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Ziats, N. P.

Publications and source records attributed to Ziats, N. P..

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Sex differences in colonic inflammation are driven by epithelial-specific expression of estrogen receptor alpha

Background & AimsInflammatory bowel disease (IBD) patients exhibit altered expression of nuclear estrogen receptors alpha and beta (ER, ER{beta}) and G-protein coupled estrogen receptor 1 (GPER1). We previously showed that deletion of ER protects against intestinal damage selectively in female mice; however, the mechanisms conferring sex-specific protection are poorly understood. The goal of this study was to compare ER- and ER{beta}-specific mechanisms contributing to intestinal epithelial function in males and females. MethodsExpression of ER, ER{beta}, and GPER1 was evaluated in colonocytes from wild-type (WT) male and female mice. Intestinal epithelial cell (IEC)-specific ER and ER{beta} knockout mice were developed and challenged with dextran sulfate sodium (DSS). Colonic organoids were used to identify estrogen-dependent and -independent effects on cellular growth, differentiation, and transcriptional regulation in WT, ER-KO, and ER{beta}-KO IECs. ResultsColonic IECs showed significant expression of ER, ER{beta}, and GPER1 as well as Cyp19A1, which catalyzes production of 17{beta}-estradiol (estrogen). Female mice lacking ER specifically in colonic IECs showed protection from DSS-induced injury, whereas males showed increased pathology. Organoids derived from male ER-KO mice showed enhanced proliferation and decreased expression of key functional genes even without exogenous estrogen; however, colonoids derived from female ER-KO mice transcriptional analysis showed a protective gene signature. These findings reveal that deletion of ER differentially contributes to enhanced barrier function and resistance to inflammation in females, but to dysfunctional hyper-proliferation in males. ConclusionsER signaling within IECs drives opposing sex-dependent effects on the development, regenerative capacity, and inflammatory susceptibility of the intestinal epithelium.

cell biology↗