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Analysis of Cardiac Contractile Dysfunction and Ca2+ Transients in Rodent Myocytes
Published on: May 25, 2022
Exercise training reverses myocardial dysfunction induced by CaMKIIδC overexpression by restoring Ca2+ homeostasis
Morten A Høydal1, Tomas O Stølen2, Sarah Kettlewell3
1Norwegian University of Science and Technology, K. G. Jebsen Centre of Exercise in Medicine, Trondheim, Norway; morten.hoydal@ntnu.no.
Insights
High-intensity exercise training rescued cardiac dysfunction in mice with elevated CaMKIIδC. Exercise improved heart function and calcium handling by enhancing L-type Ca(2+) currents and SERCA2a function, despite sustained high CaMKIIδC activity.
Area of Science:
- Cardiology
- Molecular Biology
- Exercise Physiology
Background:
- Elevated cytosolic Ca(2+)/calmodulin-dependent protein kinase II (CaMKIIδC) activity is linked to heart diseases like heart failure.
- CaMKIIδC influences intracellular Ca(2+) homeostasis by targeting key proteins within cardiomyocytes.
Purpose of the Study:
- To investigate if high-intensity endurance training can rescue cardiac dysfunction in the presence of chronically elevated CaMKIIδC.
- To determine the mechanisms by which exercise training improves cardiomyocyte Ca(2+) handling and cardiac function.
Main Methods:
- Aerobic interval exercise training was performed on CaMKIIδC transgenic (TG) and wild-type (WT) mice for 6 weeks.
- Cardiac function was assessed using in vivo echocardiography.
- Cardiomyocyte shortening and intracellular Ca(2+) handling were evaluated in vitro.
Main Results:
- TG mice exhibited reduced cardiac function, cardiomyocyte shortening, and impaired Ca(2+) homeostasis compared to WT mice.
- Exercise training in TG mice restored cardiac function and cardiomyocyte shortening to WT levels, despite unchanged CaMKIIδC levels.
- Key improvements included increased L-type Ca(2+) current density, enhanced sarcoplasmic reticulum Ca(2+)-ATPase (SERCA2a) function, and reduced diastolic SR Ca(2+) leak.
Conclusions:
- Exercise training effectively improves cardiac and cardiomyocyte function in the setting of sustained high CaMKIIδC activity.
- Exercise-induced cardiac benefits are mediated by enhanced L-type Ca(2+) channel activity and improved SR Ca(2+) handling, including restored SERCA2a function and reduced Ca(2+) leak.
Abstract:
Several conditions of heart disease, including heart failure and diabetic cardiomyopathy, are associated with upregulation of cytosolic Ca(2+)/calmodulin-dependent protein kinase II (CaMKIIδC) activity. In the heart, CaMKIIδC isoform targets several proteins involved in intracellular Ca(2+) homeostasis. We hypothesized that high-intensity endurance training activates mechanisms that enable a rescue of dysfunctional cardiomyocyte Ca(2+) handling and thereby ameliorate cardiac dysfunction despite continuous and chronic elevated levels of CaMKIIδC CaMKIIδC transgenic (TG) and wild-type (WT) mice performed aerobic interval exercise training over 6 wk. Cardiac function was measured by echocardiography in vivo, and cardiomyocyte shortening and intracellular Ca(2+) handling were measured in vitro. TG mice had reduced global cardiac function, cardiomyocyte shortening (47% reduced compared with WT, P < 0.01), and impaired Ca(2+) homeostasis. Despite no change in the chronic elevated levels of CaMKIIδC, exercise improved global cardiac function, restored cardiomyocyte shortening, and reestablished Ca(2+) homeostasis to values not different from WT. The key features to explain restored Ca(2+) homeostasis after exercise training were increased L-type Ca(2+) current density and flux by 79 and 85%, respectively (P < 0.01), increased sarcoplasmic reticulum (SR) Ca(2+)-ATPase (SERCA2a) function by 50% (P < 0.01), and reduced diastolic SR Ca(2+) leak by 73% (P < 0.01), compared with sedentary TG mice. In conclusion, exercise training improves global cardiac function as well as cardiomyocyte function in the presence of a maintained high CaMKII activity. The main mechanisms of exercise-induced improvements in TG CaMKIIδC mice are mediated via increased L-type Ca(2+) channel currents and improved SR Ca(2+) handling by restoration of SERCA2a function in addition to reduced diastolic SR Ca(2+) leak.
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