Madin-Darby canine kidney (MDCK) cells form arachidonic acid metabolites following stimulation of several hormones known to modify the ion conductances at the plasma membrane. The present study has been performed to elucidate the influence of arachidonic acid on the electrical properties of subconfl
Effect of trifluoperazine on renal epitheloid madin-darby canine kidney cells
✍ Scribed by M. Paulmichl; E. Wöll; H. Weiss; S. Waldegger; F. Lang
- Publisher
- John Wiley and Sons
- Year
- 1991
- Tongue
- English
- Weight
- 593 KB
- Volume
- 148
- Category
- Article
- ISSN
- 0021-9541
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✦ Synopsis
Following exposure to a number of hormones, the cell membrane in Madin-Darby Canine Kidney (MDCK) cells is hyperpolarized by increase of intracellular calcium activity. The present study has been performed to elucidate the possible role of calmodulin in the regulation of intracellular calcium activity and cell membrane potential. To this end trifluoperazine has been added during continuous recording of cell membrane potential or intracellular calcium. Trifluoperazine leads to a transient increase of intracellular calcium as well as a sustained hyperpolarization of the cell membrane by activation of calcium sensitive K+ channels. Half-maxirnal effects are observed between 1 and 10 pmollL trifluoperazine. A further calmodulin antagonist, chlorpromazine, (50 pmol/L), similarly hyperpolarizes the cell membrane. The effects of trifluoperazine are virtually abolished in the absence of extracellular calcium. Pretreatment of the cells with either pertussis toxin or phorbolester TPA does not interfere with the hyperpolarizing effect of trifluoperazine. In conclusion, calmodulin is apparently involved in the regulation of calcium transfer across the cell membrane but not in the stimulation of K' channels by intracellular calcium.
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