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Published on: February 25, 2016
Aging-associated metabolic disorder induces Nox2 activation and oxidative damage of endothelial function
Lampson M Fan1, Sarah Cahill-Smith2, Li Geng3
1Division of Cardiovascular Medicine, University of Oxford, UK.
Abstract:
Oxidative stress attributable to the activation of a Nox2-containing NADPH oxidase is involved in the development of vascular diseases and in aging. However, the mechanism of Nox2 activation in normal aging remains unclear. In this study, we used age-matched wild-type (WT) and Nox2 knockout (KO) mice at 3-4 months (young); 11-12 months (middle-aged) and 21-22 months (aging) to investigate age-related metabolic disorders, Nox2 activation and endothelial dysfunction. Compared to young mice, middle-aged and aging WT mice had significant hyperglycaemia, hyperinsulinaemia, increased systemic oxidative stress and higher blood pressure. Endothelium-dependent vessel relaxation to acetylcholine was significantly impaired in WT aging aortas, and this was accompanied by increased Nox2 and ICAM-1 expressions, MAPK activation and decreased insulin receptor expression and signaling. However, these aging-associated disorders were significantly reduced or absent in Nox2KO aging mice. The effect of metabolic disorder on Nox2 activation and endothelial dysfunction was further confirmed using high-fat diet-induced obesity and insulin resistance in middle-aged WT mice treated with apocynin (a Nox2 inhibitor). In vitro experiments showed that in response to high glucose plus high insulin challenge, WT coronary microvascular endothelial cells increased significantly the levels of Nox2 expression, activation of stress signaling pathways and the cells were senescent, e.g. increased p53 and β-galactosidase activity. However, these changes were absent in Nox2KO cells. In conclusion, Nox2 activation in response to aging-associated hyperglycaemia and hyperinsulinaemia plays a key role in the oxidative damage of vascular function. Inhibition or knockout of Nox2 preserves endothelial function and improves global metabolism in old age.
Insights
Nox2 activation drives aging-related vascular issues and metabolic disorders. Inhibiting or removing Nox2 protects against these age-related problems, preserving vascular function and improving metabolism.
Area of Science:
- Cardiovascular Biology
- Aging Research
- Metabolic Disorders
Background:
- Oxidative stress from Nox2-containing NADPH oxidase contributes to vascular diseases and aging.
- The precise mechanism of Nox2 activation during normal aging is not fully understood.
Purpose of the Study:
- To investigate age-related metabolic disorders, Nox2 activation, and endothelial dysfunction.
- To elucidate the role of Nox2 in aging-associated vascular and metabolic changes.
Main Methods:
- Utilized age-matched wild-type (WT) and Nox2 knockout (KO) mice (young, middle-aged, aging).
- Assessed metabolic parameters, oxidative stress, blood pressure, and endothelial function.
- Conducted in vitro studies on endothelial cells under high glucose/insulin conditions and used apocynin (Nox2 inhibitor).
Main Results:
- Aging WT mice exhibited hyperglycemia, hyperinsulinemia, oxidative stress, hypertension, and impaired endothelial relaxation.
- These aging phenotypes were significantly reduced in Nox2 KO mice.
- In vitro, high glucose/insulin induced Nox2 expression, stress signaling, and senescence in WT cells, but not in KO cells.
Conclusions:
- Nox2 activation, driven by aging-related hyperglycemia and hyperinsulinemia, is critical for vascular oxidative damage.
- Nox2 inhibition or knockout preserves endothelial function and improves metabolism in aged individuals.
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