1.Membrane stretch increases the activity of Ca(2+)-activated K+ channels in rabbit coronary vascular smooth muscles.
Cheol Joo LEE ; Sungchoon KWON ; Young Ho LEE ; Duck Sun AHN ; Bok Soon KANG
Yonsei Medical Journal 2000;41(2):266-272
It has been proposed that Ca(2+)-activated K+ channels play an essential role in maintaining vascular tone during stretch of blood vessel. However, the underlying mechanism of stretch-induced change of Ca(2+)-activated K+ channel activities are still unknown. The present experiment was designed to investigate the effect of membrane stretch on these channels whose activity was measured from rabbit coronary smooth muscle cells using a patch clamp technique. Ca(2+)-activated K+ channel were identified by their Ca2+ and voltage dependencies and its large conductances as in other preparations. Perfusion of cells with a hypotonic solution, which mimics stretching the cell membrane by making a cell swelling, produced an increase in channel activity in cell-attached patch mode. The similar increase was observed when negative pressure was applied into the patch pipette for stretching the cell membrane within a patch area. In inside-out patch, stretch still increased channel activity even under the conditions which exclude the possible involvement of secondary messengers, or of transmembrane Ca2+ influx via stretch-activated cation channels. Pretreatment of arachidonic acid or albumin showed no effect on stretch-induced channel activation, excluding the possibility of fatty acids mediated channel activation during membrane stretch. These results indicate that the stretch may directly increase the activity of Ca(2+)-activated K+ channels in our experimental condition.
Animal
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Arachidonic Acid/pharmacology
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Calcium/pharmacology*
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Calcium/metabolism
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Cell Membrane/physiology
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Coronary Vessels/physiology*
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Hypotonic Solutions/pharmacology
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Membrane Potentials
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Muscle, Smooth, Vascular/physiology*
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Potassium Channels/physiology*
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Rabbits
2.Sulfhydryl modification affects coronary artery tension by changing activity of delayed rectifier K+ current.
Miyong HA ; Sungchoon KWON ; Young Ho LEE ; Dongsoo YEON ; Duck Sun AHN
Yonsei Medical Journal 2000;41(3):372-380
It has been reported that a change in the cellular redox state may be involved in the regulation of vascular tone, but the underlying mechanism is not fully understood. The present study was designed to investigate the cellular effect of sulfhydryl modifying agents in the coronary artery of rabbit using the tension measurement and whole cell clamping method. The application of diamide, a sulfhydryl oxidizing agent, relaxed the endothelium denuded coronary arteries in a dose dependent manner. The fact that this diamide-induced relaxation was significantly attenuated by a pretreatment of 4-AP, and the coronary arteries precontracted with 100 mM K+ instead of histamine, suggests the involvement of 4-AP sensitive K+ channels in the diamide-induced relaxation of coronary arteries. Whole cell patch clamp studies revealed that the 4-AP sensitive IdK was significantly enhanced by the membrane permeant oxidizing agents, diamide and DTDP, and were reversed by subsequent exposure to the reducing agent, DTT. Neither the membrane impermeant oxidizing or reducing agents, GSSG or GSH, had any effect on the activity of IdK, indicating that intracellular sulfhydryl modification is critical for modulating IdK activity. The Diamide failed to significantly alter the voltage dependence of the activation and inactivation parameters, and did not change the inactivation process, suggesting that diamide increases the number of functional channels without altering their gating properties. Since IdK has been believed to play an important role in regulating membrane potential and arterial tone, our results about the effect of sulfhydryl modifying agents on coronary arterial tone and IdK activity should help understand the pathophysiology of the diseases, where oxidative damage has been implicated.
Animal
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Arteries/physiology
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Arteries/drug effects
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Arteries/cytology
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Coronary Vessels/physiology
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Coronary Vessels/drug effects*
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Coronary Vessels/cytology
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Female
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Male
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Oxidants/pharmacology*
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Potassium Channels/physiology
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Rabbits
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Reducing Agents/pharmacology*
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Sulfhydryl Compounds/metabolism*