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A novel small molecule target in human airway smooth muscle for potential treatment of obstructive lung diseases: a staged high-throughput biophysical screening

BACKGROUND: A newly identified mechanism of smooth muscle relaxation is the interaction between the small heat shock protein 20 (HSP20) and 14-3-3 proteins. Focusing upon this class of interactions, we describe here a novel drug target screening approach for treating airflow obstruction in asthma. M...

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Autores principales: An, Steven S, Askovich, Peter S, Zarembinski, Thomas I, Ahn, Kwangmi, Peltier, John M, von Rechenberg, Moritz, Sahasrabudhe, Sudhir, Fredberg, Jeffrey J
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3034681/
https://www.ncbi.nlm.nih.gov/pubmed/21232113
http://dx.doi.org/10.1186/1465-9921-12-8
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author An, Steven S
Askovich, Peter S
Zarembinski, Thomas I
Ahn, Kwangmi
Peltier, John M
von Rechenberg, Moritz
Sahasrabudhe, Sudhir
Fredberg, Jeffrey J
author_facet An, Steven S
Askovich, Peter S
Zarembinski, Thomas I
Ahn, Kwangmi
Peltier, John M
von Rechenberg, Moritz
Sahasrabudhe, Sudhir
Fredberg, Jeffrey J
author_sort An, Steven S
collection PubMed
description BACKGROUND: A newly identified mechanism of smooth muscle relaxation is the interaction between the small heat shock protein 20 (HSP20) and 14-3-3 proteins. Focusing upon this class of interactions, we describe here a novel drug target screening approach for treating airflow obstruction in asthma. METHODS: Using a high-throughput fluorescence polarization (FP) assay, we screened a library of compounds that could act as small molecule modulators of HSP20 signals. We then applied two quantitative, cell-based biophysical methods to assess the functional efficacy of these molecules and rank-ordered their abilities to relax isolated human airway smooth muscle (ASM). Scaling up to the level of an intact tissue, we confirmed in a concentration-responsive manner the potency of the cell-based hit compounds. RESULTS: Among 58,019 compound tested, 268 compounds caused 20% or more reduction of the polarized emission in the FP assay. A small subset of these primary screen hits, belonging to two scaffolds, caused relaxation of isolated ASM cell in vitro and attenuated active force development of intact tissue ex vivo. CONCLUSIONS: This staged biophysical screening paradigm provides proof-of-principle for high-throughput and cost-effective discovery of new small molecule therapeutic agents for obstructive lung diseases.
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spelling pubmed-30346812011-02-08 A novel small molecule target in human airway smooth muscle for potential treatment of obstructive lung diseases: a staged high-throughput biophysical screening An, Steven S Askovich, Peter S Zarembinski, Thomas I Ahn, Kwangmi Peltier, John M von Rechenberg, Moritz Sahasrabudhe, Sudhir Fredberg, Jeffrey J Respir Res Research BACKGROUND: A newly identified mechanism of smooth muscle relaxation is the interaction between the small heat shock protein 20 (HSP20) and 14-3-3 proteins. Focusing upon this class of interactions, we describe here a novel drug target screening approach for treating airflow obstruction in asthma. METHODS: Using a high-throughput fluorescence polarization (FP) assay, we screened a library of compounds that could act as small molecule modulators of HSP20 signals. We then applied two quantitative, cell-based biophysical methods to assess the functional efficacy of these molecules and rank-ordered their abilities to relax isolated human airway smooth muscle (ASM). Scaling up to the level of an intact tissue, we confirmed in a concentration-responsive manner the potency of the cell-based hit compounds. RESULTS: Among 58,019 compound tested, 268 compounds caused 20% or more reduction of the polarized emission in the FP assay. A small subset of these primary screen hits, belonging to two scaffolds, caused relaxation of isolated ASM cell in vitro and attenuated active force development of intact tissue ex vivo. CONCLUSIONS: This staged biophysical screening paradigm provides proof-of-principle for high-throughput and cost-effective discovery of new small molecule therapeutic agents for obstructive lung diseases. BioMed Central 2011 2011-01-13 /pmc/articles/PMC3034681/ /pubmed/21232113 http://dx.doi.org/10.1186/1465-9921-12-8 Text en Copyright ©2011 An et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
An, Steven S
Askovich, Peter S
Zarembinski, Thomas I
Ahn, Kwangmi
Peltier, John M
von Rechenberg, Moritz
Sahasrabudhe, Sudhir
Fredberg, Jeffrey J
A novel small molecule target in human airway smooth muscle for potential treatment of obstructive lung diseases: a staged high-throughput biophysical screening
title A novel small molecule target in human airway smooth muscle for potential treatment of obstructive lung diseases: a staged high-throughput biophysical screening
title_full A novel small molecule target in human airway smooth muscle for potential treatment of obstructive lung diseases: a staged high-throughput biophysical screening
title_fullStr A novel small molecule target in human airway smooth muscle for potential treatment of obstructive lung diseases: a staged high-throughput biophysical screening
title_full_unstemmed A novel small molecule target in human airway smooth muscle for potential treatment of obstructive lung diseases: a staged high-throughput biophysical screening
title_short A novel small molecule target in human airway smooth muscle for potential treatment of obstructive lung diseases: a staged high-throughput biophysical screening
title_sort novel small molecule target in human airway smooth muscle for potential treatment of obstructive lung diseases: a staged high-throughput biophysical screening
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3034681/
https://www.ncbi.nlm.nih.gov/pubmed/21232113
http://dx.doi.org/10.1186/1465-9921-12-8
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