Short-term physical inactivity induces diacylglycerol accumulation and insulin resistance in muscle via lipin1 activation.
Saori KakehiYoshifumi TamuraShin-Ichi IkedaNaoko KagaHikari TakaNoriko UenoTetsuya ShiuchiAtsushi KubotaKeishoku SakurabaRyuzo KawamoriHirotaka WatadaPublished in: American journal of physiology. Endocrinology and metabolism (2021)
Physical inactivity impairs muscle insulin sensitivity. However, its mechanism is unclear. To model physical inactivity, we applied 24-h hind-limb cast immobilization (HCI) to mice with normal or high-fat diet (HFD) and evaluated intramyocellular lipids and the insulin signaling pathway in the soleus muscle. Although 2-wk HFD alone did not alter intramyocellular diacylglycerol (IMDG) accumulation, HCI alone increased it by 1.9-fold and HCI after HFD further increased it by 3.3-fold. Parallel to this, we found increased protein kinase C ε (PKCε) activity, reduced insulin-induced 2-deoxyglucose (2-DOG) uptake, and reduced phosphorylation of insulin receptor β (IRβ) and Akt, key molecules for insulin signaling pathway. Lipin1, which converts phosphatidic acid to diacylglycerol, showed increase of its activity by HCI, and dominant-negative lipin1 expression in muscle prevented HCI-induced IMDG accumulation and impaired insulin-induced 2-DOG uptake. Furthermore, 24-h leg cast immobilization in human increased lipin1 expression. Thus, even short-term immobilization increases IMDG and impairs insulin sensitivity in muscle via enhanced lipin1 activity.NEW & NOTEWORTHY Physical inactivity impairs muscle insulin sensitivity. However, its mechanism is unclear. To model physical inactivity, we applied 24-h hind-limb cast immobilization to mice with normal or high-fat diet and evaluated intramyocellular lipids and the insulin signaling pathway in the soleus muscle. We found that even short-term immobilization increases intramyocellular diacylglycerol and impairs insulin sensitivity in muscle via enhanced lipin1 activity.
Keyphrases
- high fat diet
- type diabetes
- signaling pathway
- skeletal muscle
- insulin resistance
- adipose tissue
- physical activity
- mental health
- glycemic control
- protein kinase
- high glucose
- poor prognosis
- endothelial cells
- diabetic rats
- metabolic syndrome
- oxidative stress
- drug induced
- cell proliferation
- long non coding rna
- computed tomography
- high fat diet induced
- induced apoptosis