BACKGROUND: In essential hypertension, endothelium-dependent vasodilation is impaired because of reduced nitric oxide (NO) availability, which is mainly caused by oxidative stress. The present study was designed to identify the mechanism(s) responsible for NO-independent vasodilation to bradykinin in patients with essential hypertension. METHODS AND RESULTS: In 16 healthy subjects (49.5+/-5.8 years; 118.6+/-3.5/78.9+/-2.9 mm Hg) and 16 patients with essential hypertension (47.9+/-4.8 years; 154.6+/-4.5/102.9+/-3.2 mm Hg), we measured modifications in forearm blood flow (strain-gauge plethysmography) during intrabrachial infusion of bradykinin (5, 15, or 50 ng/100 mL of forearm tissue per minute) in the presence of saline, N(omega)-monomethyl-L-arginine (L-NMMA; used to inhibit NO synthase; 100 microg/100 mL of forearm tissue per minute), and ouabain (to block Na(+)K(+)/ATPase and prevent hyperpolarization; 0.7 microg/100 mL of forearm tissue per minute). In healthy subjects, vasodilatation to bradykinin was significantly blunted by L-NMMA and unaffected by ouabain. In hypertensive patients, vasodilatation to bradykinin was not modified by L-NMMA, but it was significantly reduced by ouabain. In an adjunctive group of 8 hypertensive patients (49.9+/-3.8 years; 155.9+/-5.5/103.7+/-3.9 mm Hg), the response to bradykinin was repeated during the administration of intrabrachial vitamin C (a scavenger for oxygen free radicals; 8 mg/100 mL of forearm tissue per minute). In these patients, L-NMMA-induced inhibition of vasodilation to bradykinin was restored, and ouabain was no longer effective. In a final group of 6 normotensive controls (45.9+/-4.1 years; 115.1+/-2.9/79.3+/-2.1 mm Hg), vasodilation to bradykinin residual to L-NMMA blockade was further inhibited by simultaneous ouabain infusion. CONCLUSIONS: Vasodilation to bradykinin is impaired in essential hypertensive patients because of an NO-system alteration caused by oxidative stress, and it is mediated by an alternative pathway, possibly involving endothelium-dependent hyperpolarization.
BACKGROUND: In essential hypertension, endothelium-dependent vasodilation is impaired because of reduced nitric oxide (NO) availability, which is mainly caused by oxidative stress. The present study was designed to identify the mechanism(s) responsible for NO-independent vasodilation to bradykinin in patients with essential hypertension. METHODS AND RESULTS: In 16 healthy subjects (49.5+/-5.8 years; 118.6+/-3.5/78.9+/-2.9 mm Hg) and 16 patients with essential hypertension (47.9+/-4.8 years; 154.6+/-4.5/102.9+/-3.2 mm Hg), we measured modifications in forearm blood flow (strain-gauge plethysmography) during intrabrachial infusion of bradykinin (5, 15, or 50 ng/100 mL of forearm tissue per minute) in the presence of saline, N(omega)-monomethyl-L-arginine (L-NMMA; used to inhibit NO synthase; 100 microg/100 mL of forearm tissue per minute), and ouabain (to block Na(+)K(+)/ATPase and prevent hyperpolarization; 0.7 microg/100 mL of forearm tissue per minute). In healthy subjects, vasodilatation to bradykinin was significantly blunted by L-NMMA and unaffected by ouabain. In hypertensivepatients, vasodilatation to bradykinin was not modified by L-NMMA, but it was significantly reduced by ouabain. In an adjunctive group of 8 hypertensivepatients (49.9+/-3.8 years; 155.9+/-5.5/103.7+/-3.9 mm Hg), the response to bradykinin was repeated during the administration of intrabrachial vitamin C (a scavenger for oxygen free radicals; 8 mg/100 mL of forearm tissue per minute). In these patients, L-NMMA-induced inhibition of vasodilation to bradykinin was restored, and ouabain was no longer effective. In a final group of 6 normotensive controls (45.9+/-4.1 years; 115.1+/-2.9/79.3+/-2.1 mm Hg), vasodilation to bradykinin residual to L-NMMA blockade was further inhibited by simultaneous ouabain infusion. CONCLUSIONS: Vasodilation to bradykinin is impaired in essential hypertensivepatients because of an NO-system alteration caused by oxidative stress, and it is mediated by an alternative pathway, possibly involving endothelium-dependent hyperpolarization.
Authors: Rachel R Markwald; Brett S Kirby; Anne R Crecelius; Rick E Carlson; Wyatt F Voyles; Frank A Dinenno Journal: J Physiol Date: 2011-02-21 Impact factor: 5.182
Authors: Anne R Crecelius; Brett S Kirby; Christopher M Hearon; Gary J Luckasen; Dennis G Larson; Frank A Dinenno Journal: J Physiol Date: 2015-05-20 Impact factor: 5.182
Authors: Praveen Shukla; Srinivas Ghatta; Nidhi Dubey; Caleb O Lemley; Mary Lynn Johnson; Amit Modgil; Kimberly Vonnahme; Joel S Caton; Lawrence P Reynolds; Chengwen Sun; Stephen T O'Rourke Journal: Am J Physiol Heart Circ Physiol Date: 2014-05-09 Impact factor: 4.733
Authors: R Aras-López; J Blanco-Rivero; R Hernanz; A M Briones; L V Rossoni; M Ferrer; M Salaices; G Balfagón Journal: J Physiol Biochem Date: 2008-06 Impact factor: 4.158