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Isolation of Human Atrial Myocytes for Simultaneous Measurements of Ca2+ Transients and Membrane Currents
Published on: July 3, 2013
Testosterone is a potent inhibitor of L-type Ca(2+) channels
Jason L Scragg1, Richard D Jones, Kevin S Channer
1Institute for Cardiovascular Research, University of Leeds, Leeds LS2 9JT, UK.
Insights
Testosterone acts as a calcium channel antagonist, reducing calcium influx in vascular smooth muscle. This mechanism explains its beneficial effects in alleviating myocardial ischemia and promoting vasodilation in men with coronary artery disease.
Area of Science:
- Cardiovascular Physiology
- Endocrinology
- Pharmacology
Background:
- Coronary artery disease (CAD) is linked to low testosterone levels (hypotestosteronaemia).
- Testosterone administration improves myocardial ischemia and causes vasodilation in men with CAD.
- The precise mechanism behind testosterone's cardiovascular benefits remains unclear.
Purpose of the Study:
- To investigate if testosterone functions as an endogenous calcium (Ca2+) channel antagonist.
- To compare testosterone's action to that of dihydropyridine antihypertensive drugs.
Main Methods:
- Whole-cell patch-clamp technique used to record Ca2+ currents.
- Experiments conducted on A7r5 smooth muscle cell line and HEK 293 cells expressing L- or T-type Ca2+ channels.
- Tested inhibition of native and recombinant Ca2+ channels by testosterone.
Main Results:
- Testosterone directly inhibited vascular L-type Ca2+ channels with an IC50 of 38 nM (physiological range).
- Inhibition was voltage-independent.
- Supraphysiological concentrations of testosterone inhibited T-type Ca2+ channels.
Conclusions:
- Testosterone acts as a calcium channel blocker, similar to dihydropyridines.
- It reduces Ca2+ influx into vascular smooth muscle, promoting vasodilation.
- This action likely underlies testosterone's beneficial cardiovascular effects in CAD.
Abstract:
Testosterone administration is beneficial in alleviating myocardial ischaemia in men with significant coronary artery disease (CAD), a condition which is associated with hypotestosteronaemia. Infusion of physiological concentrations of testosterone into coronary arteries at angiography results in rapid vasodilatation in patients with CAD. Whilst the cardiovascular benefits of testosterone have long been documented, the underlying mechanism(s) have not yet been revealed. Here, we have investigated whether testosterone might act like widely prescribed antihypertensive dihydropyridines, as an endogenous Ca(2+) channel antagonist. To do this, we used the whole-cell patch-clamp technique to record Ca(2+) currents from the A7r5 smooth muscle cell line and HEK 293 cells stably expressing either L- or T-type Ca(2+) channels. We demonstrate that testosterone directly inhibited both native and human recombinant vascular L-type Ca(2+) channels in a manner that was voltage-independent and, crucially, displayed an IC(50) value of 38 nM, a value within the physiological range. At higher (supraphysiological) concentrations both native and human recombinant T-type channels were also inhibited by testosterone. Our data indicate that testosterone acts like widely prescribed antihypertensive dihydropyridines to reduce Ca(2+) influx into vascular smooth muscle and so promote vasodilation. This effect is likely to account for its beneficial cardiovascular actions.
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