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Scurria, F.

Publications and source records attributed to Scurria, F..

2 recordsLinked to original sources

A mouse model of human mitofusin 2-related lipodystrophy exhibits adipose-specific mitochondrial stress and reduced leptin secretion

Mitochondrial dysfunction has been reported in obesity and insulin resistance, but primary genetic mitochondrial dysfunction is generally not associated with these, arguing against a straightforward causal relationship. A rare exception, recently identified in humans, is a syndrome of lower body adipose loss, leptin-deficient severe upper body adipose overgrowth, and insulin resistance caused by the p.Arg707Trp mutation in MFN2, encoding mitofusin-2. How this selective perturbation of mitochondrial function leads to tissue- and adipose depot-specific growth abnormalities and systemic biochemical perturbation is unknown. To address this, Mfn2R707W/R707W knock-in mice were generated and phenotyped on chow and high fat diets. Electron microscopy revealed adipose-specific mitochondrial morphological abnormalities. Oxidative phosphorylation by isolated mitochondria was unperturbed, but the cellular integrated stress response was activated in adipose tissue. Fat mass and distribution, body weight, and systemic glucose and lipid metabolism were unchanged, however serum leptin and adiponectin concentrations, and their secretion from adipose explants were reduced. Pharmacological induction of the integrated stress response in wild-type adipocytes also reduced secretion of leptin and adiponectin, suggesting an explanation for the in vivo findings. These data suggest that the p.Arg707Trp MFN2 mutation perturbs mitochondrial morphology and activates the integrated stress response selectively in adipose tissue. In mice, this does not disrupt most adipocyte functions or systemic metabolism, whereas in humans it is associated with pathological adipose remodelling and metabolic disease. In both species, disproportionate effects on leptin secretion may relate to cell autonomous induction of the integrated stress response.

cell biology↗

Endogenous GDF15 and FGF21 additively alleviate hepatic steatosis and insulin resistance in obese mice.

Obesity in mice and humans is associated with elevated levels of at least two hormones responsive to cellular stress, namely GDF15 and FGF21. Over-expression of each of these is associated with weight loss and beneficial metabolic changes but where they are secreted from and what they are required for physiologically in the context of overfeeding remains unclear. Here we used tissue selective knockout mouse models to establish that, like FGF21, circulating GDF15 is primarily derived from the liver, rather than adipose tissue, muscle or macrophages in high fat fed mice. Combined whole body deletion of FGF21 and GDF15 does not result in any additional weight gain in high fat fed mice but is associated with significantly greater hepatic steatosis and insulin resistance. Collectively the data suggest that activation of the integrated stress response in hepatocytes is a major driver for GDF15 and FGF21 secretion in the context of overfeeding, and that they both act to alleviate this metabolic stress.

physiology↗