NADPH Oxidases, Reactive Oxygen Species, and Hypertension
NADPH-оксидазы, активные формы кислорода и гипертензия
2008-01-28
SCID: 54.1/9fu338q7
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HypertensionNADPH oxidasesNox familyOxidative stressReactive oxygen species
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Abstract (AI)
Reactive oxygen species (ROS) influence many physiological processes including host defense, hormone biosynthesis, fertilization, and cellular signaling. Increased ROS production (termed "oxidative stress") has been implicated in various pathologies, including hypertension, atherosclerosis, diabetes, and chronic kidney disease. A major source for vascular and renal ROS is a family of nonphagocytic NAD(P)H oxidases, including the prototypic Nox2 homolog-based NAD(P)H oxidase, as well as other NAD(P)H oxidases, such as Nox1 and Nox4. Other possible sources include mitochondrial electron transport enzymes, xanthine oxidase, cyclooxygenase, lipoxygenase, and uncoupled nitric oxide synthase. NAD(P)H oxidase-derived ROS plays a physiological role in the regulation of endothelial function and vascular tone and a pathophysiological role in endothelial dysfunction, inflammation, hypertrophy, apoptosis, migration, fibrosis, angiogenesis, and rarefaction, important processes underlying cardiovascular and renal remodeling in hypertension and diabetes. These findings have evoked considerable interest because of the possibilities that therapies against nonphagocytic NAD(P)H oxidase to decrease ROS generation and/or strategies to increase nitric oxide (NO) availability and antioxidants may be useful in minimizing vascular injury and renal dysfunction and thereby prevent or regress target organ damage associated with hypertension and diabetes. Here we highlight current developments in the field of reactive oxygen species and cardiovascular disease, focusing specifically on the recently identified novel Nox family of NAD(P)H oxidases in hypertension. We also discuss the potential role of targeting ROS as a therapeutic possibility in the management of hypertension and cardiovascular disease.
Key Findings
1
Excessive ROS production contributes to endothelial dysfunction, inflammation, hypertrophy, apoptosis, fibrosis, angiogenesis, rarefaction, and cardiovascular and renal remodeling in hypertension and diabetes.
2
Mitochondrial enzymes, xanthine oxidase, cyclooxygenase, lipoxygenase, and uncoupled nitric oxide synthase may also contribute to vascular and renal oxidative stress.
3
NAD(P)H oxidase-derived reactive oxygen species regulate endothelial function and vascular tone under physiological conditions.
4
Targeting nonphagocytic NAD(P)H oxidases, increasing nitric oxide availability, or using antioxidants may reduce vascular injury, renal dysfunction, and hypertension-associated target-organ damage.
5
Vascular and renal nonphagocytic NAD(P)H oxidases, including Nox1, Nox2, and Nox4, are major sources of reactive oxygen species.
Research Object
Nox family NAD(P)H oxidases and their ROS production in vascular and renal systems
Research Subject
The roles and mechanisms of NAD(P)H oxidase-derived ROS in endothelial dysfunction, vascular and renal remodeling, and hypertension, including their therapeutic targeting
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2008-01-28
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