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Updated: Apr 20, 2026

An In Vivo Estrogen Deficiency Mouse Model for Screening Exogenous Estrogen Treatments of Cardiovascular Dysfunction After Menopause
Published on: August 13, 2019
17-β estradiol attenuates ovariectomy-induced changes in cardiomyocyte contractile function via activation of
Subat Turdi1, Anna F Huff1, Jiaojiao Pang2
1Center for Cardiovascular Research and Alternative Medicine, University of Wyoming College of Health Sciences, Laramie, WY 82071, USA.
Abstract:
Menopause increases the risk of cardiometabolic diseases in women. This circumstance is usually attributed to a deficiency in circulating estrogen levels although the underlying mechanism remains elusive. Given the pivotal role of AMP-activated protein kinase (AMPK) in the regulation of energy metabolism and cardiac function, this study was designed to examine the role of AMPK in estrogen deficiency and replacement-exerted cardiomyocyte responses. Adult female WT and AMPK kinase dead (KD) mice were subjected to bilateral ovariectomy (OVX) or sham operation. A cohort of ovariectomized mice received 17β-estradiol (E2) (40μg/kg/day, i.p.) for 6 weeks. Mechanical and intracellular Ca(2+) properties were evaluated including peak shortening (PS), time-to-PS (TPS), time-to-90%-relengthening (TR90), and maximal velocity of shortening/relengthening (±dL/dt). Levels of AMPK, Akt JNK, ACC, SERCA, membrane Glut4, AS160 and PGC-1α were assessed using Western blot. OVX significantly decreased PS, ±dL/dt and intracellular Ca(2+) rise in responsible to electric stimulus, prolonged TR90 and intracellular Ca(2+) decay without affecting TPS and resting intracellular Ca(2+), the effects of which were reconciled by E2 replacement. Western blot analysis depicted that OVX suppressed phosphorylation of Akt AMPK and ACC although it promoted JNK phosphorylation, the effects of which were mitigated or significantly attenuated by E2 treatment in WT but not KD mice. Moreover, OVX procedure downregulated SERCA2a and membrane Glut4 while inhibiting AS160 phosphorylation without affecting PGC-1α levels. In vitro study revealed that E2 corrected cardiomyocyte contractile dysfunction elicited by OVX in cardiomyocytes from WT but not the AMPK kinase dead mice. Taken together, these data suggest that E2 treatment ameliorates estrogen deficiency-induced changes in cardiac contractile function possibly through an AMPK-dependent mechanism.
Insights
Estrogen deficiency after menopause impairs heart function by altering cardiomyocyte responses. Estradiol replacement therapy improves cardiac contractility, potentially through AMP-activated protein kinase (AMPK) pathways.
Area of Science:
- Cardiology
- Endocrinology
- Molecular Biology
Background:
- Menopause is linked to increased cardiometabolic disease risk in women.
- Estrogen deficiency is implicated, but underlying mechanisms in cardiac function are unclear.
- AMP-activated protein kinase (AMPK) plays a key role in energy metabolism and cardiac function.
Purpose of the Study:
- To investigate the role of AMPK in cardiomyocyte responses during estrogen deficiency.
- To examine the effects of estrogen replacement on cardiac function in an ovariectomized mouse model.
Main Methods:
- Adult female wild-type (WT) and AMPK kinase-dead (KD) mice underwent ovariectomy (OVX) or sham surgery.
- Ovariectomized mice received 17β-estradiol (E2) treatment.
- Cardiac mechanical properties, intracellular Ca(2+) handling, and protein levels (AMPK, Akt, SERCA, Glut4) were assessed.
Main Results:
- OVX impaired cardiomyocyte contractility (reduced peak shortening, maximal velocity) and Ca(2+) handling, which E2 treatment reversed.
- OVX decreased Akt and AMPK phosphorylation, while E2 treatment mitigated these changes in WT but not KD mice.
- OVX downregulated SERCA2a and membrane Glut4, and inhibited AS160 phosphorylation.
Conclusions:
- Estrogen deficiency negatively impacts cardiomyocyte contractile function.
- Estrogen replacement therapy ameliorates these deficits.
- The beneficial effects of estrogen on cardiac function appear to be mediated through an AMPK-dependent mechanism.
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