Potassium channels contribute to the increased sensitivity of the rabbit carotid artery to hydrogen sulfide in diabetes
-
Add time:08/04/2019 Source:sciencedirect.com
Hydrogen sulfide (H2S) is a potential endothelium-derived hyperpolarizing factor (EDHF) and adventitium- or adipocyte-derived relaxing factor (ADRF) which vasorelaxant action is mediated by potassium channels. H2S could also play an important role in the pathophysiology of diabetic cardiovascular complications. The present study has investigated the influence of alloxan-induced diabetes on the role of potassium channels mediating the relaxant response of the rabbit carotid artery to NaHS, a donor of H2S. NaHS (10−8-3 × 10−5 M) relaxed phenylephrine-precontracted carotid arteries, with higher potency in diabetic than in control rabbits. The selective blockers of potassium channels charybdotoxin, 4-amynopiridine and glibenclamide significantly inhibited the relaxant action of NaHS in diabetic rabbits, but not in control rabbits. When compared to control rabbits, carotid arteries from diabetic rabbits showed significantly reduced expression of big conductance Ca+2-activated potassium channels (BKCa), significantly enhanced expression of intermediate conductance Ca+2-activated potassium channels (IKCa) and not significant different expression of voltage-sensitive potassium channels (KV) and ATP-sensitive potassium channels (KATP). These results suggest that an enhanced role of IKCa, KV and KATP potassium channels could be involved in the increased sensitivity of the rabbit carotid artery to H2S in diabetes.
We also recommend Trading Suppliers and Manufacturers of Potassium monoxide (cas 12136-45-7). Pls Click Website Link as below: cas 12136-45-7 suppliers
Prev:Towards carbon monoxide sensors based on europium doped cerium dioxide
Next:Serum lactate as a predictor of neurologic outcome in ED patients with acute carbon monoxide poisoning) - 【Back】【Close 】【Print】【Add to favorite 】
- Related Information
- Potassium promotion effects in carbon nanotube supported molybdenum sulfide catalysts for carbon monoxide hydrogenation08/07/2019
- Outcome and prognostic factors of patients treated in the intensive care unit for carbon monoxide poisoning08/06/2019
- Serum lactate as a predictor of neurologic outcome in ED patients with acute carbon monoxide poisoning08/05/2019
- Towards carbon monoxide sensors based on europium doped cerium dioxide08/03/2019
- Impact of potassium content on the structure of molybdenum nanophases in alumina supported catalysts and their performance in carbon monoxide hydrogenation08/02/2019
- Gaseous and particulate emissions from a chimneyless biomass cookstove equipped with a potassium catalyst08/01/2019
- Carbon monoxide hydrogenation on potassium promoted Mo2N catalysts07/31/2019
- Inhaled carbon monoxide increases vasodilation in the microvascular circulation07/30/2019
-
Health and Chemical more >
-
Related Products
- Potassium (2S,3S)-3-(ethoxycarbonyl)oxirane-2-carboxylate
- Potassium (4-formylphenyl)trifluoroborate
- Potassium (bromomethyl)trifluoroborate
- Potassium (R)-((3-ethoxy-1-methyl-3-oxoprop-1-enyl)amino)(4-hydroxyphenyl)acetate
- Potassium (R)-(4-hydroxyphenyl)((3-methoxy-1-methyl-3-oxoprop-1-enyl)amino)acetate
- Potassium (R)-[(3-ethoxy-1-methyl-3-oxoprop-1-enyl)amino]phenylacetate
- Potassium [(cyanomethyl)thio]acetate
- Potassium 1,2,3,6-tetrahydro-5-nitro-2,6-dioxopyrimidine-4-carboxylate
- Potassium 2,2-dimethyl-1,3-dioxolane-4-carboxylate
- Potassium 2,3,3-trimethyl-3H-indole-5-sulfonate


