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Published on: March 3, 2013
Nox2 and p47(phox) modulate compensatory growth of primary collateral arteries
Matthew R DiStasi1, Joseph L Unthank2, Steven J Miller3
1Department of Microbiology and Immunology, Indiana University School of Medicine, Indianapolis, Indiana;
Abstract:
The role of NADPH oxidase (Nox) in both the promotion and impairment of compensatory collateral growth remains controversial because the specific Nox and reactive oxygen species involved are unclear. The aim of this study was to identify the primary Nox and reactive oxygen species associated with early stage compensatory collateral growth in young, healthy animals. Ligation of the feed arteries that form primary collateral pathways in rat mesentery and mouse hindlimb was used to assess the role of Nox during collateral growth. Changes in mesenteric collateral artery Nox mRNA expression determined by real-time PCR at 1, 3, and 7 days relative to same-animal control arteries suggested a role for Nox subunits Nox2 and p47(phox). Administration of apocynin or Nox2ds-tat suppressed collateral growth in both rat and mouse models, suggesting the Nox2/p47(phox) interaction was involved. Functional significance of p47(phox) expression was assessed by evaluation of collateral growth in rats administered p47(phox) small interfering RNA and in p47(phox-/-) mice. Diameter measurements of collateral mesenteric and gracilis arteries at 7 and 14 days, respectively, indicated no significant collateral growth compared with control rats or C57BL/6 mice. Chronic polyethylene glycol-conjugated catalase administration significantly suppressed collateral development in rats and mice, implying a requirement for H2O2. Taken together, these results suggest that Nox2, modulated at least in part by p47(phox), mediates early stage compensatory collateral development via a process dependent upon peroxide generation. These results have important implications for the use of antioxidants and the development of therapies for peripheral arterial disease.
Insights
NADPH oxidase 2 (Nox2), regulated by p47(phox), drives early collateral artery growth through peroxide signaling. This finding is crucial for developing new therapies for peripheral arterial disease.
Area of Science:
- Vascular Biology
- Biochemistry
- Physiology
Background:
- The precise role of NADPH oxidase (Nox) in collateral circulation is debated due to unclear specific Nox isoforms and reactive oxygen species (ROS).
- Understanding the molecular mechanisms of compensatory collateral growth is vital for treating peripheral arterial disease.
Purpose of the Study:
- To identify the key Nox isoforms and ROS involved in early-stage compensatory collateral growth in young, healthy animal models.
- To elucidate the specific contribution of the Nox2/p47(phox) complex and hydrogen peroxide (H2O2) in this process.
Main Methods:
- Induction of collateral growth via feed artery ligation in rat mesentery and mouse hindlimb models.
- Assessment of Nox mRNA expression using real-time PCR and functional evaluation through pharmacological inhibition (apocynin, Nox2ds-tat) and genetic manipulation (p47(phox) siRNA, p47(phox-/-) mice).
- Evaluation of the role of H2O2 using polyethylene glycol-conjugated catalase.
Main Results:
- Nox subunits Nox2 and p47(phox) were upregulated during early collateral growth.
- Inhibition of Nox2/p47(phox) interaction significantly suppressed collateral development in both rat and mouse models.
- Catalase treatment impaired collateral growth, indicating a requirement for H2O2.
Conclusions:
- Nox2, modulated by p47(phox), is a critical mediator of early compensatory collateral artery development.
- This process is dependent on peroxide (H2O2) generation.
- Findings have significant implications for antioxidant therapies and peripheral arterial disease treatment strategies.
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