Key result
Eight weeks of moderate intensity exercise training improved cardiac function and decreased heart weight and cardiomyocyte width in heart failure mice by deactivating the calcineurin/NFAT pathway.
Why the study?
Does 8 weeks of moderate intensity exercise training improve cardiac remodelling and function via deactivation of the calcineurin/NFAT pathway in a mouse model of heart failure?
Does 8 weeks of moderate intensity exercise training improve cardiac remodelling and function via deactivation of the calcineurin/NFAT pathway in a mouse model of heart failure?
Moderate intensity exercise training exerts a cardiac anti-remodelling effect in heart failure mice, likely mediated by deactivation of the calcineurin/NFAT pathological hypertrophy signalling pathway.
No immediate change to HF management; leaves open calcineurin/NFAT role in human exercise responses.
Cardiomyocyte hypertrophy occurs in response to a variety of physiological and pathological stimuli. While pathological hypertrophy in heart failure is usually coupled with depressed contractile function, physiological hypertrophy associates with increased contractility. In the present study, we explored whether 8 weeks of moderate intensity exercise training would lead to a cardiac anti-remodelling effect in an experimental model of heart failure associated with a deactivation of a pathological (calcineurin/NFAT, CaMKII/HDAC) or activation of a physiological (Akt-mTOR) hypertrophy signalling pathway. The cardiac dysfunction, exercise intolerance, left ventricle dilatation, increased heart weight and cardiomyocyte hypertrophy from mice lacking alpha(2A) and alpha(2C) adrenoceptors (alpha(2A)/alpha(2C)ARKO mice) were associated with sympathetic hyperactivity induced heart failure. The relative contribution of Ca(2+)-calmodulin high-affinity (calcineurin/NFAT) and low-affinity (CaMKII/HDAC) targets to pathological hypertrophy of alpha(2A)/alpha(2C)ARKO mice was verified. While nuclear calcineurin B, NFATc3 and GATA-4 translocation were significantly increased in alpha(2A)/alpha(2C)ARKO mice, no changes were observed in CaMKII/HDAC activation. As expected, cyclosporine treatment decreased nuclear translocation of calcineurin/NFAT in alpha(2A)/alpha(2C)ARKO mice, which was associated with improved ventricular function and a pronounced anti-remodelling effect. The Akt/mTOR signalling pathway was not activated in alpha(2A)/alpha(2C)ARKO mice. Exercise training improved cardiac function and exercise capacity in alpha(2A)/alpha(2C)ARKO mice and decreased heart weight and cardiomyocyte width paralleled by diminished nuclear NFATc3 and GATA-4 translocation as well as GATA-4 expression levels. When combined, these findings support the notion that deactivation of calcineurin/NFAT pathway-induced pathological hypertrophy is a preferential mechanism by which exercise training leads to the cardiac anti-remodelling effect in heart failure.
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Oliveira et al. (2009) studied Heart failure. Moderate intensity exercise training was evaluated on Cardiac function, exercise capacity, heart weight, cardiomyocyte width, and nuclear NFATc3/GATA-4 translocation. Eight weeks of moderate intensity exercise training improved cardiac function and decreased heart weight and cardiomyocyte width in heart failure mice by deactivating the calcineurin/NFAT pathway.
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