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Biology subjects

Ung, E.

Publications and source records attributed to Ung, E..

2 recordsLinked to original sources

Gli3 is required for glandular epithelial proliferation and endometrial homeostasis during the estrous cycle

The endometrium is the innermost compartment of the uterus and undergoes cyclical remodeling throughout the human menstrual cycle and the rodent estrous cycle. The endometrium must thicken appropriately for embryonic implantation to occur; thus, it is crucial to understand the molecular mechanisms downstream of steroid hormone action that regulate endometrial thickness. Hedgehog (Hh) signaling is required for endometrial remodeling in both mice and humans, but the role of downstream Hh transcriptional effectors in endometrial remodeling is unknown. Here, we discover a role for the Hh transcriptional repressor, Gli3, in endometrial homeostasis: conditional knockout of Gli3 resulted in a constitutively thick endometrium throughout the estrous cycle. In our model, a constitutively thick endometrium could support pregnancy. Bulk RNA-sequencing data revealed that loss of Gli3 also resulted in dysregulated stromal-epithelial crosstalk, while immunofluorescent staining showed larger uterine glands and increased gland proliferation. These data deepen our understanding of molecular mechanisms controlling endometrial thickness, offering novel pathways to investigate endometrial factors in infertility.

cell biology↗

Single cell-scale spatial transcriptome profiling of the adult cycling mouse uterus

The adult uterus is highly regenerative during the reproductive cycle (menstrual in humans; estrous in mice), while the uterus prepares for a possible pregnancy. Until recently, the regenerative capacity of the mouse uterus was under-appreciated. Therefore, how uterine cell types and tissue compartments coordinate transcriptional and cellular changes across the estrous cycle is poorly understood. To begin to uncover the spatiotemporal molecular regulation of cell remodeling and regeneration, we conducted Visium HD spatial transcriptomics to analyze the adult cycling nulliparous mouse uterus. We integrated transcriptional data binned into 8x8 {micro}m spots across all four cycle stages to annotate cell types. This dataset provides highly resolved transcriptional information of uterine cell types, including luminal epithelium, glandular epithelium, mesenchyme, blood vessels, immune cells, and smooth muscle. These data can be used to define subpopulations of uterine cells and how they change in the adult cycling uterus or determine where disease-related genes are spatially expressed. Collectively, rigorous analysis of this dataset will significantly advance our understanding of uterine biology.

genomics↗