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Updated: Oct 2, 2026

Construction of Vapor Chambers Used to Expose Mice to Alcohol During the Equivalent of all Three Trimesters of Human Development
Published on: July 13, 2014
In Utero Alcohol Exposure Reprograms Mammary Gland Development and Stem/Progenitor Cell Activity in a Non-Tumorigenic
Abstract:
In utero alcohol exposure (IUE) can alter mammary development and increase mammary tumor susceptibility in experimental models. However, most previous studies have relied on carcinogen-induced or genetically tumor-prone models, leaving it unresolved whether prenatal alcohol exposure produces mammary developmental and molecular changes before the introduction of an oncogenic challenge. Here, we addressed this question using non-tumorigenic C57BL/6 mice. Pregnant dams received a Lieber-DeCarli liquid diet containing 1.7% (v/v) ethanol or an isocaloric control diet from gestational day 11 to 19, and mammary glands from female offspring were examined during puberty (postnatal day 40, PND40) and young adulthood (PND70). At PND40, IUE enhanced mammary ductal morphogenesis, increased terminal end bud numbers, and elevated epithelial proliferation. These developmental alterations persisted at PND70, with increased lateral branching and proliferative activity. IUE also altered mammary epithelial composition, expanding the basal/myoepithelial compartment and the CD24 high CD49f high mammary repopulating unit/stem cell-enriched population. Mammary epithelial cells from IUE-exposed offspring exhibited increased colony-forming cells (CFCs), mammosphere formation, and 3D Matrigel growth, indicating enhanced stem/progenitor-associated activity. At the molecular level, IUE increased ERα expression and phosphorylation together with Cyclin D1, c-Myc, E2F1, and Bcl-2, and enhanced AKT, ERK, and STAT3 phosphorylation, IL-6 expression, and SOX2 at PND40. Importantly, major components of this signaling phenotype remained altered at PND70, including ERα-associated signaling, AKT/ERK activation, and IL-6/STAT3 signaling, whereas the pubertal increase in SOX2 was not sustained. Together, these findings demonstrate that prenatal alcohol exposure induces profound and persistent histomorphological, cellular, and signaling alterations in the mammary gland in the absence of a carcinogenic challenge or genetically introduced oncogenic driver. These results identify intrinsic developmental reprogramming of normal mammary tissue as a potential basis through which prenatal alcohol exposure may modify subsequent responses to tumor-promoting or other environmental challenges.

