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Research ArticleCELLULAR AND MOLECULAR

Molecular Mechanisms for Large Conductance Ca2+-Activated K+ Channel Activation by a Novel Opener, 12,14-Dichlorodehydroabietic Acid

Kazuho Sakamoto, Taro Nonomura, Susumu Ohya, Katsuhiko Muraki, Tomohiko Ohwada and Yuji Imaizumi
Journal of Pharmacology and Experimental Therapeutics January 2006, 316 (1) 144-153; DOI: https://doi.org/10.1124/jpet.105.093856
Kazuho Sakamoto
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Taro Nonomura
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Susumu Ohya
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Katsuhiko Muraki
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Tomohiko Ohwada
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Yuji Imaizumi
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Abstract

Our recent study has revealed that 12,14-dichlorodehydroabietic acid (diCl-DHAA), which is synthetically derived from a natural product, abietic acid, is a potent opener of large conductance Ca2+-activated K+ (BK) channel. Here, we examined, by using a channel expression system in human embryonic kidney 293 cells, the mechanisms underlying the BK channel opening action of diCl-DHAA and which subunit of the BK channel (α or β1) is the site of action for diCl-DHAA. BK channel activity was significantly enhanced by diCl-DHAA at concentrations of 0.1 μM and higher in a concentration-dependent manner. diCl-DHAA enhanced the activity of BKα by increasing sensitivity to both Ca2+ and membrane potential without changing the single channel conductance. It is notable that the increase in BK channel open probability by diCl-DHAA showed significant inverse voltage dependence, i.e., larger potentiation at lower potentials. Since coexpression of β1 subunit with BKα did not affect the potency of diCl-DHAA, the site of action for diCl-DHAA is suggested to be BKα subunit. Moreover, kinetic analysis of single channel currents indicates that diCl-DHAA opens BKα mainly by decreasing the time staying in a long closed state. Although reconstituted voltage-dependent Ca2+ channel current was significantly reduced by 1 μM diCl-DHAA, BK channels were selectively activated at lower concentrations. These results indicate that diCl-DHAA is one of the most potent BK channel openers acting on BKα and a useful prototype compound to develop a novel BK channel opener.

Footnotes

  • doi:10.1124/jpet.105.093856.

  • ABBREVIATIONS: BK, large conductance Ca2+-activated K+; [Ca2+]i, intracellular Ca2+ concentration; BMS-204352, (3S)-(+)-(5-chloro-2-methoxyphenyl)-1,3-dihydro-3-fluoro-6-(trifluoromethyl)-2H-indole-2-one; L-735,334, 14-hedroxy 8-daucene-3,4-diol oleate; diCl-DHAA, 12,14-dichlorodehydroabietic acid; CaV, voltage-dependent Ca2+; HEK, human embryonic kidney; I-V, current-voltage; SK, small conductance Ca2+-activated K+; IK, intermediate conductance Ca2+-activated K+; CGS-7181, ethyl 2-hydroxy-1-[[(4-methylphenyl)amino]oxo]-6-trifluoromethyl-1H-indole-3-carboxylate; CGS-7184, ethyl 1-[[(4-chlorophenyl)amino]oxo]-2-hydroxy-6-trifluoromethyl-1H-indole-3-carboxylate; NS-1608, N-(3-(trifluoromethyl)phenyl)-N′-(2-hydroxy-5-chlorophenyl)urea; NS-1619, 1,3-dihydro-1-[2-hydroxy-5-(trifluoromethyl)phenyl]-5-(trifluoromethyl)-2H-benzimidazol-2-one; NS-8, 2-amino-3-cyano-5-(2-fluorophenyl)-4-methylpyrrole.

    • Received August 4, 2005.
    • Accepted September 28, 2005.
  • The American Society for Pharmacology and Experimental Therapeutics
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Journal of Pharmacology and Experimental Therapeutics: 316 (1)
Journal of Pharmacology and Experimental Therapeutics
Vol. 316, Issue 1
1 Jan 2006
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Research ArticleCELLULAR AND MOLECULAR

Molecular Mechanisms for Large Conductance Ca2+-Activated K+ Channel Activation by a Novel Opener, 12,14-Dichlorodehydroabietic Acid

Kazuho Sakamoto, Taro Nonomura, Susumu Ohya, Katsuhiko Muraki, Tomohiko Ohwada and Yuji Imaizumi
Journal of Pharmacology and Experimental Therapeutics January 1, 2006, 316 (1) 144-153; DOI: https://doi.org/10.1124/jpet.105.093856

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Research ArticleCELLULAR AND MOLECULAR

Molecular Mechanisms for Large Conductance Ca2+-Activated K+ Channel Activation by a Novel Opener, 12,14-Dichlorodehydroabietic Acid

Kazuho Sakamoto, Taro Nonomura, Susumu Ohya, Katsuhiko Muraki, Tomohiko Ohwada and Yuji Imaizumi
Journal of Pharmacology and Experimental Therapeutics January 1, 2006, 316 (1) 144-153; DOI: https://doi.org/10.1124/jpet.105.093856
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