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Published on: May 18, 2017
Tissue- and isoform-specific effects of aging in rats on protein kinase C in insulin-sensitive tissues
1Department of Pharmacology, University of Sydney, Sydney, NSW 2006, Australia.
Abstract:
The mechanisms responsible for the age-related decline in insulin sensitivity have not been clearly identified, but activation of the diacylglycerol/protein kinase C (PKC) signalling pathway (often confined to individual isoforms of PKC) has recently been implicated in the pathogenesis of other insulin-resistant states in both humans and animal models. Fasting serum glucose, insulin and triacylglycerol (triglyceride) concentrations, and results of oral glucose tolerance tests, were compared in groups of 6-week-old (n=8) and 6-month-old (n=8) Sprague-Dawley rats. Insulin-responsive tissues (liver, soleus muscle and epididymal fat pad) were collected to compare levels of diacylglycerol, PKC enzyme activity and protein expression of individual PKC isoforms in cytosol and membrane fractions. The older group were heavier (556+/-14 g, compared with 188+/-7 g) and relatively insulin-resistant and hyperinsulinaemic (477+/-73 pM compared with 293+/-51 pM; P<0.05) compared with young rats; they also had greater areas under the serum glucose (old, 20. 3+/-1.1; young, 17.3+/-0.7 mmol.h(-1).l(-1)) and insulin (old, 1254+/-76; young, 721+/-113 mmol.h(-1).l(-1)) profiles following an oral glucose tolerance test, and significantly higher fasting triacylglycerol levels (old, 1.24+/-0.06 mM; young, 0.92+/-0.07 mM; P<0.01). There were no age-related differences in diacylglycerol levels or PKC activity in muscle and liver, but membrane-associated PKC activity was 2.5-fold higher in the adipose tissue of older rats (101+/-19 compared with 40+/-5 pmol.min(-1).mg(-1) protein; P<0.05) due to increased translocation of PKC-beta(I), -beta(II) and -epsilon. Thus insulin resistance due to normal aging is associated with tissue- and isoform-specific changes in diacylglycerol/PKC signalling. In contrast with diabetes and dietary-induced insulin resistance, there were no changes in diacylglycerol/PKC signalling in skeletal muscle and liver, but isoform-specific translocation and higher PKC activity in adipose tissue may blunt the insulin-mediated inhibition of lipolysis and contribute to the increased triacylglycerol levels observed in older animals.
Insights
Aging impairs insulin sensitivity through specific changes in fat tissue signaling. Older rats showed increased protein kinase C (PKC) activity in adipose tissue, contributing to higher triglyceride levels and insulin resistance.
Area of Science:
- Metabolic physiology
- Aging research
- Endocrinology
Background:
- Age-related decline in insulin sensitivity is not fully understood.
- Diacylglycerol/protein kinase C (PKC) signaling pathway activation is implicated in insulin resistance.
Purpose of the Study:
- To investigate age-related changes in insulin sensitivity and the diacylglycerol/PKC pathway in Sprague-Dawley rats.
- To compare insulin-responsive tissues (liver, muscle, fat) between young and aged rats.
Main Methods:
- Oral glucose tolerance tests were performed on young and aged rats.
- Fasting glucose, insulin, and triglyceride levels were measured.
- Diacylglycerol levels, PKC activity, and PKC isoform expression were analyzed in tissue fractions.
Main Results:
- Older rats were heavier, more insulin-resistant, and hyperinsulinemic than younger rats.
- Higher fasting triglyceride levels were observed in older rats.
- Adipose tissue showed increased membrane-associated PKC activity (2.5-fold) in older rats due to PKC-beta(I), -beta(II), and -epsilon translocation, with no changes in liver or muscle.
Conclusions:
- Normal aging is associated with tissue- and isoform-specific alterations in diacylglycerol/PKC signaling.
- Increased PKC activity in adipose tissue of older rats may impair insulin's inhibition of lipolysis, contributing to elevated triglycerides.
- Unlike diabetes, aging-related insulin resistance shows no changes in liver or skeletal muscle PKC signaling.
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