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Updated: May 21, 2026

Measurement of Endothelium-Dependent Vasorelaxation in the Mouse Thoracic Aorta Using Tensometric Small Volume Chamber Myography
Published on: August 12, 2022
Mepivacaine-induced contraction is attenuated by endothelial nitric oxide release in isolated rat aorta
Hui-Jin Sung1, Mun-Jeoung Choi, Seong-Ho Ok
1Department of Anesthesiology, Charmjoeun Obstetrics and Gynecology Clinic, Jinju, Korea.
Abstract:
Mepivacaine is an aminoamide-linked local anesthetic with an intermediate duration that intrinsically produces vasoconstriction both in vivo and in vitro. The aims of this in-vitro study were to examine the direct effect of mepivacaine in isolated rat aortic rings and to determine the associated cellular mechanism with a particular focus on endothelium-derived vasodilators, which modulate vascular tone. In the aortic rings with or without endothelium, cumulative mepivacaine concentration-response curves were generated in the presence or absence of the following antagonists: N(ω)-nitro-L-arginine methyl ester [L-NAME], indomethacin, fluconazole, methylene blue, 1H-[1,2,4]oxadiazolo[4,3-a]quinoxalin-1-one [ODQ], verapamil, and calcium-free Krebs solution. Mepivacaine produced vasoconstriction at low concentrations (1 × 10(-3) and 3 × 10(-3) mol/L) followed by vasodilation at a high concentration (1 × 10(-2) mol/L). The mepivacaine-induced contraction was higher in endothelium-denuded aortae than in endothelium-intact aortae. Pretreatment with L-NAME, ODQ, and methylene blue enhanced mepivacaine-induced contraction in the endothelium-intact rings, whereas fluconazole had no effect. Indomethacin slightly attenuated mepivacaine-induced contraction, whereas verapamil and calcium-free Krebs solution more strongly attenuated this contraction. The vasoconstriction induced by mepivacaine is attenuated mainly by the endothelial nitric oxide - cyclic guanosine monophosphate pathway. In addition, mepivacaine-induced contraction involves cyclooxygenase pathway activation and extracellular calcium influx via voltage-operated calcium channels.
Insights
Mepivacaine causes vasoconstriction at low doses, primarily via the nitric oxide pathway. Higher doses may cause vasodilation, with contractions involving cyclooxygenase and calcium channels.
Area of Science:
- Pharmacology
- Cardiovascular Physiology
Background:
- Mepivacaine, an aminoamide local anesthetic, exhibits intrinsic vasoconstrictive properties.
- Understanding its vascular effects and cellular mechanisms is crucial for clinical application.
Purpose of the Study:
- To investigate the direct effects of mepivacaine on isolated rat aortic rings.
- To elucidate the cellular mechanisms underlying mepivacaine's vascular actions, focusing on endothelium-derived mediators.
Main Methods:
- Cumulative concentration-response curves of mepivacaine were generated in rat aortic rings with or without endothelium.
- The study utilized various antagonists, including L-NAME, indomethacin, methylene blue, ODQ, verapamil, and calcium-free solution.
Main Results:
- Mepivacaine induced concentration-dependent vasoconstriction at low concentrations and vasodilation at high concentrations.
- Vasoconstriction was more pronounced in endothelium-denuded rings.
- Inhibition of nitric oxide synthase (L-NAME, ODQ, methylene blue) enhanced contraction, while indomethacin slightly attenuated it.
Conclusions:
- Mepivacaine-induced vasoconstriction is primarily mediated by the endothelial nitric oxide/cyclic guanosine monophosphate pathway.
- The cyclooxygenase pathway and extracellular calcium influx through voltage-operated calcium channels also contribute to mepivacaine's vasoconstrictive effects.
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