Hepatic Insulin Resistance in Hyperthyroid Rat Liver: Vitamin E Supplementation Highlights a Possible Role of ROS.
Gianluca FascioloGaetana NapolitanoMarianna AprileSimona CataldiValerio CostaAlfredo CiccodicolaSergio Di MeoPaola VendittiPublished in: Antioxidants (Basel, Switzerland) (2022)
Thyroid hormones are normally involved in glycaemic control, but their excess can lead to altered glucose metabolism and insulin resistance (IR). Since hyperthyroidism-linked increase in ROS results in tissue oxidative stress that is considered a hallmark of conditions leading to IR, it is conceivable a role of ROS in the onset of IR in hyperthyroidism. To verify this hypothesis, we evaluated the effects of vitamin E on thyroid hormone-induced oxidative damage, insulin resistance, and on gene expression of key molecules involved in IR in the rat liver. The factors involved in oxidative damage, namely the total content of ROS, the mitochondrial production of ROS, the activity of antioxidant enzymes, the in vitro susceptibility to oxidative stress, have been correlated to insulin resistance indices, such as insulin activation of hepatic Akt and plasma level of glucose, insulin and HOMA index. Our results indicate that increased levels of oxidative damage ROS content and production and susceptibility to oxidative damage, parallel increased fasting plasma level of glucose and insulin, reduced activation of Akt and increased activation of JNK. This last result suggests a role for JNK in the insulin resistance induced by hyperthyroidism. Furthermore, the variation of the genes Pparg , Ppara , Cd36 and Slc2a2 could explain, at least in part, the observed metabolic phenotypes.
Keyphrases
- insulin resistance
- oxidative stress
- type diabetes
- dna damage
- cell death
- reactive oxygen species
- diabetic rats
- glycemic control
- signaling pathway
- gene expression
- induced apoptosis
- adipose tissue
- metabolic syndrome
- high fat diet
- polycystic ovary syndrome
- skeletal muscle
- blood glucose
- high fat diet induced
- cell proliferation
- ischemia reperfusion injury
- dna methylation
- genome wide
- blood pressure
- heat shock protein
- weight loss