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Kaage, A. M.

Publications and source records attributed to Kaage, A. M..

2 recordsLinked to original sources

Luminal epithelium remodeling underlies endometrial regeneration during menstruation and pregnancy

Menstruation and pregnancy impose an immense regenerative burden on the endometrium. These events breach the luminal epithelium lining the uterine cavity, which is proposed to be replenished by cells in adjoining epithelial glands. In contrast to this gland-centric model, we find that luminal and glandular epithelia are maintained by separate progenitor populations during homeostasis, induced menstruation, pregnancy, and postpartum repair in mice. Although our data indicate that gland cells do not contribute substantially to luminal epithelium regeneration under physiological conditions, we find that they can serve as facultative progenitors that resurface the tissue after chemical ablation. During menstruation, the luminal epithelium bypasses the need for gland contributions by undergoing extensive expansion and morphogenesis to re-epithelialize stromal surfaces concurrently with tissue breakdown. Analogous morphogenesis occurs during gestation, revealing luminal epithelial expansion as a unifying mechanism enabling simultaneous stromal disruption and re-epithelialization, which may underlie the endometrium's remarkable regenerative capacity.

developmental biology↗

Induction of menstruation in mice reveals the regulation of menstrual shedding

During menstruation, an inner layer of the endometrium is selectively shed, while an outer, progenitor-containing layer is preserved to support repeated regeneration. Progress in understanding this compartmentalization has been hindered by the lack of suitable animal models, as mice and rats do not menstruate. Here, we present transgenic mouse models that recapitulate the key anatomical, functional, and transcriptional features of human menstruation through targeted chemogenetic activation of premenstrual differentiation. Using single-cell spatial transcriptomics, we define a new paradigm for spatially regulated fibroblast differentiation that drives pre-menstrual endometrial layering and ultimately determines the extent of tissue shedding. Our results revise a century-old view of endometrial shedding and regeneration and establish new transgenic mice as powerful tools to advance menstruation research.

developmental biology↗