Exercise, heat shock proteins and insulin resistance.
Ashley E ArcherAlex T Von SchulzePaige C GeigerPublished in: Philosophical transactions of the Royal Society of London. Series B, Biological sciences (2018)
Best known as chaperones, heat shock proteins (HSPs) also have roles in cell signalling and regulation of metabolism. Rodent studies demonstrate that heat treatment, transgenic overexpression and pharmacological induction of HSP72 prevent high-fat diet-induced glucose intolerance and skeletal muscle insulin resistance. Overexpression of skeletal muscle HSP72 in mice has been shown to increase endurance running capacity nearly twofold and increase mitochondrial content by 50%. A positive correlation between HSP72 mRNA expression and mitochondrial enzyme activity has been observed in human skeletal muscle, and HSP72 expression is markedly decreased in skeletal muscle of insulin resistant and type 2 diabetic patients. In addition, decreased levels of HSP72 correlate with insulin resistance and non-alcoholic fatty liver disease progression in livers from obese patients. These data suggest the targeted induction of HSPs could be a therapeutic approach for preventing metabolic disease by maintaining the body's natural stress response. Exercise elicits a number of metabolic adaptations and is a powerful tool in the prevention and treatment of insulin resistance. Exercise training is also a stimulus for increased HSP expression. Although the underlying mechanism(s) for exercise-induced HSP expression are currently unknown, the HSP response may be critical for the beneficial metabolic effects of exercise. Exercise-induced extracellular HSP release may also contribute to metabolic homeostasis by actively restoring HSP72 content in insulin resistant tissues containing low endogenous levels of HSPs.This article is part of the theme issue 'Heat shock proteins as modulators and therapeutic targets of chronic disease: an integrated perspective'.
Keyphrases
- heat shock
- insulin resistance
- skeletal muscle
- high fat diet induced
- heat shock protein
- heat stress
- type diabetes
- adipose tissue
- oxidative stress
- high fat diet
- high intensity
- metabolic syndrome
- polycystic ovary syndrome
- poor prognosis
- glycemic control
- obese patients
- gene expression
- cell proliferation
- transcription factor
- small molecule
- bariatric surgery
- endothelial cells
- resistance training
- mesenchymal stem cells
- gastric bypass
- drug induced
- electronic health record
- artificial intelligence
- bone marrow
- liver injury
- body composition
- cancer therapy
- cell therapy
- replacement therapy
- drug delivery