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Testosterone causes simultaneous decrease of [Ca2+]I and tension in rabbit coronary arteries: by opening voltage
Eunkyoung Won1, Jongeun Won, Seongchun Kwon
1Department of Physiology, Yonsei University College of Medicine, Seoul, Korea.
Abstract:
The relationship between the level of testosterone and the incidence of coronary heart disease is still controversial in the view of the results of clinical and epidemiologic studies. This uncertainty might be partly due to relatively small number of experimental studies undertaken to investigate the cellular mechanism underlying the vascular responses to testosterone. To further investigate the cellular mechanisms of testosterone with respect to vascular response, we investigated the effect of testosterone on contractility and intracellular Ca2+ regulation in a rabbit coronary artery and evaluated the underlying mechanism of testosterone-induced changes of coronary vascular tone by using various pharmacological blockers. Testosterone was found to relax rabbit coronary arteries in a dose-dependent manner, and no significant difference was found in the relaxation response to testosterone with or without endothelium. Similar results were obtained in male and non-pregnant female rabbit coronary arteries. The relaxation response of rabbit coronary arteries to testosterone was greater for PGF2alpha-contracted rings than for KCl contracted rings, which suggest the involvement of K+ channels. Furthermore, the relaxation response to testosterone was significantly reduced by 4-aminopyridine, a sensitive blocker of voltage dependent K+ channels, but not by low doses of tetraethylammonium or iberiotoxin, a Ca2+ activated K+ channel blocker. Testosterone simultaneously reduced the intracellular Ca2+ concentration ([Ca2+]i) and tension, and 4-AP effectively antagonized the testosterone-induced change of [Ca2+]i and tension. Therefore, it may be concluded that the stimulation of voltage dependent K channels is responsible, at least in part, for the testosterone-induced relaxation of rabbit coronary arteries.
Insights
Testosterone relaxes rabbit coronary arteries by opening voltage-dependent K+ channels, reducing intracellular calcium and tension. This finding clarifies testosterone
Area of Science:
- Cardiovascular Physiology
- Endocrinology
Background:
- The link between testosterone levels and coronary heart disease remains debated.
- Limited experimental studies exist on testosterone's cellular mechanisms in vascular responses.
Purpose of the Study:
- To investigate testosterone's effects on rabbit coronary artery contractility and intracellular calcium ([Ca2+]i).
- To elucidate the mechanism of testosterone-induced changes in coronary vascular tone.
Main Methods:
- Used isolated rabbit coronary arteries.
- Administered testosterone and various pharmacological blockers (e.g., 4-aminopyridine).
- Measured contractility and intracellular calcium ([Ca2+]i).
Main Results:
- Testosterone induced dose-dependent relaxation in rabbit coronary arteries.
- Relaxation involved K+ channels, specifically voltage-dependent K+ channels, as indicated by 4-aminopyridine's effect.
- Testosterone reduced both tension and intracellular calcium ([Ca2+]i).
Conclusions:
- Testosterone-induced relaxation of coronary arteries is partly mediated by stimulating voltage-dependent K+ channels.
- This action reduces intracellular calcium and vascular tension.
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