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Updated: Jun 1, 2026

Application of Chronic Stimulation to Study Contractile Activity-induced Rat Skeletal Muscle Phenotypic Adaptations
Published on: January 25, 2018
Chronic CaMKII inhibition blunts the cardiac contractile response to exercise training
Guri Kaurstad1, Marcia N Alves, Ole J Kemi
1K.G. Jebsen Center of Exercise in Medicine, Norwegian University of Science and Technology (NTNU), Trondheim, Norway.
Insights
Chronic Ca(2+)/calmodulin-dependent protein kinase II (CaMKII) inhibition with KN-93 enhanced exercise capacity in mice. However, it impaired cardiac function and blunted exercise benefits on cardiomyocyte shortening, revealing complex effects.
Area of Science:
- Cardiovascular Physiology
- Exercise Science
- Molecular Cardiology
Background:
- Ca(2+)/calmodulin-dependent protein kinase II (CaMKII) is crucial for cardiac function.
- Understanding CaMKII's role in exercise adaptation is vital for cardiac health and disease management.
Purpose of the Study:
- To investigate the impact of chronic CaMKII inhibition on cardiorespiratory function and cardiac performance during exercise training in healthy mice.
- To elucidate the specific effects of KN-93, a CaMKII inhibitor, on exercise capacity and cardiac remodeling.
Main Methods:
- Randomized controlled trial in mice with four groups: sham sedentary, sham exercise, KN-93 sedentary, and KN-93 exercise.
- Cardiorespiratory fitness assessed via ergospirometry.
- Cardiac function evaluated using echocardiography and cardiomyocyte contractility assays.
Main Results:
- CaMKII inhibition (KN-93) alone did not affect exercise capacity or fractional shortening.
- Exercise training significantly increased maximal oxygen uptake in KN-93 treated mice compared to sham mice (22% vs 8%).
- KN-93 impaired exercise-induced improvements in in vivo fractional shortening and blunted cardiomyocyte fractional shortening response to training.
Conclusions:
- Chronic CaMKII inhibition paradoxically enhances maximal oxygen uptake during exercise training.
- CaMKII inhibition negatively impacts cardiac function and cardiomyocyte contractility, despite exercise.
- The effects of CaMKII inhibition on cardiac function and exercise adaptation are complex and multifaceted.
Abstract:
Activation of the multifunctional Ca(2+)/calmodulin-dependent protein kinase II (CaMKII) plays a critical role modulating cardiac function in both health and disease. Here, we determined the effect of chronic CaMKII inhibition during an exercise training program in healthy mice. CaMKII was inhibited by KN-93 injections. Mice were randomized to the following groups: sham sedentary, sham exercise, KN-93 sedentary, and KN-93 exercise. Cardiorespiratory function was evaluated by ergospirometry during treadmill running, echocardiography, and cardiomyocyte fractional shortening and calcium handling. The results revealed that KN-93 alone had no effect on exercise capacity or fractional shortening. In sham animals, exercise training increased maximal oxygen uptake by 8% (p < 0.05) compared to a 22% (p < 0.05) increase after exercise in KN-93 treated mice (group difference p < 0.01). In contrast, in vivo fractional shortening evaluated by echocardiography improved after exercise in sham animals only: from 25 to 32% (p < 0.02). In inactive mice, KN-93 reduced rates of diastolic cardiomyocyte re-lengthening (by 25%, p < 0.05) as well as Ca(2+) transient decay (by 16%, p < 0.05), whereas no such effect was observed after exercise training. KN-93 blunted exercise training response on cardiomyocyte fractional shortening (63% sham vs. 18% KN-93; p < 0.01 and p < 0.05, respectively). These effects could not be solely explained by the Ca(2+) transient amplitude, as KN-93 reduced it by 20% (p < 0.05) and response to exercise training was equal (64% sham and 47% KN-93; both p < 0.01). We concluded that chronic CaMKII inhibition increased time to 50% re-lengthening which were recovered by exercise training, but paradoxically led to a greater increase in maximal oxygen uptake compared to sham mice. Thus, the effect of chronic CaMKII inhibition is multifaceted and of a complex nature.
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