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Updated: Nov 18, 2025

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Published on: January 4, 2018
MG53 is not a critical regulator of insulin signaling pathway in skeletal muscle
Clothilde Philouze1, Sophie Turban1, Beatrice Cremers1
1Institut de Recherches Servier, Cardiovascular and Metabolic Research, Suresnes, France.
Abstract:
In type 2 diabetes (T2D), both muscle and liver are severely resistant to insulin action. Muscle insulin resistance accounts for more than 80% of the impairment in total body glucose disposal in T2D patients and is often characterized by an impaired insulin signaling. Mitsugumin 53 (MG53), a muscle-specific TRIM family protein initially identified as a key regulator of cell membrane repair machinery has been suggested to be a critical regulator of muscle insulin signaling pathway by acting as ubiquitin E3 ligase targeting both the insulin receptor and insulin receptor substrate 1 (IRS1). Here, we show using in vitro and in vivo approaches that MG53 is not a critical regulator of insulin signaling and glucose homeostasis. First, MG53 expression is not consistently regulated in skeletal muscle from various preclinical models of insulin resistance. Second, MG53 gene knock-down in muscle cells does not lead to impaired insulin response as measured by Akt phosphorylation on Serine 473 and glucose uptake. Third, recombinant human MG53 does not alter insulin response in both differentiated C2C12 and human skeletal muscle cells. Fourth, ectopic expression of MG53 in HEK293 cells lacking endogenous MG53 expression fails to alter insulin response as measured by Akt phosphorylation. Finally, both male and female mg53 -/- mice were not resistant to high fat induced obesity and glucose intolerance compared to wild-type mice. Taken together, these results strongly suggest that MG53 is not a critical regulator of insulin signaling pathway in skeletal muscle.
Insights
Mitsugumin 53 (MG53) does not critically regulate insulin signaling in skeletal muscle. Studies show MG53 gene knockdown and knockout mice do not affect insulin response or glucose homeostasis in type 2 diabetes models.
Area of Science:
- Metabolic diseases
- Cellular signaling
- Molecular biology
Background:
- Type 2 diabetes (T2D) involves severe insulin resistance in muscle and liver.
- Muscle insulin resistance significantly impairs glucose disposal in T2D.
- Mitsugumin 53 (MG53) was proposed as a key regulator of muscle insulin signaling.
Purpose of the Study:
- To investigate the role of MG53 in muscle insulin signaling and glucose homeostasis.
- To determine if MG53 is a critical regulator of the insulin signaling pathway.
Main Methods:
- In vitro studies using muscle cells and HEK293 cells.
- In vivo studies with MG53 gene knockdown and knockout mice.
- Assessed insulin response via Akt phosphorylation and glucose uptake.
- Evaluated response to high-fat diet-induced obesity and glucose intolerance.
Main Results:
- MG53 expression is not consistently altered in preclinical insulin resistance models.
- MG53 knockdown in muscle cells did not impair insulin response.
- Recombinant MG53 and ectopic expression did not affect insulin signaling.
- MG53 knockout mice showed no resistance to obesity or glucose intolerance.
Conclusions:
- MG53 is not a critical regulator of insulin signaling in skeletal muscle.
- These findings challenge the proposed role of MG53 in muscle insulin resistance.
- Further research is needed to identify key regulators of muscle insulin signaling in T2D.
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