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Updated: Nov 24, 2025

Differentiated Mouse Adipocytes in Primary Culture: A Model of Insulin Resistance
Published on: February 17, 2023
Increase in PPARγ inhibitory phosphorylation by Fetuin-A through the activation of Ras-MEK-ERK pathway causes insulin
Snehasis Das1, Dipanjan Chattopadhyay1, Subhendu K Chatterjee1
1Endocrinology and Metabolism Laboratory, Department of Zoology, Siksha Bhavana (Institute of Science), Visva-Bharati (A Central University), Santiniketan - 731235, India.
Abstract:
Obesity induced insulin resistance is primarily regulated by the inhibitory phosphorylation of peroxisome proliferator-activated receptor γ at serine 273 (PPARγS273) which has been shown to be regulated by MEK and ERK. An upstream regulatory molecule of this pathway could be a therapeutic option. Here we analyzed the involvement of Fetuin-A (FetA), a key hepato-adipokine implicated in insulin resistance, as an upstream regulator molecule for the regulation of PPARγ inhibitory phosphorylation. Mice fed with standard diet (SD), high fat diet (HFD) and HFD with FetA knockdown (HFD-FetAKD) were used to examine the role of FetA on PPARγS273 phosphorylation in adipocytes. The mechanism of regulation and its effect on skeletal muscle were studied using primary adipocytes, 3T3-L1 (preadipocyte) and C2C12 (myotube) cell lines. Increased FetA in HFD mice strongly correlated with augmentation of PPARγS273 phosphorylation in inflamed adipocytes while knockdown of FetA suppressed it. This effect of FetA was mediated through the activation of Ras which in turn activated MEK and ERK. On addressing how FetA could stimulate activation of Ras, we found that FetA triggered TNFα in inflamed adipocytes which induced Ras activation. The ensuing sharp fall in adiponectin level attenuated AMPK activation in skeletal muscle cells affecting mitochondrial ATP production. Our data reveal the essential role of FetA induced activation of Ras in regulating PPARγ inhibitory phosphorylation through Ras-MEK-ERK pathway which downregulates adiponectin disrupting skeletal muscle mitochondrial bioenergetics. Thus, FetA mediated PPARγ inactivation has adverse consequences upon adipocyte-myocyte crosstalk leading to disruption of energy homeostasis and loss of insulin sensitivity.
Insights
Fetuin-A (FetA) drives insulin resistance by promoting inhibitory phosphorylation of PPARγ via the Ras-MEK-ERK pathway. This disrupts adiponectin signaling, impairing skeletal muscle energy production and overall metabolic health.
Area of Science:
- Metabolic diseases
- Molecular endocrinology
- Cellular signaling
Background:
- Obesity-induced insulin resistance is linked to inhibitory phosphorylation of peroxisome proliferator-activated receptor γ (PPARγS273).
- Identifying upstream regulators of this pathway is crucial for therapeutic development.
Purpose of the Study:
- To investigate Fetuin-A (FetA) as a potential upstream regulator of PPARγ inhibitory phosphorylation in insulin resistance.
- To elucidate the molecular mechanisms by which FetA influences this pathway and its impact on skeletal muscle.
Main Methods:
- Utilized mouse models (standard diet, high-fat diet, HFD with FetA knockdown).
- Employed primary adipocytes, 3T3-L1 preadipocytes, and C2C12 myotubes for mechanistic studies.
- Analyzed PPARγS273 phosphorylation, Ras, MEK, ERK, TNFα, adiponectin, and AMPK activation.
Main Results:
- Increased FetA in high-fat diet (HFD) mice correlated with elevated PPARγS273 phosphorylation in adipocytes; FetA knockdown suppressed this.
- FetA activated Ras, leading to MEK/ERK activation, and triggered TNFα release in inflamed adipocytes.
- FetA reduced adiponectin, attenuated AMPK activation in skeletal muscle, and impaired mitochondrial ATP production.
Conclusions:
- FetA plays a key role in regulating PPARγ inhibitory phosphorylation through the Ras-MEK-ERK pathway.
- FetA-mediated PPARγ inactivation disrupts adipocyte-myocyte crosstalk, leading to impaired skeletal muscle bioenergetics and insulin sensitivity.
- FetA represents a potential therapeutic target for metabolic disorders.
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