), a short-chain dehydrogenase-reductase. We solved the X-ray crystal structure of the CBR1/hydroxy-PP complex to 1.24 Å resolution. Structure-based design of more potent and selective CBR1 inhibitors provided probes for analyzing the biological function of CBR1 in A549 cells. These studies revealed a previously unknown function for CBR1 in serum-withdrawal-induced apoptosis. Further studies indicate CBR1 inhibitors may enhance the effectiveness of anticancer anthracyclines. Morphology-based screening of diverse cancer cell types has provided a method for discovering potent new small-molecule probes for cell biological studies and anticancer drug candidates.
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spelling pubmed-10736922005-04-05 An Unbiased Cell Morphology–Based Screen for New, Biologically Active Small Molecules Tanaka, Masahiro Bateman, Raynard Rauh, Daniel Vaisberg, Eugeni Ramachandani, Shyam Zhang, Chao Hansen, Kirk C Burlingame, Alma L Trautman, Jay K Shokat, Kevan M Adams, Cynthia L PLoS Biol Research Article We have implemented an unbiased cell morphology–based screen to identify small-molecule modulators of cellular processes using the Cytometrix (TM) automated imaging and analysis system. This assay format provides unbiased analysis of morphological effects induced by small molecules by capturing phenotypic readouts of most known classes of pharmacological agents and has the potential to read out pathways for which little is known. Four human-cancer cell lines and one noncancerous primary cell type were treated with 107 small molecules comprising four different protein kinase–inhibitor scaffolds. Cellular phenotypes induced by each compound were quantified by multivariate statistical analysis of the morphology, staining intensity, and spatial attributes of the cellular nuclei, microtubules, and Golgi compartments. Principal component analysis was used to identify inhibitors of cellular components not targeted by known protein kinase inhibitors. Here we focus on a hydroxyl-substituted analog (hydroxy-PP) of the known Src-family kinase inhibitor PP2 because it induced cell-specific morphological features distinct from all known kinase inhibitors in the collection. We used affinity purification to identify a target of hydroxy-PP, carbonyl reductase 1 (CBR1), a short-chain dehydrogenase-reductase. We solved the X-ray crystal structure of the CBR1/hydroxy-PP complex to 1.24 Å resolution. Structure-based design of more potent and selective CBR1 inhibitors provided probes for analyzing the biological function of CBR1 in A549 cells. These studies revealed a previously unknown function for CBR1 in serum-withdrawal-induced apoptosis. Further studies indicate CBR1 inhibitors may enhance the effectiveness of anticancer anthracyclines. Morphology-based screening of diverse cancer cell types has provided a method for discovering potent new small-molecule probes for cell biological studies and anticancer drug candidates. Public Library of Science 2005-05 2005-04-05 /pmc/articles/PMC1073692/ /pubmed/15799708 http://dx.doi.org/10.1371/journal.pbio.0030128 Text en Copyright: © 2005 Tanaka 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
Tanaka, Masahiro
Bateman, Raynard
Rauh, Daniel
Vaisberg, Eugeni
Ramachandani, Shyam
Zhang, Chao
Hansen, Kirk C
Burlingame, Alma L
Trautman, Jay K
Shokat, Kevan M
Adams, Cynthia L
An Unbiased Cell Morphology–Based Screen for New, Biologically Active Small Molecules
title An Unbiased Cell Morphology–Based Screen for New, Biologically Active Small Molecules
title_full An Unbiased Cell Morphology–Based Screen for New, Biologically Active Small Molecules
title_fullStr An Unbiased Cell Morphology–Based Screen for New, Biologically Active Small Molecules
title_full_unstemmed An Unbiased Cell Morphology–Based Screen for New, Biologically Active Small Molecules
title_short An Unbiased Cell Morphology–Based Screen for New, Biologically Active Small Molecules
title_sort unbiased cell morphology–based screen for new, biologically active small molecules
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1073692/
https://www.ncbi.nlm.nih.gov/pubmed/15799708
http://dx.doi.org/10.1371/journal.pbio.0030128
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