Role of voltage-gated K+ channels in regulating Ca2+ entry in rat cortical astrocytes

被引:0
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作者
King-Chuen Wu
Chang-Shin Kuo
Chia-Chia Chao
Chieh-Chen Huang
Yuan-Kun Tu
Paul Chan
Yuk-Man Leung
机构
[1] E-Da Hospital,Department of Anesthesiology
[2] I-Shou University,Graduate Institute of Neural and Cognitive Sciences
[3] China Medical University,Department of Life Sciences
[4] National Chung Hsing University,Orthopedic Department
[5] E-Da Hospital,Division of Cardiology, Department of Medicine
[6] I-Shou University,undefined
[7] Wan Fang Hospital,undefined
[8] Taipei Medical University,undefined
来源
关键词
Astrocyte; Ca; signaling; Membrane potential; Voltage-gated K; channels;
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摘要
Astrocytes have multiple functions such as provision of nourishment and mechanical support to the nervous system, helping to clear extracellular metabolites of neurons and modulating synaptic transmission by releasing gliotransmitters. In excitable cells, voltage-gated K+ (Kv) channels serve to repolarize during action potentials. Astrocytes are considered non-excitable cells since they are not able to generate action potentials. There is an abundant expression of various Kv channels in astrocytes but the functions of these Kv channels remain unclear. We examined whether these astrocyte Kv channels regulate astrocyte “excitability” in the form of cytosolic Ca2+ signaling. Electrophysiological examination revealed that neonatal rat cortical astrocytes possessed both delayed rectifier type and A-type Kv channels. Pharmacological blockade of both delayed rectifier Kv channels by TEA and A-type Kv channels by quinidine significantly suppressed store-operated Ca2+ influx; however, TEA alone or quinidine alone did not suffice to cause such suppression. TEA and quinidine together dramatically enhanced current injection-triggered membrane potential overshoot (depolarization); either drug alone caused much smaller enhancements. Taken together, the results suggest both delayed rectifier and A-type Kv channels regulate astrocyte Ca2+ signaling via controlling membrane potential.
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页码:171 / 177
页数:6
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