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Updated: Dec 15, 2025

Assessment of Sarcoplasmic Reticulum Calcium Reserve and Intracellular Diastolic Calcium Removal in Isolated Ventricular Cardiomyocytes
Published on: September 18, 2017
Ageing-associated increase in SGLT2 disrupts mitochondrial/sarcoplasmic reticulum Ca2+ homeostasis and promotes
Yusuf Olgar1, Erkan Tuncay1, Sinan Degirmenci1
1Departments of Biophysics, Ankara University Faculty of Medicine, Ankara, Turkey.
Abstract:
The prevalence of death from cardiovascular disease is significantly higher in elderly populations; the underlying factors that contribute to the age-associated decline in cardiac performance are poorly understood. Herein, we identify the involvement of sodium/glucose co-transporter gene (SGLT2) in disrupted cellular Ca2+ -homeostasis, and mitochondrial dysfunction in age-associated cardiac dysfunction. In contrast to younger rats (6-month of age), older rats (24-month of age) exhibited severe cardiac ultrastructural defects, including deformed, fragmented mitochondria with high electron densities. Cardiomyocytes isolated from aged rats demonstrated increased reactive oxygen species (ROS), loss of mitochondrial membrane potential and altered mitochondrial dynamics, compared with younger controls. Moreover, mitochondrial defects were accompanied by mitochondrial and cytosolic Ca2+ ([Ca2+ ]i ) overload, indicative of disrupted cellular Ca2+ -homeostasis. Interestingly, increased [Ca2+ ]i coincided with decreased phosphorylation of phospholamban (PLB) and contractility. Aged-cardiomyocytes also displayed high Na+ /Ca2+ -exchanger (NCX) activity and blood glucose levels compared with young-controls. Interestingly, the protein level of SGLT2 was dramatically increased in the aged cardiomyocytes. Moreover, SGLT2 inhibition was sufficient to restore age-associated defects in [Ca2+ ]i -homeostasis, PLB phosphorylation, NCX activity and mitochondrial Ca2+ -loading. Hence, the present data suggest that deregulated SGLT2 during ageing disrupts mitochondrial function and cardiac contractility through a mechanism that impinges upon [Ca2+ ]i -homeostasis. Our studies support the notion that interventions that modulate SGLT2-activity can provide benefits in maintaining [Ca2+ ]i and cardiac function with advanced age.
Insights
Aging disrupts cardiac function by impairing calcium (Ca2+) handling and mitochondrial health. Targeting sodium/glucose co-transporter 2 (SGLT2) may restore heart function in older individuals.
Area of Science:
- Cardiology
- Gerontology
- Molecular Biology
Background:
- Cardiovascular disease mortality increases with age.
- Age-associated cardiac dysfunction mechanisms, particularly concerning cellular calcium (Ca2+) homeostasis and mitochondrial function, remain unclear.
Purpose of the Study:
- To investigate the role of sodium/glucose co-transporter 2 (SGLT2) in age-related cardiac dysfunction.
- To explore the impact of SGLT2 on cellular Ca2+ homeostasis and mitochondrial integrity in aging cardiomyocytes.
Main Methods:
- Comparison of cardiac structure and function between young (6-month) and aged (24-month) rats.
- Assessment of cardiomyocyte reactive oxygen species (ROS), mitochondrial membrane potential, and Ca2+ handling.
- Analysis of phospholamban (PLB) phosphorylation, Na+/Ca2+-exchanger (NCX) activity, and SGLT2 protein levels.
- Evaluation of SGLT2 inhibition effects on age-associated cardiac defects.
Main Results:
- Aged rats exhibited cardiac ultrastructural defects, including mitochondrial damage.
- Aging cardiomyocytes showed increased ROS, reduced mitochondrial membrane potential, and impaired Ca2+ homeostasis.
- Elevated cytosolic and mitochondrial Ca2+ overload, decreased PLB phosphorylation, and increased NCX activity were observed in aged cardiomyocytes.
- SGLT2 protein levels were significantly higher in aged cardiomyocytes, and SGLT2 inhibition reversed these age-related functional deficits.
Conclusions:
- Dysregulated SGLT2 contributes to age-associated cardiac dysfunction by disrupting mitochondrial function and Ca2+ homeostasis.
- Modulating SGLT2 activity presents a potential therapeutic strategy for maintaining cardiac function in aging populations.
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