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Differentiated Mouse Adipocytes in Primary Culture: A Model of Insulin Resistance
Published on: February 17, 2023
Differentiated Mouse Adipocytes in Primary Culture: A Model of Insulin Resistance
Xarubet Ruiz-Herrera1, Ivan Luzardo-Ocampo2, Gonzalo Martínez de la Escalera2
1Instituto de Neurobiología, Universidad Nacional Autónoma de México (UNAM); xarubet@comunidad.unam.mx.
Abstract:
Insulin resistance is a reduced effect of insulin on its target cells, usually derived from decreased insulin receptor signaling. Insulin resistance contributes to the development of type 2 diabetes (T2D) and other obesity-derived diseases of high prevalence worldwide. Therefore, understanding the mechanisms underlying insulin resistance is of great relevance. Several models have been used to study insulin resistance both in vivo and in vitro; primary adipocytes represent an attractive option to study the mechanisms of insulin resistance and identify molecules that counteract this condition and the molecular targets of insulin-sensitizing drugs. Here, we have established an insulin resistance model using primary adipocytes in culture treated with tumor necrosis factor-α (TNF-α). Adipocyte precursor cells (APCs), isolated from collagenase-digested mouse subcutaneous adipose tissue by magnetic cell separation technology, are differentiated into primary adipocytes. Insulin resistance is then induced by treatment with TNF-α, a proinflammatory cytokine that reduces the tyrosine phosphorylation/activation of members of the insulin signaling cascade. Decreased phosphorylation of insulin receptor (IR), insulin receptor substrate (IRS-1), and protein kinase B (AKT) are quantified by western blot. This method provides an excellent tool to study the mechanisms mediating insulin resistance in adipose tissue.
Insights
This study develops an insulin resistance model using primary adipocytes treated with tumor necrosis factor-α (TNF-α). This model helps investigate mechanisms of insulin resistance and identify potential drug targets for type 2 diabetes.
Area of Science:
- Cell Biology
- Endocrinology
- Metabolic Disease Research
Background:
- Insulin resistance, a key factor in type 2 diabetes (T2D) and obesity-related diseases, stems from impaired insulin receptor signaling.
- Understanding insulin resistance mechanisms is crucial due to its high global prevalence.
Purpose of the Study:
- To establish a reliable in vitro model for studying insulin resistance using primary adipocytes.
- To identify potential molecular targets for insulin-sensitizing drugs.
Main Methods:
- Primary adipocytes were differentiated from mouse adipocyte precursor cells (APCs) isolated via magnetic cell separation.
- Insulin resistance was induced by treating differentiated adipocytes with tumor necrosis factor-α (TNF-α).
- Western blot analysis quantified decreased phosphorylation of insulin receptor (IR), insulin receptor substrate (IRS-1), and protein kinase B (AKT).
Main Results:
- Tumor necrosis factor-α (TNF-α) effectively induced an insulin-resistant state in primary adipocytes.
- Key components of the insulin signaling pathway, including IR, IRS-1, and AKT, showed reduced phosphorylation upon TNF-α treatment.
Conclusions:
- The developed TNF-α-induced primary adipocyte model is effective for studying insulin resistance mechanisms in adipose tissue.
- This model serves as a valuable tool for discovering novel therapeutic strategies against insulin resistance and T2D.

