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October 25, 2005Circulation502 citations

Reduced Mitochondrial Oxidative Capacity and Increased Mitochondrial Uncoupling Impair Myocardial Energetics in Obesity

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SBSihem BoudinaSSSandra SenaBOBrian T. O’Neill

Key Result

In ob/ob mice, perfusion with glucose and palmitate reduced cardiac efficiency by 23% under basal conditions due to fatty acid-induced mitochondrial uncoupling.

Structured PICO

P
Population
9-week-old ob/ob and control mice evaluated for cardiac function and mitochondrial energetics.
E
Exposure
Ex vivo heart perfusion with glucose and palmitate
C
Comparator
Ex vivo heart perfusion with glucose alone, and comparison to control mouse hearts
O
Outcome
Cardiac function, myocardial oxygen consumption (MVO2), mitochondrial respiration, and ATP synthesissurrogate

In a murine model of obesity, fatty acid-induced mitochondrial uncoupling and reduced oxidative capacity impair myocardial energetics and cardiac efficiency.

Abstract

BACKGROUND: Obesity is a risk factor for cardiovascular disease and is strongly associated with insulin resistance and type 2 diabetes. Recent studies in obese humans and animals demonstrated increased myocardial oxygen consumption (MVO2) and reduced cardiac efficiency (CE); however, the underlying mechanisms remain unclear. The present study was performed to determine whether mitochondrial dysfunction and uncoupling are responsible for reduced cardiac performance and efficiency in ob/ob mice. METHODS AND RESULTS: Cardiac function, MVO2, mitochondrial respiration, and ATP synthesis were measured in 9-week-old ob/ob and control mouse hearts. Contractile function and MVO2 in glucose-perfused ob/ob hearts were similar to controls under basal conditions but were reduced under high workload. Perfusion of ob/ob hearts with glucose and palmitate increased MVO2 and reduced CE by 23% under basal conditions, and CE remained impaired at high workload. In glucose-perfused ob/ob hearts, mitochondrial state 3 respirations were reduced but ATP/O ratios were unchanged. In contrast, state 3 respiration rates were similar in ob/ob and control mitochondria from hearts perfused with palmitate and glucose, but ATP synthesis rates and ATP/O ratios were significantly reduced in ob/ob, which suggests increased mitochondrial uncoupling. Pyruvate dehydrogenase activity and protein levels of complexes I, III, and V were reduced in obese mice. CONCLUSIONS: These data indicate that reduced mitochondrial oxidative capacity may contribute to cardiac dysfunction in ob/ob mice. Moreover, fatty acid but not glucose-induced mitochondrial uncoupling reduces CE in obese mice by limiting ATP production and increasing MVO2.

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Cite This Study

Boudina et al. (2005) studied Obesity. Obesity (ob/ob genotype) vs. Control mice was evaluated on Cardiac efficiency, myocardial oxygen consumption, and mitochondrial respiration. In ob/ob mice, perfusion with glucose and palmitate reduced cardiac efficiency by 23% under basal conditions due to fatty acid-induced mitochondrial uncoupling.

synapsesocial.com/papers/6a6281657581c4a485c259edhttps://doi.org/10.1161/circulationaha.105.554360
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