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A Hyperandrogenic Mouse Model to Study Polycystic Ovary Syndrome
Published on: October 2, 2018
Estrogen hormone physiology: reproductive findings from estrogen receptor mutant mice
Katherine J Hamilton1, Yukitomo Arao1, Kenneth S Korach1
1Receptor Biology Section, Laboratory of Reproductive and Developmental Toxicology, National Institute of Environmental Health Sciences/NIH, Research Triangle Park, NC 27709, United States.
Abstract:
Estrogen receptors (ERs) play a crucial role in reproduction and normal physiology. The two sub-types of ER (ERα and β) are expressed in various levels in different tissues and selective cell types. Gene targeting technology allowed us to produce lines of mice with disrupted ERα (αERKO) and ERβ genes (βERKO) as well as a compound αβERKO in the whole body. Male and female αERKO mice are infertile. Estrogen, EGF and IGF-1 treatments failed to induce uterine growth and DNA synthesis in αERKO uteri. αERKO females are infertile due to hypoplastic uteri and hyperemic ovaries with no corpora lutea due to persistent LH stimulation from loss of negative feedback. αERKO males are infertile, with testicular atrophy and seminiferous tubule dysmorphogenesis producing decreased spermatogenesis and inactive sperm. βERKO females show arrested folliculogenesis and subfertility. Ovarian analyses indicate differential gene expression related to ovulatory stimulation deficits including lack of LH, PR, Cyp19 and Cox2 expression. A unique ovarian phenotype is found only in αβERKO females showing transdifferentiation of granulosa cells to Sertoli cells. We describe here several novel mouse models which possess ERα gene modification. To understand ERα function in uterine endometrial epithelial cells, we generated a tissue selective ERα gene disrupted mouse model, the uterine epithelial-specific ERα knockout (UtEpiαERKO). To understand the physiological role of ERα functional domains, we generated a mouse model with a mutation in the ligand dependent transcription activation domain of ERα (AF2ERKI). Findings from the ERα mutant mice suggest that the absence of functional ERα is not lethal and results in significant endocrine effects and altered physiological processes.
Insights
Estrogen receptors (ERs) are vital for reproduction. Disrupting ERα or ERβ genes in mice causes infertility and significant reproductive system defects, highlighting their critical roles.
Area of Science:
- Endocrinology
- Reproductive Biology
- Genetics
Background:
- Estrogen receptors (ERs), specifically ERα and ERβ, are critical for reproductive functions and overall physiology.
- These receptors exhibit differential expression across tissues and cell types.
- Gene targeting has enabled the creation of mouse models with disrupted ERα (αERKO), ERβ (βERKO), and both (αβERKO) genes.
Purpose of the Study:
- To investigate the physiological roles of ERα and ERβ using genetically modified mouse models.
- To elucidate the specific functions of ERα in uterine endometrial epithelial cells and its functional domains.
Main Methods:
- Generation of whole-body ERα knockout (αERKO), ERβ knockout (βERKO), and double knockout (αβERKO) mice.
- Creation of tissue-specific ERα knockout (UtEpiαERKO) and ERα ligand-dependent transcription activation domain mutant (AF2ERKI) mice.
- Phenotypic analysis of reproductive organs, hormone levels, and gene expression in mutant mice.
Main Results:
- αERKO mice (male and female) are infertile, exhibiting hypoplastic uteri, hyperemic ovaries, testicular atrophy, and impaired spermatogenesis.
- βERKO females display arrested folliculogenesis and subfertility, with deficits in ovulatory stimulation markers (LH, PR, Cyp19, Cox2).
- αβERKO females present a unique phenotype of granulosa cell transdifferentiation into Sertoli cells.
Conclusions:
- The absence of functional ERα is not lethal but leads to significant endocrine disruptions and altered physiological processes.
- ERα and ERβ play distinct and crucial roles in female and male reproductive functions.
- Novel mouse models provide valuable tools for dissecting the complex functions of estrogen receptors in vivo.
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