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Updated: Nov 15, 2025

Differentiated Mouse Adipocytes in Primary Culture: A Model of Insulin Resistance
Published on: February 17, 2023
BTK targeting suppresses inflammatory genes and ameliorates insulin resistance
Mohammad Althubiti1, Riyad Almaimani1, Safaa Yehia Eid1
1Biochemistry Department, Faculty of Medicine, Umm Al-Qura University, Makkah, Saudi Arabia.
Abstract:
Type 2 diabetes (T2D) causes profound psychological and physical distress to patients and burdens the health-care system. Although several antidiabetic drugs have been approved, none of them are adequately effective in the long-term management of T2D. Therefore, novel treatment options are needed for disease prevention or delaying disease progression. Bruton's tyrosine kinase (BTK) is a cytoplasmic enzyme that plays a role in B-cell differentiation and proliferation, and therapeutic targeting of BTK offers protection against chronic diseases. In this study, we analyzed BTK expression and its correlation with inflammatory mediators in patients with diabetes and obesity. The levels of BTK were significantly high in visceral adipose tissues of patients (p < 0.01) with diabetes and obesity compared with healthy controls. Additionally, a positive correlation was noted between the expression of BTK and the inflammatory cytokine genes TNF-α, INF-γ, IL-6, and IL-1 (p < 0.01) in adipose tissue. In insulin-resistant HepG2 cells (IR-HepG2), ibrutinib inhibited BTK expression in parallel with inflammatory genes, and increased insulin signaling and activity compared with untreated IR-HepG2 cells. Additionally, ibrutinib-treated IR-HepG2 cells showed increased glucose uptake compared with untreated IR-HepG2 cells. These results provide evidence that BTK inhibition may serve as a novel therapeutic strategy for the treatment of T2D. These findings also uncover the novel role of BTK in diabetes and insulin resistance; however, further in vivo studies are required prior to translating the findings into clinical settings.
Insights
Bruton
Area of Science:
- Biochemistry
- Immunology
- Endocrinology
Background:
- Type 2 diabetes (T2D) presents significant patient distress and healthcare burdens.
- Current T2D treatments lack long-term efficacy, necessitating novel therapeutic strategies.
- Bruton's tyrosine kinase (BTK) is implicated in B-cell function and chronic disease protection.
Purpose of the Study:
- To investigate Bruton's tyrosine kinase (BTK) expression in diabetes and obesity.
- To determine the correlation between BTK and inflammatory mediators in diabetic patients.
- To evaluate the therapeutic potential of BTK inhibition in insulin resistance.
Main Methods:
- Analysis of BTK expression in visceral adipose tissue from diabetic/obese patients versus controls.
- Correlation analysis between BTK and inflammatory cytokine gene expression (TNF-α, INF-γ, IL-6, IL-1).
- In vitro study using insulin-resistant HepG2 cells treated with ibrutinib (a BTK inhibitor).
Main Results:
- Significantly elevated BTK levels were observed in the adipose tissue of patients with diabetes and obesity.
- BTK expression positively correlated with key inflammatory cytokine genes in adipose tissue.
- Ibrutinib treatment in insulin-resistant cells reduced BTK and inflammatory gene expression, enhanced insulin signaling, and increased glucose uptake.
Conclusions:
- BTK inhibition demonstrates potential as a novel therapeutic strategy for Type 2 diabetes.
- BTK plays a previously unrecognized role in the pathogenesis of diabetes and insulin resistance.
- Further in vivo research is warranted to translate these findings into clinical applications for T2D treatment.
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