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A Method to Study the Impact of Chemically-induced Ovarian Failure on Exercise Capacity and Cardiac Adaptation in Mice
Published on: April 7, 2014
Perimenopause Decreases SERCA2a Activity in the Hearts of a Mouse Model of Ovarian Failure
Ciara Barry1, Sarah Rouhana1, Jessica L Braun2,3
1IMPART Team Canada Investigator Network, Dalhousie Medicine, Saint John, NB E2K 5E2, Canada.
Abstract:
Risk of cardiovascular disease mortality rises in women after menopause. While increased cardiovascular risk is largely attributed to postmenopausal declines in estrogens, the molecular changes in the heart that contribute to risk are poorly understood. Disruptions in intracellular calcium handling develop in ovariectomized mice and have been implicated in cardiac dysfunction. Using a mouse model of menopause in which ovarian failure occurs over 120 days, we sought to determine if perimenopause impacted calcium removal mechanisms in the heart and identify the molecular mechanisms. Mice were injected with 4-vinylcyclohexene diepoxide (VCD) to induce ovarian failure over 120 days, mimicking perimenopause. Hearts were removed at 60 and 120 days after VCD injections, representing the middle and end of perimenopause. SERCA2a function was significantly diminished at the end of perimenopause. Neither SERCA2a nor phospholamban expression changed at either time point, but phospholamban phosphorylation at S16 and T17 was dynamically altered. Intrinsic SERCA inhibitors sarcolipin and myoregulin increased >4-fold at day 60, as did the native activator DWORF. At the end of perimenopause, sarcolipin and myoregulin returned to baseline levels while DWORF was significantly reduced below controls. Sodium-calcium exchanger expression was significantly increased at the end of perimenopause. These results show that the foundation for increased cardiovascular disease mortality develops in the heart during perimenopause and that regulators of calcium handling exhibit significant fluctuations over time. Understanding the temporal development of cardiovascular risk associated with menopause and the underlying mechanisms is critical to developing interventions that mitigate the rise in cardiovascular mortality that arises after menopause.
Insights
Cardiovascular disease risk increases after menopause due to poorly understood molecular heart changes. This study reveals critical alterations in heart calcium handling during perimenopause, impacting cardiac function and disease risk.
Area of Science:
- Cardiovascular Biology
- Reproductive Biology
- Molecular Cardiology
Background:
- Postmenopausal cardiovascular disease mortality risk is linked to estrogen decline, but underlying cardiac molecular changes remain unclear.
- Intracellular calcium handling disruptions are implicated in cardiac dysfunction following ovarian failure.
Purpose of the Study:
- To investigate the impact of perimenopause on cardiac calcium handling mechanisms.
- To identify molecular changes in the heart during the menopausal transition.
Main Methods:
- A mouse model using 4-vinylcyclohexene diepoxide (VCD) to induce ovarian failure over 120 days, mimicking perimenopause.
- Cardiac tissue analysis at 60 and 120 days to assess calcium handling proteins and regulators.
Main Results:
- Sarco/endoplasmic reticulum Ca2+-ATPase 2a (SERCA2a) function significantly decreased by the end of perimenopause.
- Dynamic alterations in phospholamban phosphorylation and significant increases in SERCA inhibitors (sarcolipin, myoregulin) were observed early in perimenopause.
- Expression of the sodium-calcium exchanger increased by the end of perimenopause, while DWORF levels decreased.
Conclusions:
- The study identifies significant temporal fluctuations in cardiac calcium handling regulators during perimenopause.
- These molecular changes in the heart during the menopausal transition contribute to the increased cardiovascular disease mortality risk observed postmenopause.
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