Related Experiment Video
Updated: Feb 26, 2026

Author Spotlight: Semi-Automated Isolation of the Stromal Vascular Fraction from Murine White Adipose Tissue Using a Tissue Dissociator
Published on: May 19, 2023
DOCK2 deficiency mitigates HFD-induced obesity by reducing adipose tissue inflammation and increasing energy
Xia Guo1, Feifei Li2, Zaiyan Xu3
1Departments of Physiology and Pharmacology, University of Georgia, Athens, GA.
Abstract:
Obesity is the major risk factor for type 2 diabetes, cardiovascular disorders, and many other diseases. Adipose tissue inflammation is frequently associated with obesity and contributes to the morbidity and mortality. Dedicator of cytokinesis 2 (DOCK2) is involved in several inflammatory diseases, but its role in obesity remains unknown. To explore the function of DOCK2 in obesity and insulin resistance, WT and DOCK2-deficient (DOCK2-/-) mice were given chow or high-fat diet (HFD) for 12 weeks followed by metabolic, biochemical, and histologic analyses. DOCK2 was robustly induced in adipose tissues of WT mice given HFD. DOCK2-/- mice with HFD showed decreased body weight gain and improved metabolic homeostasis and insulin resistance compared with WT mice. DOCK2 deficiency also attenuated adipose tissue and systemic inflammation accompanied by reduced macrophage infiltration. Moreover, DOCK2-/- mice exhibited increased expression of metabolic genes in adipose tissues with greater energy expenditure. Mechanistically, DOCK2 appeared to regulate brown adipocyte differentiation because increased preadipocyte differentiation to brown adipocytes in interscapular and inguinal fat was observed in DOCK2-/- mice, as compared with WT. These data indicated that DOCK2 deficiency protects mice from HFD-induced obesity, at least in part, by stimulating brown adipocyte differentiation. Therefore, targeting DOCK2 may be a potential therapeutic strategy for treating obesity-associated diseases.
Insights
Dedicator of cytokinesis 2 (DOCK2) deficiency reduces obesity and insulin resistance by promoting brown fat development. Targeting DOCK2 may offer a new strategy for treating obesity-related diseases.
Area of Science:
- Biochemistry
- Immunology
- Metabolic Diseases
Background:
- Obesity is a primary risk factor for type 2 diabetes and cardiovascular diseases.
- Adipose tissue inflammation, common in obesity, increases morbidity and mortality.
- The role of Dedicator of cytokinesis 2 (DOCK2) in obesity and insulin resistance is currently unknown.
Purpose of the Study:
- To investigate the function of DOCK2 in diet-induced obesity and insulin resistance.
- To determine the impact of DOCK2 deficiency on adipose tissue inflammation and metabolic homeostasis.
Main Methods:
- Wild-type (WT) and DOCK2-deficient (DOCK2-/-) mice were fed a high-fat diet (HFD) or chow for 12 weeks.
- Metabolic, biochemical, and histological analyses were performed.
- Gene expression and macrophage infiltration in adipose tissue were assessed.
Main Results:
- DOCK2 expression increased in adipose tissue of WT mice on HFD.
- DOCK2-/- mice on HFD exhibited reduced body weight gain, improved insulin resistance, and attenuated inflammation.
- DOCK2 deficiency enhanced brown adipocyte differentiation and increased energy expenditure.
Conclusions:
- DOCK2 deficiency protects against HFD-induced obesity by promoting brown adipocyte differentiation.
- DOCK2 plays a significant role in regulating obesity and associated metabolic dysfunction.
- Targeting DOCK2 presents a potential therapeutic avenue for obesity-associated diseases.

