Literature DB >> 23628292

Reduced angiotensin II levels cause generalized vascular dysfunction via oxidant stress in hamster cheek pouch arterioles.

Jessica R C Priestley1, Matthew W Buelow, Scott T McEwen, Brian D Weinberg, Melanie Delaney, Sarah F Balus, Carlyn Hoeppner, Lynn Dondlinger, Julian H Lombard.   

Abstract

OBJECTIVES: We investigated the effect of suppressing plasma angiotensin II (ANG II) levels on arteriolar relaxation in the hamster cheek pouch.
METHODS: Arteriolar diameters were measured via television microscopy during short-term (3-6days) high salt (HS; 4% NaCl) diet and angiotensin converting enzyme (ACE) inhibition with captopril (100mg/kg/day).
RESULTS: ACE inhibition and/or HS diet eliminated endothelium-dependent arteriolar dilation to acetylcholine, endothelium-independent dilation to the NO donor sodium nitroprusside, the prostacyclin analogs carbacyclin and iloprost, and the KATP channel opener cromakalim; and eliminated arteriolar constriction during KATP channel blockade with glibenclamide. Scavenging of superoxide radicals and low dose ANG II infusion (25ng/kg/min, subcutaneous) reduced oxidant stress and restored arteriolar dilation in arterioles of HS-fed hamsters. Vasoconstriction to topically-applied ANG II was unaffected by HS diet while arteriolar responses to elevation of superfusion solution PO2 were unaffected (5% O2, 10% O2) or reduced (21% O2) by HS diet.
CONCLUSIONS: These findings indicate that sustained exposure to low levels of circulating ANG II leads to widespread dysfunction in endothelium-dependent and independent vascular relaxation mechanisms in cheek pouch arterioles by increasing vascular oxidant stress, but does not potentiate O2- or ANG II-induced constriction of arterioles in the distal microcirculation of normotensive hamsters.
Copyright © 2013 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  ACE; ACh; ANG II; ARB; AT(1); ATP-sensitive potassium channel; Cu/Zn SOD; DHE; HS; K(ATP); L-NAME; LS; MAP; NG-nitro-l-arginine methyl ester; NO; PEG–SOD; PRA; PSS; ROS; RRM; SHR; SNP; SOD; WYK; Wistar–Kyoto rat; acetylcholine; angiotensin II; angiotensin II type 1 receptor; angiotensin converting enzyme; angiotensin receptor blocker; cGMP; copper zinc (intracellular) superoxide dismutase; cyclic guanosine monophosphate; dihydroethidium; ecSOD; extracellular superoxide dismutase; high salt (4.0% NaCl); low salt (0.4% NaCl); mean arterial pressure; nitric oxide; physiological salt solution; plasma renin activity; polyethylene glycol–superoxide dismutase; reactive oxygen species; reduced renal mass; sodium nitroprusside; spontaneously hypertensive rat; superoxide dismutase

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Substances:

Year:  2013        PMID: 23628292      PMCID: PMC3758804          DOI: 10.1016/j.mvr.2013.04.004

Source DB:  PubMed          Journal:  Microvasc Res        ISSN: 0026-2862            Impact factor:   3.514


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