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Estrogen receptor signaling and targets: Bones, breasts and brain (Review)
Meropi Toumba1, Alexandros Kythreotis2, Konstantina Panayiotou2
1Department of Pediatrics, Pediatric Endocrinology Clinic, Aretaeio Hospital, Nicosia 2024, Cyprus.
Abstract:
Estrogens are involved in a number of physiological functions, including in the development of the brain, growth, reproduction and metabolism. The biological actions of estrogens are achieved by binding to estrogen receptors (ERs) in numerous types of tissues. ERα and ERβ belong to the nuclear receptor superfamily and the G‑protein coupled ER1 (GPER1) is a membrane receptor. The primary biologically active estrogen, 17β‑estradiol demonstrates a high affinity for ERs. Mechanistically, estrogens bind to the ERs in the nucleus, and the complex then dimerize and bind to estrogen response elements (EREs) located in the promoter regions of the target genes. This is referred to as the genomic mechanism of ERs' function. Furthermore, ERs can also act through kinases and other molecular interactions leading to specific gene expression and functions, referred to as the non‑genomic mechanism. While ERα and ERβ exert their functions via both genomic and non‑genomic pathways, GPER1 exerts its function primarily via the non‑genomic pathways. Any aberrations in ER signaling can lead to one of a number of diseases such as disorders of growth and puberty, fertility and reproduction abnormalities, cancer, metabolic diseases or osteoporosis. In the present review, a focus is placed on three target tissues of estrogens, namely the bones, the breasts and the brain, as paradigms of the multiple facets of the ERs. The increasing prevalence of breast cancer, particularly hormone receptor‑positive breast cancer, is a challenge for the development of novel antihormonal therapies other than tamoxifen and aromatase inhibitors, to minimize toxicity from the long treatment regimens in patients with breast cancer. A complete understanding of the mechanism of action of ERs in bones may highlight options for novel targeted treatments for osteoporosis. Likewise, the aging of the brain and related diseases, such as dementia and depression, are associated with a lack of estrogen, particularly in women following menopause. Furthermore, gender dysphoria, a discordance between experienced gender and biological sex, is commonly hypothesized to emerge due to discrepancies in cerebral and genital sexual differentiation. The exact role of ERs in gender dysphoria requires further research.
Insights
Estrogen receptors (ERs) mediate crucial physiological functions through genomic and non-genomic pathways. Dysregulation of ER signaling contributes to diseases affecting bones, breasts, and the brain, necessitating further research for targeted therapies.
Area of Science:
- Endocrinology
- Molecular Biology
- Neuroscience
Background:
- Estrogens are vital hormones regulating growth, reproduction, metabolism, and brain development.
- Estrogen actions are mediated by estrogen receptors (ERs), including nuclear ERα, ERβ, and membrane GPER1.
- ER signaling pathways are diverse, involving genomic and non-genomic mechanisms.
Purpose of the Study:
- To review the multifaceted roles of estrogen receptors (ERs) in target tissues.
- To highlight the implications of ER signaling aberrations in diseases of the bones, breasts, and brain.
- To underscore the need for novel therapeutic strategies targeting ER pathways.
Main Methods:
- Literature review focusing on estrogen receptor mechanisms and functions.
- Analysis of ER involvement in bone health, breast cancer, and neurological processes.
- Synthesis of current knowledge on genomic and non-genomic ER signaling.
Main Results:
- ERs play critical roles in bone metabolism, breast cancer development, and brain function.
- Aberrant ER signaling is linked to osteoporosis, hormone-receptor-positive breast cancer, and neurodegenerative diseases.
- ERs are implicated in menopause-related brain changes, depression, and potentially gender dysphoria.
Conclusions:
- Understanding ER mechanisms is crucial for developing targeted therapies for estrogen-related diseases.
- Novel antihormonal therapies are needed for breast cancer to improve patient outcomes.
- Further research into ERs' role in brain aging and gender dysphoria is warranted.
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