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Loss of ovarian function and estrogen therapy remodel the brain's synaptic and metabolic proteome
Sebastian F Salathe1, Edziu Franczak1, Zane Busick1
1Department of Cell Biology and Physiology, University of Kansas Medical Center, Kansas City, Kansas, United States.
Abstract:
Menopause is linked to cognitive decline and reduced brain metabolism, whereas estrogen (E2) therapy has been shown to mitigate these effects. Understanding the molecular mechanisms by which ovarian hormones and E2 influence neuroprotection is essential for developing strategies to maintain brain health in women. In this study, we examined how the loss of ovarian hormones, with or without E2 treatment, affects the brain proteome and mitochondrial energy production in aged female C57BL/6J mice (36-40 wk). The mice underwent sham or ovariectomy (OVX) surgery and were fed a high-fat diet for 10 wk; 6 wk after surgery, OVX mice received either sesame oil or E2 treatment for 4 wk. Proteomic analysis of brain homogenates revealed 4,992 proteins regulated by E2, with pathway analysis showing increased signaling proteins related to synaptogenesis. OVX reduced proteins involved in synaptic function, branched-chain amino acid and ketone metabolism, the tricarboxylic acid cycle, and oxidative phosphorylation (Complexes I, IV, and V), whereas E2 restored protein expression within these pathways. Despite alterations in OxPhos proteins, basal and state 3 mitochondrial respiration remained unchanged, although notable impairments in Complex IV enzymatic activity were apparent in OVX, which were partially reversed by E2 treatment. Overall, these results indicate that E2 supports brain health by maintaining proteins crucial for synaptic integrity and metabolism, while partially offsetting the functional decline in mitochondrial bioenergetics associated with menopause.NEW & NOTEWORTHY The menopausal transition, marked by declining estrogen levels, alters cognition, neuroplasticity, and brain metabolism. Although hormone therapy benefits cognition, its molecular effects on the brain remain unclear. Using whole-brain proteomics in aged ovariectomized (OVX) mice with or without estrogen treatment, we found that OVX reduced proteins linked to synaptogenesis and mitochondrial metabolism. Estrogen reversed these declines, restoring pathways supporting neuronal signaling and energy balance, identifying estrogen-regulated proteins critical for maintaining brain health during menopause.
Insights
Estrogen therapy supports brain health by maintaining proteins for synaptic integrity and metabolism, partially reversing mitochondrial decline linked to menopause.
Area of Science:
- Neuroscience
- Endocrinology
- Metabolomics
Background:
- Menopause is associated with cognitive decline and reduced brain metabolism.
- Estrogen (E2) therapy can mitigate these menopausal effects.
- Understanding hormonal impacts on neuroprotection is key for women's brain health.
Purpose of the Study:
- To investigate how ovarian hormone loss and E2 treatment affect brain proteome and mitochondrial function in aged mice.
- To identify molecular mechanisms underlying E2's neuroprotective effects.
Main Methods:
- Ovariectomy (OVX) or sham surgery in aged female mice.
- High-fat diet and subsequent E2 or sesame oil treatment.
- Proteomic analysis of brain homogenates and mitochondrial respiration assays.
Main Results:
- E2 regulated 4,992 proteins, enhancing synaptogenesis signaling.
- OVX reduced proteins in synaptic function, metabolism, and oxidative phosphorylation (OxPhos).
- E2 restored protein expression; Complex IV activity was impaired by OVX but partially reversed by E2.
Conclusions:
- Estrogen therapy maintains proteins vital for synaptic integrity and brain metabolism.
- E2 partially offsets menopause-associated declines in mitochondrial bioenergetics.
- These findings highlight E2's role in supporting brain health during menopause.
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