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Published on: February 25, 2016
Roles of superoxide, peroxynitrite, and protein kinase C in the development of tolerance to nitroglycerin
G Abou-Mohamed1, J A Johnson, L Jin
1Department of Pharmacology and Toxicology, Medical College of Georgia, Augusta, Georgia 30912, USA.
Abstract:
A current hypothesis states that tolerance to nitroglycerin (GTN) involves increased formation of superoxide (O2*-). Studies showing that inhibitors of protein kinase C (PKC) prevent tolerance to GTN suggest the involvement of PKC activation, which can also increase O2*-. We examined the roles of O2*-, peroxynitrite (ONOO-), and PKC activation in GTN tolerance. Pre-exposure of rat aortic rings to GTN (5 x 10(-4) M) for 2 h caused tolerance to the vasodilating effect of GTN, as evidenced by a substantial rightward shift of GTN concentration-relaxation curves. This shift was reduced by treatment of the rings with the antioxidants uric acid, vitamin C, or tempol or the PKC inhibitor chelerythrine. We also found that O2*- generation via xanthine/xanthine oxidase in the bath induced tolerance to GTN. However, responses to nitroprusside were not affected. In vivo tolerance produced in rats by 3-day i.v. infusion of GTN was also almost completely prevented by coinfusion of tempol. In bovine aortic endothelial cells (EC), addition of GTN produced a marked increase in tyrosine nitrosylation, indicating increased ONOO- formation. This action was blocked by prior treatment with uric acid, superoxide dismutase, NG-nitro-L-arginine methyl ester, or chelerythrine. We also demonstrated that GTN translocates the alpha- and epsilonPKC isoforms in EC. However, PKCzeta was not affected by GTN treatment. In conclusion, tolerance to GTN involves enhanced production of O2*- and ONOO- and activation of NO synthase. Furthermore, sustained activation of alpha- and epsilonPKC isozymes in EC by GTN may play a role in development of tolerance.
Insights
Nitroglycerin tolerance involves increased superoxide and peroxynitrite production, with protein kinase C (PKC) activation playing a key role. Antioxidants and PKC inhibitors prevent this tolerance in both in vitro and in vivo models.
Area of Science:
- Biochemistry
- Pharmacology
- Cardiovascular Research
Background:
- Nitroglycerin (GTN) tolerance is a clinical challenge.
- Current hypotheses link GTN tolerance to increased superoxide (O2*-) formation.
- Protein kinase C (PKC) activation is implicated due to its role in O2*- production.
Purpose of the Study:
- To investigate the roles of O2*-, peroxynitrite (ONOO-), and PKC activation in the development of GTN tolerance.
- To determine if antioxidant treatment or PKC inhibition can prevent GTN tolerance.
Main Methods:
- Rat aortic rings were pre-exposed to GTN to induce tolerance.
- Antioxidants (uric acid, vitamin C, tempol) and a PKC inhibitor (chelerythrine) were used to assess their effects on GTN tolerance.
- In vivo tolerance was induced in rats via GTN infusion.
- Bovine aortic endothelial cells (EC) were used to study ONOO- formation and PKC isoform translocation.
Main Results:
- GTN pre-exposure induced tolerance in rat aortic rings, which was attenuated by antioxidants and chelerythrine.
- Xanthine/xanthine oxidase-induced O2*- generation mimicked GTN tolerance.
- In vivo GTN tolerance was prevented by tempol coinfusion.
- GTN increased tyrosine nitrosylation (indicating ONOO- formation) in EC, an effect blocked by antioxidants, NOS inhibition, and chelerythrine.
- GTN caused translocation of alpha- and epsilonPKC isoforms in EC.
Conclusions:
- Enhanced production of O2*- and ONOO- contributes to GTN tolerance.
- Sustained activation of alpha- and epsilonPKC isoforms in endothelial cells by GTN may be crucial for tolerance development.
- NO synthase activation is also involved in GTN tolerance.
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