Related Experiment Video
Updated: Aug 9, 2026

Mechanism of Regulation of Adipocyte Numbers in Adult Organisms Through Differentiation and Apoptosis Homeostasis
Published on: June 3, 2016
NOX2 deficiency exacerbates diet-induced obesity and impairs molecular training adaptations in skeletal muscle
Carlos Henriquez-Olguin1, Roberto Meneses-Valdes2, Steffen H Raun3
1The August Krogh Section for Molecular Physiology, Department of Nutrition, Exercise, and Sports, University of Copenhagen, August Krogh Building, Universitetsparken 13, 2100, Copenhagen, Denmark; Exercise Science Laboratory, Faculty of Medicine, Universidad Finis Terrae, Av. Pedro de Valdivia 1509, Santiago, Chile.
Abstract:
The production of reactive oxygen species (ROS) by NADPH oxidase (NOX) 2 has been linked to both insulin resistance and exercise training adaptations in skeletal muscle. This study explores the previously unexamined role of NOX2 in the interplay between diet-induced insulin resistance and exercise training (ET). Using a mouse model that harbors a point mutation in the essential NOX2 regulatory subunit, p47phox (Ncf1*), we investigated the impact of this mutation on various metabolic adaptations. Wild-type (WT) and Ncf1* mice were assigned to three groups: chow diet, 60% energy fat diet (HFD), and HFD with access to running wheels (HFD + E). After a 16-week intervention, a comprehensive phenotypic assessment was performed, including body composition, glucose tolerance, energy intake, muscle insulin signaling, redox-related proteins, and mitochondrial adaptations. The results revealed that NOX2 deficiency exacerbated the impact of HFD on body weight, body composition, and glucose intolerance. Moreover, in Ncf1* mice, ET did not improve glucose tolerance or increase muscle cross-sectional area. ET normalized body fat independently of genotype. The lack of NOX2 activity during ET reduced several metabolic adaptations in skeletal muscle, including insulin signaling and expression of Hexokinase II and oxidative phosphorylation complexes. In conclusion, these findings suggest that NOX2 mediates key beneficial effects of exercise training in the context of diet-induced obesity.
Insights
Reactive oxygen species (ROS) produced by NADPH oxidase (NOX) 2 are crucial for exercise training adaptations. NOX2 deficiency worsens diet-induced insulin resistance and impairs exercise benefits in skeletal muscle.
Area of Science:
- Physiology
- Metabolism
- Molecular Biology
Background:
- Reactive oxygen species (ROS) production by NADPH oxidase (NOX) 2 is implicated in insulin resistance and exercise adaptations.
- The specific role of NOX2 in the interaction between diet-induced insulin resistance and exercise training (ET) remains unexamined.
Purpose of the Study:
- To investigate the role of NOX2 in mediating metabolic adaptations to diet-induced obesity and exercise training.
- To determine the impact of NOX2 deficiency on insulin sensitivity, body composition, and skeletal muscle adaptations.
Main Methods:
- Utilized a mouse model with a mutation in the NOX2 regulatory subunit (Ncf1*).
- Compared wild-type (WT) and Ncf1* mice on chow, high-fat diet (HFD), and HFD with exercise (HFD+E) for 16 weeks.
- Assessed body composition, glucose tolerance, insulin signaling, redox proteins, and mitochondrial function.
Main Results:
- NOX2 deficiency worsened HFD-induced increases in body weight, adiposity, and glucose intolerance.
- Exercise training failed to improve glucose tolerance or muscle mass in Ncf1* mice.
- NOX2 absence diminished exercise-induced improvements in skeletal muscle insulin signaling and mitochondrial adaptations.
Conclusions:
- NOX2 plays a critical role in mediating the beneficial metabolic effects of exercise training, particularly in the context of diet-induced obesity.
- Targeting NOX2 may be a strategy to enhance exercise training outcomes for metabolic health.
More Related Videos
06:53Isolation and Differentiation of Primary Myoblasts from Mouse Skeletal Muscle Explants
Published on: October 15, 2019
06:28A Chronic High-Intensity Interval Training and Diet-Induced Obesity Model to Maximize Exercise Effort and Induce Physiologic Changes in Rats
Published on: April 28, 2023
Related Concept Videos
Cellular Adaptation II: Hypertrophy
Type II Diabetes I: Introduction
Type II Diabetes II: Pathophysiology