Increasing beta-hydroxybutyrate levels in failing mouse hearts increased ketone oxidation and total energy production by 23% without improving cardiac efficiency.
Does increasing ketone oxidation improve cardiac energy production and efficiency in failing hearts?
Increasing ketone oxidation in failing hearts provides additional energy without compromising glucose or fatty acid metabolism, but does not improve cardiac efficiency.
Absolute Event Rate: 834% vs 251%
p-value: p=<0.05
AIMS: The failing heart is energy-starved and inefficient due to perturbations in energy metabolism. Although ketone oxidation has been shown recently to increase in the failing heart, it remains unknown whether this improves cardiac energy production or efficiency. We therefore assessed cardiac metabolism in failing hearts and determined whether increasing ketone oxidation improves cardiac energy production and efficiency. METHODS AND RESULTS: C57BL/6J mice underwent sham or transverse aortic constriction (TAC) surgery to induce pressure overload hypertrophy over 4-weeks. Isolated working hearts from these mice were perfused with radiolabelled β-hydroxybutyrate (βOHB), glucose, or palmitate to assess cardiac metabolism. Ejection fraction decreased by 45% in TAC mice. Failing hearts had decreased glucose oxidation while palmitate oxidation remained unchanged, resulting in a 35% decrease in energy production. Increasing βOHB levels from 0.2 to 0.6 mM increased ketone oxidation rates from 251 ± 24 to 834 ± 116 nmol·g dry wt-1 · min-1 in TAC hearts, rates which were significantly increased compared to sham hearts and occurred without decreasing glycolysis, glucose, or palmitate oxidation rates. Therefore, the contribution of ketones to energy production in TAC hearts increased to 18% and total energy production increased by 23%. Interestingly, glucose oxidation, in parallel with total ATP production, was also significantly upregulated in hearts upon increasing βOHB levels. However, while overall energy production increased, cardiac efficiency was not improved. CONCLUSIONS: Increasing ketone oxidation rates in failing hearts increases overall energy production without compromising glucose or fatty acid metabolism, albeit without increasing cardiac efficiency.
Ho et al. (Mon,) conducted a other in Heart failure (pressure overload hypertrophy) (n=46). beta-hydroxybutyrate (bOHB) vs. 200 µM bOHB was evaluated on Ketone oxidation rates (nmol/g dry wt/min) (p=<0.05). Increasing beta-hydroxybutyrate levels in failing mouse hearts increased ketone oxidation and total energy production by 23% without improving cardiac efficiency.
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