The impact of high-fat feeding and parkin overexpression on skeletal muscle mass, mitochondrial respiration, and H 2 O 2 emission.
Olivier ReynaudJennifer WangMarie-Belle AyoubJean-Philippe Leduc-GaudetDominique MayakiMaude DulacSabah N A HussainRaynald BergeronGilles GouspillouPublished in: American journal of physiology. Cell physiology (2022)
Obesity is a major risk factor for developing various health problems, including insulin resistance and type 2 diabetes. Although controversial, accumulation of mitochondrial dysfunction, and notably an increase in mitochondrial reactive oxygen species (ROS) production, was proposed as a key contributor leading to obesity-induced insulin resistance. Here, our goal was to investigate whether Parkin overexpression, a key regulator of the removal of dysfunctional mitochondria through mitophagy, could confer protection against obesity-induced mitochondrial dysfunction. To this end, intramuscular injections of adeno-associated viruses (AAVs) were performed to overexpress Parkin in limb muscle of 6-mo-old mice fed a control diet (CD) or a high-fat diet (HFD) for 12 wk. An AAV-expressing the green fluorescent protein (GFP) was used as control. HFD increased fat mass, altered glycemia, and resulted in insulin resistance. Parkin overexpression resulted in an increase in muscle mass in both CD and HFD mice. In CD mice, Parkin overexpression increased maximal mitochondrial respiration and lowered H 2 O 2 emission. HFD increased mitochondrial respiration and, surprisingly, also lowered H 2 O 2 emission. Parkin overexpression did not significantly impact mitochondrial function in HFD mice. Taken altogether, our results indicate that Parkin overexpression positively impacts muscle and mitochondrial health under basal conditions and challenges the notion that intrinsic mitochondrial dysfunction is involved in the development of insulin resistance caused by high-fat feeding.
Keyphrases
- insulin resistance
- high fat diet
- high fat diet induced
- adipose tissue
- skeletal muscle
- type diabetes
- cell proliferation
- metabolic syndrome
- oxidative stress
- transcription factor
- polycystic ovary syndrome
- reactive oxygen species
- mental health
- healthcare
- diabetic rats
- glycemic control
- public health
- cardiovascular disease
- high glucose
- cell death
- drug induced
- risk assessment
- small molecule
- body composition
- heart rate
- binding protein
- gene therapy
- single molecule
- platelet rich plasma