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Published on: November 16, 2011
Pid1 induces insulin resistance in both human and mouse skeletal muscle during obesity
Sabeera Bonala1, Craig McFarlane, Jackie Ang
1School of Biological Sciences, Nanyang Technological University, Singapore 637551.
Abstract:
Obesity is associated with insulin resistance and abnormal peripheral tissue glucose uptake. However, the mechanisms that interfere with insulin signaling and glucose uptake in human skeletal muscle during obesity are not fully characterized. Using microarray, we have identified that the expression of Pid1 gene, which encodes for a protein that contains a phosphotyrosine-interacting domain, is increased in myoblasts established from overweight insulin-resistant individuals. Molecular analysis further validated that both Pid1 mRNA and protein levels are increased in cell culture models of insulin resistance. Consistent with these results, overexpression of phosphotyrosine interaction domain-containing protein 1 (PID1) in human myoblasts resulted in reduced insulin signaling and glucose uptake, whereas knockdown of PID1 enhanced glucose uptake and insulin signaling in human myoblasts and improved the insulin sensitivity following palmitate-, TNF-α-, or myostatin-induced insulin resistance in human myoblasts. Furthermore, the number of mitochondria in myoblasts that ectopically express PID1 was significantly reduced. In addition to overweight humans, we find that Pid1 levels are also increased in all 3 peripheral tissues (liver, skeletal muscle, and adipose tissue) in mouse models of diet-induced obesity and insulin resistance. An in silico search for regulators of Pid1 expression revealed the presence of nuclear factor-κB (NF-κB) binding sites in the Pid1 promoter. Luciferase reporter assays and chromatin immunoprecipitation studies confirmed that NF-κB is sufficient to transcriptionally up-regulate the Pid1 promoter. Furthermore, we find that myostatin up-regulates Pid1 expression via an NF-κB signaling mechanism. Collectively these results indicate that Pid1 is a potent intracellular inhibitor of insulin signaling pathway during obesity in humans and mice.
Insights
Phosphotyrosine interaction domain-containing protein 1 (PID1) is elevated in obesity, hindering insulin signaling and glucose uptake in muscle. Reducing PID1 improves insulin sensitivity, suggesting it
Area of Science:
- Metabolic disease research
- Molecular biology
- Cellular signaling
Background:
- Obesity is linked to insulin resistance and impaired glucose uptake in peripheral tissues.
- The precise molecular mechanisms affecting insulin signaling in human skeletal muscle during obesity remain unclear.
Purpose of the Study:
- To investigate the role of the Pid1 gene and its protein product in insulin resistance within human skeletal muscle.
- To identify regulators of Pid1 expression and its impact on cellular metabolism.
Main Methods:
- Microarray analysis to identify differentially expressed genes in overweight, insulin-resistant individuals.
- Molecular analysis of Pid1 mRNA and protein levels in cell culture models.
- Functional studies involving PID1 overexpression and knockdown in human myoblasts.
- Assessment of mitochondrial content and insulin signaling pathways.
- Analysis of Pid1 expression in mouse models of diet-induced obesity.
- In silico and experimental validation of nuclear factor-κB (NF-κB) as a regulator of Pid1.
Main Results:
- Pid1 gene expression is increased in myoblasts from overweight, insulin-resistant individuals and in cell culture models of insulin resistance.
- Overexpression of PID1 reduces insulin signaling and glucose uptake, while PID1 knockdown enhances these processes.
- PID1 overexpression leads to a significant reduction in mitochondrial number.
- Pid1 levels are elevated in liver, skeletal muscle, and adipose tissue of diet-induced obese mice.
- NF-κB directly up-regulates Pid1 transcription, and myostatin enhances Pid1 expression via NF-κB signaling.
Conclusions:
- Pid1 acts as a significant intracellular inhibitor of the insulin signaling pathway in the context of obesity.
- Pid1 dysregulation contributes to insulin resistance in both human and mouse models.
- NF-κB and myostatin are key regulators of Pid1 expression in obesity-related insulin resistance.
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