Devanathan Sriram, Whitehead Timothy, Schweitzer George G, Fettig Nicole, Kovacs Attila, Korach Kenneth S, Finck Brian N, Shoghi Kooresh I
Department of Radiology, Washington University in St. Louis, Saint Louis, Missouri, United States of America.
Division of Geriatrics and Nutritional Science, Department of Medicine, Washington University in St. Louis, Saint Louis, Missouri, United States of America.
PLoS One. 2014 Jul 7;9(7):e101900. doi: 10.1371/journal.pone.0101900. eCollection 2014.
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 ERα allele (cs-ERα-/-). Male and female cs-ERα-/- 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-ERα-/- 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 ERα to characterize the role of ERα in the heart independent of systemic effects. Our results suggest that ERα is involved in controlling the expression of diverse genes and networks in the cardiomyocyte in a sex-dependent manner.
雌激素在动物和人类的多种组织中发挥着多种生物学作用。关于雌激素受体(ER)在心脏中作用的许多积累知识,是通过使用去卵巢小鼠、全身ER基因敲除动物模型、离体心脏研究或分离的心肌细胞进行的研究获得的。鉴于ER信号在调节多种组织中的一系列生物学功能方面具有广泛的全身影响,很难推断ER对心脏的直接作用。因此,我们开发了一种心肌细胞特异性缺失ERα等位基因的小鼠模型(cs-ERα-/-)。通过超声心动图和差异基因表达微阵列分析,对年龄/性别匹配的野生型对照的雄性和雌性cs-ERα-/-小鼠进行心脏结构和功能差异检查。我们的研究揭示了cs-ERα-/-小鼠心脏结构参数的性别差异,功能差异最小。微阵列数据分析揭示了影响多个转录网络的208个基因表达的差异变化。此外,我们报告了56个基因表达的性别特异性差异。总体而言,我们开发了一种心脏特异性缺失ERα的小鼠模型,以表征ERα在心脏中的作用,而不受全身影响。我们的结果表明,ERα以性别依赖的方式参与控制心肌细胞中多种基因和网络的表达。