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Assessing Whole-Body Lipid-Handling Capacity in Mice
Published on: November 24, 2020
Caveolin-1-deficient mice are lean, resistant to diet-induced obesity, and show hypertriglyceridemia with adipocyte
Babak Razani1, Terry P Combs, Xiao Bo Wang
1Department of Molecular Pharmacology, The Albert Einstein Cancer Center, Albert Einstein College of Medicine, Bronx, New York 10461, USA.
Abstract:
Caveolae organelles and caveolin-1 protein expression are most abundant in adipocytes and endothelial cells. Our initial report on mice lacking caveolin-1 (Cav-1) demonstrated a loss of caveolae and perturbations in endothelial cell function. More recently, however, observation of the Cav-1-deficient cohorts into old age revealed significantly lower body weights, as compared with wild-type controls. These results suggest that Cav-1 null mice may have problems with lipid metabolism and/or adipocyte functioning. To test this hypothesis directly, we placed a cohort of wild-type and Cav-1 null mice on a high fat diet. Interestingly, despite being hyperphagic, Cav-1 null mice show overt resistance to diet-induced obesity. As predicted, adipocytes from Cav-1 null null mice lack caveolae membranes. Early on, a lack of caveolin-1 selectively affects only the female mammary gland fat pad and results in a near complete ablation of the hypo-dermal fat layer. There are also indications of generalized adipose tissue pathology. With increasing age, a systemic decompensation in lipid accumulation occurs resulting in dramatically smaller fat pads, histologically reduced adipocyte cell diameter, and a poorly differentiated/hypercellular white adipose parenchyma. To gain mechanistic insights into this phenotype, we show that, although serum insulin, glucose, and cholesterol levels are entirely normal, Cav-1 null mice have severely elevated triglyceride and free fatty acid levels, especially in the post-prandial state. However, this build-up of triglyceride-rich chylomicrons/very low density lipoproteins is not due to perturbed lipoprotein lipase activity, a major culprit of isolated hypertriglyceridemia. The lean body phenotype and metabolic defects observed in Cav-1 null mice are consistent with the previously proposed functions of caveolin-1 and caveolae in adipocytes. Our results show for the first time a clear role for caveolins in systemic lipid homeostasis in vivo and place caveolin-1/caveolae as major factors in hyperlipidemias and obesity.
Insights
Mice lacking caveolin-1 (Cav-1) resist obesity and display lean body weights, despite increased eating. This study reveals Cav-1’s crucial role in regulating lipid metabolism and preventing hyperlipidemia.
Area of Science:
- Cell Biology
- Metabolic Diseases
- Lipid Metabolism
Background:
- Caveolae and caveolin-1 (Cav-1) are abundant in adipocytes and endothelial cells.
- Cav-1 deficient mice initially show endothelial dysfunction, and later, reduced body weight.
- This suggests a role for Cav-1 in lipid metabolism and adipocyte function.
Purpose of the Study:
- To investigate the direct role of Cav-1 in diet-induced obesity and lipid metabolism.
- To understand the mechanisms behind the lean phenotype in Cav-1 null mice.
Main Methods:
- Feeding wild-type and Cav-1 null mice a high-fat diet.
- Analyzing body weight, adipocyte morphology, and lipid levels (serum triglycerides, free fatty acids, insulin, glucose, cholesterol).
- Assessing lipoprotein lipase activity.
Main Results:
- Cav-1 null mice were resistant to diet-induced obesity despite hyperphagia.
- Adipocytes in Cav-1 null mice lacked caveolae, with early effects on mammary fat pads and hypo-dermal fat.
- Older Cav-1 null mice exhibited systemic lipid accumulation defects, smaller fat pads, reduced adipocyte size, and elevated post-prandial triglycerides and free fatty acids, independent of lipoprotein lipase activity.
Conclusions:
- Caveolin-1 is essential for normal lipid homeostasis and preventing obesity.
- Cav-1 deficiency leads to a lean phenotype and metabolic dysregulation characterized by hypertriglyceridemia.
- These findings highlight caveolin-1 and caveolae as key factors in systemic lipid metabolism, obesity, and hyperlipidemia.

