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Probing the origin of estrogen receptor alpha inhibition via large-scale QSAR study

Estrogen is an important component for the sustenance of normal physiological functions of the mammary glands, particularly for growth and differentiation. Approximately, two-thirds of breast cancers are positive for estrogen receptor (ERs), which is a predisposing factor for the growth of breast ca...

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Autores principales: Suvannang, Naravut, Preeyanon, Likit, Malik, Aijaz Ahmad, Schaduangrat, Nalini, Shoombuatong, Watshara, Worachartcheewan, Apilak, Tantimongcolwat, Tanawut, Nantasenamat, Chanin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9079045/
https://www.ncbi.nlm.nih.gov/pubmed/35542807
http://dx.doi.org/10.1039/c7ra10979b
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author Suvannang, Naravut
Preeyanon, Likit
Malik, Aijaz Ahmad
Schaduangrat, Nalini
Shoombuatong, Watshara
Worachartcheewan, Apilak
Tantimongcolwat, Tanawut
Nantasenamat, Chanin
author_facet Suvannang, Naravut
Preeyanon, Likit
Malik, Aijaz Ahmad
Schaduangrat, Nalini
Shoombuatong, Watshara
Worachartcheewan, Apilak
Tantimongcolwat, Tanawut
Nantasenamat, Chanin
author_sort Suvannang, Naravut
collection PubMed
description Estrogen is an important component for the sustenance of normal physiological functions of the mammary glands, particularly for growth and differentiation. Approximately, two-thirds of breast cancers are positive for estrogen receptor (ERs), which is a predisposing factor for the growth of breast cancer cells. As such, ERα represents a lucrative therapeutic target for breast cancer that has attracted wide interest in the search for inhibitory agents. However, the conventional laboratory processes are cost- and time-consuming. Thus, it is highly desirable to develop alternative methods such as quantitative structure–activity relationship (QSAR) models for predicting ER-mediated endocrine agitation as to simplify their prioritization for future screening. In this study, we compiled and curated a large, non-redundant data set of 1231 compounds with ERα inhibitory activity (pIC(50)). Using comprehensive validation tests, it was clearly observed that the model utilizing the substructure count as descriptors, performed well considering two objectives: using less descriptors for model development and achieving high predictive performance (R(Tr)(2) = 0.94, Q(CV)(2) = 0.73, and Q(Ext)(2) = 0.73). It is anticipated that our proposed QSAR model may become a useful high-throughput tool for identifying novel inhibitors against ERα.
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spelling pubmed-90790452022-05-09 Probing the origin of estrogen receptor alpha inhibition via large-scale QSAR study Suvannang, Naravut Preeyanon, Likit Malik, Aijaz Ahmad Schaduangrat, Nalini Shoombuatong, Watshara Worachartcheewan, Apilak Tantimongcolwat, Tanawut Nantasenamat, Chanin RSC Adv Chemistry Estrogen is an important component for the sustenance of normal physiological functions of the mammary glands, particularly for growth and differentiation. Approximately, two-thirds of breast cancers are positive for estrogen receptor (ERs), which is a predisposing factor for the growth of breast cancer cells. As such, ERα represents a lucrative therapeutic target for breast cancer that has attracted wide interest in the search for inhibitory agents. However, the conventional laboratory processes are cost- and time-consuming. Thus, it is highly desirable to develop alternative methods such as quantitative structure–activity relationship (QSAR) models for predicting ER-mediated endocrine agitation as to simplify their prioritization for future screening. In this study, we compiled and curated a large, non-redundant data set of 1231 compounds with ERα inhibitory activity (pIC(50)). Using comprehensive validation tests, it was clearly observed that the model utilizing the substructure count as descriptors, performed well considering two objectives: using less descriptors for model development and achieving high predictive performance (R(Tr)(2) = 0.94, Q(CV)(2) = 0.73, and Q(Ext)(2) = 0.73). It is anticipated that our proposed QSAR model may become a useful high-throughput tool for identifying novel inhibitors against ERα. The Royal Society of Chemistry 2018-03-27 /pmc/articles/PMC9079045/ /pubmed/35542807 http://dx.doi.org/10.1039/c7ra10979b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Suvannang, Naravut
Preeyanon, Likit
Malik, Aijaz Ahmad
Schaduangrat, Nalini
Shoombuatong, Watshara
Worachartcheewan, Apilak
Tantimongcolwat, Tanawut
Nantasenamat, Chanin
Probing the origin of estrogen receptor alpha inhibition via large-scale QSAR study
title Probing the origin of estrogen receptor alpha inhibition via large-scale QSAR study
title_full Probing the origin of estrogen receptor alpha inhibition via large-scale QSAR study
title_fullStr Probing the origin of estrogen receptor alpha inhibition via large-scale QSAR study
title_full_unstemmed Probing the origin of estrogen receptor alpha inhibition via large-scale QSAR study
title_short Probing the origin of estrogen receptor alpha inhibition via large-scale QSAR study
title_sort probing the origin of estrogen receptor alpha inhibition via large-scale qsar study
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9079045/
https://www.ncbi.nlm.nih.gov/pubmed/35542807
http://dx.doi.org/10.1039/c7ra10979b
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