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Differential blocking action of dihydropyridine Ca2+ antagonists on a T-type Ca2+ channel (alpha1G) expressed in
Taiji Furukawa1, Toshihide Nukada, Reiko Miura
1Department of Medicine, Teikyo University School of Medicine, Itabashi-ku, Tokyo, Japan. tfrkw@med.teikyo-u.ac.jp
Abstract:
Recent reports show that efonidipine, a dihydropyridine Ca2+ antagonist, has blocking action on T-type Ca2+ channels, which may produce favorable actions on cardiovascular systems. However, the effects of other dihydropyridine Ca2+ antagonists on T-type Ca2+ channels have not been investigated yet. Therefore, in this study, we examined the effects of dihydropyridine compounds clinically used for treatment of hypertension on a T-type Ca2+ channel subtype, alpha1G, expressed in Xenopus oocytes. These effects were compared with those on T-type Ca2+ channel. Rabbit L-type (alpha1Calpha2/deltabeta1a) or rat T-type (alpha1G) Ca2+ channel was expressed in Xenopus oocytes by injection of cRNA for each subunit. The Ba currents through expressed channels were measured by conventional 2-microelectrode voltage-clamp methods. Twelve DHPs (amlodipine, barnidipine, benidipine, cilnidipine, efonidipine, felodipine, manidipine, nicardipine, nifedipine, nilvadipine, nimodipine, nitrendipine) and mibefradil were tested. Cilnidipine, felodipine, nifedipine, nilvadipine, minodipine, and nitrendipine had little effect on the T-type channel. The blocks by drugs at 10 microM were less than 10% at a holding potential of -100 mV. The remaining 6 drugs had blocking action on the T-type channel comparable to that on the L-type channel. The blocking actions were also comparable to that by mibefradil. These results show that many dihydropyridine Ca2+ antagonists have blocking action on the alpha1G channel subtype. The action of dihydropyridine Ca2+ antagonists in clinical treatment should be evaluated on the basis of subtype selectivity.
Insights
Many dihydropyridine Ca2+ channel blockers, used for hypertension, also block T-type channels. This suggests their cardiovascular effects may involve T-type channel interactions, necessitating evaluation of subtype selectivity.
Area of Science:
- Pharmacology
- Cardiovascular Physiology
- Molecular Biology
Background:
- Efonidipine, a dihydropyridine (DHP) Ca2+ antagonist, shows T-type Ca2+ channel blocking activity.
- The impact of other DHPs on T-type Ca2+ channels remains largely uninvestigated.
- T-type Ca2+ channels play a role in cardiovascular function.
Purpose of the Study:
- To investigate the effects of clinically used DHP Ca2+ antagonists on the alpha1G T-type Ca2+ channel subtype.
- To compare the blocking actions of DHPs on T-type versus L-type Ca2+ channels.
- To assess the potential for T-type channel blockade by common antihypertensive medications.
Main Methods:
- Expressed rabbit L-type (alpha1Calpha2/deltabeta1a) and rat T-type (alpha1G) Ca2+ channels in Xenopus oocytes.
- Utilized two-microelectrode voltage-clamp techniques to measure Ba2+ currents.
- Tested twelve DHPs and mibefradil for their effects on expressed Ca2+ channels.
Main Results:
- Six DHPs (cilnidipine, felodipine, nifedipine, nilvadipine, nimodipine, nitrendipine) showed minimal T-type channel blockade (<10% at -100 mV).
- The remaining six DHPs exhibited T-type channel blocking activity comparable to their L-type channel blockade.
- The observed T-type channel blockade by DHPs was similar to that of mibefradil.
Conclusions:
- Several clinically used dihydropyridine Ca2+ antagonists possess significant blocking action on the alpha1G T-type Ca2+ channel subtype.
- The cardiovascular actions of DHPs may be influenced by their effects on T-type Ca2+ channels.
- Clinical efficacy and side effects of DHPs should be considered in light of their subtype selectivity for Ca2+ channels.
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