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Published on: June 3, 2019
Chemerin reduces vascular nitric oxide/cGMP signalling in rat aorta: a link to vascular dysfunction in obesity?
Karla Bianca Neves, Núbia S Lobato1, Rhéure Alves Moreira Lopes2
1‡Department of Biological Sciences, Federal University of Goias, Jatai, GO, Brazil.
Insights
Chemerin, linked to obesity, impairs blood vessel function by disrupting nitric oxide (NO) signaling. This adipokine reduces NO production and cGMP levels, leading to decreased vasodilation and potential cardiovascular issues.
Area of Science:
- Cardiovascular Physiology
- Endocrinology
- Vascular Biology
Background:
- Chemerin, an adipokine, is associated with cardiovascular complications in obesity and metabolic syndrome.
- Chemerin directly impacts vasculature, enhancing responses to contractile stimuli.
- Obesity and metabolic syndrome involve impaired nitric oxide (NO)/cyclic guanosine monophosphate (cGMP) signaling in vascular dysfunction.
Purpose of the Study:
- To investigate if chemerin induces vascular dysfunction by decreasing NO/cGMP signaling.
- To elucidate the mechanisms by which chemerin affects vascular relaxation and NO production.
Main Methods:
- Isometric tension recording in rat aortic rings incubated with chemerin or vehicle.
- Assessment of vasorelaxation responses to acetylcholine, sodium nitroprusside, and a soluble guanylate cyclase stimulator.
- Analysis of endothelial nitric oxide synthase (eNOS) phosphorylation, mRNA levels of GTP cyclohydrolase I, NO production, reactive oxygen species (ROS) generation, and cGMP levels.
Main Results:
- Chemerin treatment decreased vasorelaxation in response to acetylcholine, sodium nitroprusside, and BAY 412272.
- Tetrahydrobiopterin (BH4), tiron, and tempol abolished chemerin's effects on acetylcholine-induced vasodilation.
- Chemerin increased eNOS phosphorylation (monomeric form), decreased GTP cyclohydrolase I mRNA, reduced NO production, increased ROS generation, and decreased sGC expression and cGMP levels.
Conclusions:
- Chemerin impairs vascular relaxation by reducing NO production and decreasing NO-dependent cGMP signaling.
- Mechanisms include eNOS uncoupling, increased superoxide anion generation, and reduced guanylate cyclase activity.
- Chemerin contributes to vascular dysfunction in conditions like obesity and metabolic syndrome.
Abstract:
The adipokine chemerin has been implicated in cardiovascular complications associated with obesity and the metabolic syndrome. Chemerin has direct effects on the vasculature, augmenting vascular responses to contractile stimuli. As NO/cGMP signalling plays a role in vascular dysfunction associated with obesity and the metabolic syndrome, we hypothesized that chemerin induces vascular dysfunction by decreasing NO/cGMP signalling. Aortic rings from male Wistar rats (10-12 weeks of age) were incubated with chemerin (0.5 or 5 ng/ml for 1 h) or vehicle and isometric tension was recorded. Vasorelaxation in response to ACh (acetylcholine), SNP (sodium nitroprusside) and BAY 412272 [an sGC (soluble guanylate cyclase) stimulator] were decreased in chemerin-treated vessels. The NOS (NO synthase) cofactor BH4 (tetrahydrobiopterin), an O2- (superoxide anion) scavenger (tiron) and a SOD (superoxide dismutase) mimetic (tempol) abolished the effects of chemerin on ACh-induced vasodilation. eNOS (endothelial NOS) phosphorylation, determined by Western blotting, was increased in chemerin-treated vessels; however, the enzyme was mainly in the monomeric form, with decreased eNOS dimer/monomer ratio. Chemerin decreased the mRNA levels of the rate-limiting enzyme for BH4 biosynthesis GTP cyclohydrolase I. Chemerin-incubated vessels displayed decreased NO production, along with increased ROS (reactive oxygen species) generation. These effects were abrogated by BH4, tempol and L-NAME (NG-nitro-L-arginine methyl ester). sGC protein expression and cGMP levels were decreased in chemerin-incubated vessels. These results demonstrate that chemerin reduces NO production, enhances NO breakdown and also decreases NO-dependent cGMP signalling, thereby reducing vascular relaxation. Potential mechanisms mediating the effects of chemerin in the vasculature include eNOS uncoupling, increased O2- generation and reduced GC activity.
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