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Assessing Whole-Body Lipid-Handling Capacity in Mice
Published on: November 24, 2020
Functional resilience of C57BL/6J mouse heart to dietary fat overload
Satya Murthy Tadinada1,2, Eric T Weatherford3,2, Greg V Collins2
1Department of Neuroscience and Pharmacology, Carver College of Medicine, University of Iowa, Iowa City, Iowa.
Abstract:
Molecular mechanisms underlying cardiac dysfunction and subsequent heart failure in diabetic cardiomyopathy are incompletely understood. Initially we intended to test the role of G protein-coupled receptor kinase 2 (GRK2), a potential mediator of cardiac dysfunction in diabetic cardiomyopathy, but found that control animals on HFD did not develop cardiomyopathy. Cardiac function was preserved in both wild-type and GRK2 knockout animals fed high-fat diet as indicated by preserved left ventricular ejection fraction (LVEF) although heart mass was increased. The absence of cardiac dysfunction led us to rigorously evaluate the utility of diet-induced obesity to model diabetic cardiomyopathy in mice. Using pure C57BL/6J animals and various diets formulated with different sources of fat-lard (32% saturated fat, 68% unsaturated fat) or hydrogenated coconut oil (95% saturated fat), we consistently observed left ventricular hypertrophy, preserved LVEF, and preserved contractility measured by invasive hemodynamics in animals fed high-fat diet. Gene expression patterns that characterize pathological hypertrophy were not induced, but a modest induction of various collagen isoforms and matrix metalloproteinases was observed in heart with high-fat diet feeding. PPARα-target genes that enhance lipid utilization such as Pdk4, CD36, AcadL, and Cpt1b were induced, but mitochondrial energetics was not impaired. These results suggest that although long-term fat feeding in mice induces cardiac hypertrophy and increases cardiac fatty acid metabolism, it may not be sufficient to activate pathological hypertrophic mechanisms that impair cardiac function or induce cardiac fibrosis. Thus, additional factors that are currently not understood may contribute to the cardiac abnormalities previously reported by many groups.NEW & NOTEWORTHY Dietary fat overload (DFO) is widely used to model diabetic cardiomyopathy but the utility of this model is controversial. We comprehensively characterized cardiac contractile and mitochondrial function in C57BL6/J mice fed with lard-based or saturated fat-enriched diets initiated at two ages. Despite cardiac hypertrophy, contractile and mitochondrial function is preserved, and molecular adaptations likely limit lipotoxicity. The resilience of these hearts to DFO underscores the need to develop robust alternative models of diabetic cardiomyopathy.
Insights
Diet-induced obesity in mice does not fully replicate diabetic cardiomyopathy. High-fat diets cause cardiac hypertrophy but preserve heart function, indicating this model
Area of Science:
- Cardiovascular Biology
- Metabolic Disease Research
- Animal Models of Disease
Background:
- Diabetic cardiomyopathy mechanisms remain unclear.
- Diet-induced obesity is a common model for diabetic cardiomyopathy.
- Previous studies suggest G protein-coupled receptor kinase 2 (GRK2) role in cardiac dysfunction.
Purpose of the Study:
- Evaluate the utility of diet-induced obesity (DIO) in modeling diabetic cardiomyopathy.
- Assess cardiac function and molecular changes in mice fed high-fat diets.
- Investigate the role of GRK2 in diet-induced cardiac changes.
Main Methods:
- Mice (wild-type and GRK2 knockout) were fed high-fat diets (HFD) with varying fat sources.
- Cardiac function was assessed using echocardiography (left ventricular ejection fraction) and invasive hemodynamics.
- Gene expression analysis was performed to evaluate pathological hypertrophy and lipid metabolism markers.
Main Results:
- HFD induced cardiac hypertrophy (increased heart mass) but preserved cardiac function (LVEF, contractility).
- GRK2 knockout did not alter cardiac response to HFD.
- Molecular analysis revealed increased fatty acid metabolism (PPARα-target genes) but not impaired mitochondrial energetics or pathological hypertrophy markers.
- Modest induction of collagen and matrix metalloproteinases was observed.
Conclusions:
- Diet-induced obesity in mice, while causing cardiac hypertrophy and altering lipid metabolism, is insufficient to induce functional cardiac impairment or fibrosis characteristic of diabetic cardiomyopathy.
- The current DIO model may not fully recapitulate the complex pathology of diabetic cardiomyopathy.
- Alternative or refined models are needed to study diabetic cardiomyopathy effectively.

