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Updated: Feb 7, 2026

Bioluminescence Imaging of NADPH Oxidase Activity in Different Animal Models
Published on: October 22, 2012
Using ROS as a Second Messenger, NADPH Oxidase 2 Mediates Macrophage Senescence via Interaction with NF-κB during
Hui Li1, Yi-Feng Luo2, Yong-Sheng Wang1
1Department of Respiratory Medicine, the Affiliated Drum Tower Hospital, Nanjing University Medical School, Nanjing 210008, China.
Abstract:
Pseudomonas aeruginosa (PA) is one of the most prevalent pathogens that cause nosocomial infection in critical patients. However, the mechanisms underlying macrophage growth status and functional changes during PA infection are yet unknown. In the present study, NADPH oxidase, gp91phox (NOX2) mediated macrophage to senescence in a PAO1 colony-dependent manner. gp91phox might regulate the senescence process through mutual interaction with the NF-κB pathway. During infection, the overexpression or downregulation of gp91phox in macrophage could affect the nuclear activity of NF-κB p65, while the downregulation of NF-κB p65 led to a suppressed expression of gp91phox. Reactive oxygen species (ROS) served as the second messenger between both molecules as the ROS inhibitor, N-acetylcysteine (NAC), could partially restore these changes. Consequently, the level of ROS and inflammatory cytokines, including IL-6 and TNFα, elevated during PAO1 infection, and their production altered as a result of the genetic manipulation of gp91phox and NF-κB p65, as well as NAC treatment. Also, the senescent phenotypes, SA-β-gal staining and p16ink4a, changed after genetic manipulation with gp91phox and NF-κB p65 and NAC treatment. The capacity of phagocytosis in macrophages was decreased during senescence. In conclusion, PA directs the macrophage towards senescence, and senescent macrophages exhibit a decreased ability of phagocytosis. This process of senescence was regulated by the interactions between NADPH oxidase gp91phox and NF-κB p65 via ROS as a second messenger.
Insights
Pseudomonas aeruginosa infection induces macrophage senescence via NADPH oxidase gp91phox and NF-κB pathway interaction. Senescent macrophages show reduced phagocytosis, impacting critical patient outcomes.
Area of Science:
- Immunology and Microbiology
- Cellular Biology
- Pathogen-Host Interactions
Background:
- Pseudomonas aeruginosa (PA) is a major cause of hospital-acquired infections in critically ill patients.
- The impact of PA infection on macrophage senescence and function remains poorly understood.
Purpose of the Study:
- To elucidate the mechanisms by which PA infection alters macrophage senescence and function.
- To investigate the role of NADPH oxidase gp91phox and the NF-κB pathway in PA-induced macrophage senescence.
Main Methods:
- Investigated the role of gp91phox (NOX2) in PAO1-induced macrophage senescence.
- Examined the interaction between gp91phox and the NF-κB pathway.
- Assessed the role of reactive oxygen species (ROS) using N-acetylcysteine (NAC).
- Analyzed inflammatory cytokine levels (IL-6, TNFα), senescent markers (SA-β-gal, p16ink4a), and phagocytic capacity.
Main Results:
- PAO1 infection induced macrophage senescence in a colony-dependent manner, mediated by gp91phox.
- gp91phox and NF-κB p65 mutually regulated each other, with ROS acting as a second messenger.
- NAC treatment partially reversed infection-induced changes in ROS, cytokines, and senescence markers.
- Senescent macrophages exhibited decreased phagocytic capacity.
Conclusions:
- PA infection drives macrophages towards senescence.
- Macrophage senescence, regulated by gp91phox and NF-κB via ROS, impairs phagocytosis.
- Understanding this mechanism is crucial for managing PA infections in critical care settings.
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