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Publication : An animal model with a cardiomyocyte-specific deletion of estrogen receptor alpha: functional, metabolic, and differential network analysis.

First Author  Devanathan S Year  2014
Journal  PLoS One Volume  9
Issue  7 Pages  e101900
PubMed ID  25000186 Mgi Jnum  J:218927
Mgi Id  MGI:5619037 Doi  10.1371/journal.pone.0101900
Citation  Devanathan S, et al. (2014) An animal model with a cardiomyocyte-specific deletion of estrogen receptor alpha: functional, metabolic, and differential network analysis. PLoS One 9(7):e101900
abstractText  Estrogen exerts diverse biological effects in multiple tissues in both animals and humans. Much of the accumulated knowledge on the role of estrogen receptor (ER) in the heart has been obtained from studies using ovariectomized mice, whole body ER gene knock-out animal models, ex vivo heart studies, or from isolated cardiac myocytes. In light of the wide systemic influence of ER signaling in regulating a host of biological functions in multiple tissues, it is difficult to infer the direct role of ER on the heart. Therefore, we developed a mouse model with a cardiomyocyte-specific deletion of the ERalpha allele (cs-ERalpha-/-). Male and female cs-ERalpha-/- mice with age/sex-matched wild type controls were examined for differences in cardiac structure and function by echocardiogram and differential gene expression microarray analysis. Our study revealed sex-differences in structural parameters in the hearts of cs-ERalpha-/- mice, with minimal functional differences. Analysis of microarray data revealed differential variations in the expression of 208 genes affecting multiple transcriptional networks. Furthermore, we report sex-specific differences in the expression of 56 genes. Overall, we developed a mouse model with cardiac-specific deletion of ERalpha to characterize the role of ERalpha in the heart independent of systemic effects. Our results suggest that ERalpha is involved in controlling the expression of diverse genes and networks in the cardiomyocyte in a sex-dependent manner.
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