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Assessment of Vascular Function in Patients With Chronic Kidney Disease
Published on: June 16, 2014
NADPH oxidase-derived reactive oxygen species contribute to impaired cutaneous microvascular function in chronic
Jennifer J DuPont1, Meghan G Ramick1, William B Farquhar2
1Department of Kinesiology and Applied Physiology, University of Delaware, Newark, Delaware;
Abstract:
Oxidative stress promotes vascular dysfunction in chronic kidney disease (CKD). We utilized the cutaneous circulation to test the hypothesis that reactive oxygen species derived from NADPH oxidase and xanthine oxidase impair nitric oxide (NO)-dependent cutaneous vasodilation in CKD. Twenty subjects, 10 stage 3 and 4 patients with CKD (61 ± 4 yr; 5 men/5 women; eGFR: 39 ± 4 ml·min(-1)·1.73 m(-2)) and 10 healthy controls (55 ± 2 yr; 4 men/6 women; eGFR: >60 ml·min(-1)·1.73 m(-2)) were instrumented with 4 intradermal microdialysis fibers for the delivery of 1) Ringer solution (Control), 2) 10 μM tempol (scavenge superoxide), 3) 100 μM apocynin (NAD(P)H oxidase inhibition), and 4) 10 μM allopurinol (xanthine oxidase inhibition). Skin blood flow was measured via laser-Doppler flowmetry during standardized local heating (42°C). N(g)-nitro-l-arginine methyl ester (L-NAME; 10 mM) was infused to quantify the NO-dependent portion of the response. Cutaneous vascular conductance (CVC) was calculated as a percentage of the maximum CVC achieved during sodium nitroprusside infusion at 43°C. Cutaneous vasodilation was attenuated in patients with CKD (77 ± 3 vs. 88 ± 3%, P = 0.01), but augmented with tempol and apocynin (tempol: 88 ± 2 (P = 0.03), apocynin: 91 ± 2% (P = 0.001). The NO-dependent portion of the response was reduced in patients with CKD (41 ± 4 vs. 58 ± 2%, P = 0.04), but improved with tempol and apocynin (tempol: 58 ± 3 (P = 0.03), apocynin: 58 ± 4% (P = 0.03). Inhibition of xanthine oxidase did not alter cutaneous vasodilation in either group (P > 0.05). These data suggest that NAD(P)H oxidase is a source of reactive oxygen species and contributes to microvascular dysfunction in patients with CKD.
Insights
Reactive oxygen species from NAD(P)H oxidase impair nitric oxide-dependent vasodilation in chronic kidney disease (CKD) patients. Targeting this enzyme may improve microvascular function in CKD.
Area of Science:
- Cardiovascular Physiology
- Nephrology
- Oxidative Stress Research
Background:
- Oxidative stress is a key contributor to vascular dysfunction in chronic kidney disease (CKD).
- Reactive oxygen species (ROS) are implicated in impairing nitric oxide (NO)-mediated vasodilation, a critical component of vascular health.
Purpose of the Study:
- To investigate the role of NAD(P)H oxidase and xanthine oxidase in mediating ROS-induced impairment of NO-dependent cutaneous vasodilation in CKD patients.
- To determine if inhibiting these enzymes can restore normal vascular function.
Main Methods:
- Twenty subjects (10 CKD patients, 10 controls) underwent microdialysis infusion of Ringer solution, tempol (superoxide scavenger), apocynin (NAD(P)H oxidase inhibitor), or allopurinol (xanthine oxidase inhibitor).
- Cutaneous blood flow was measured using laser-Doppler flowmetry during local heating.
- Nitric oxide (NO)-dependent vasodilation was assessed using N(G)-nitro-L-arginine methyl ester (L-NAME).
Main Results:
- Cutaneous vasodilation was attenuated in CKD patients compared to controls.
- Tempol and apocynin significantly augmented vasodilation in CKD patients, indicating ROS involvement from NAD(P)H oxidase.
- The NO-dependent portion of vasodilation was reduced in CKD but improved with tempol and apocynin.
- Xanthine oxidase inhibition did not affect vasodilation in either group.
Conclusions:
- NAD(P)H oxidase is a significant source of ROS contributing to microvascular dysfunction in CKD.
- Inhibition of NAD(P)H oxidase may represent a therapeutic strategy to improve vascular function in patients with chronic kidney disease.
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