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Mode- and Cell-Type Dependent Calcium Responses Induced by Electrical Stimulus
28
Citations
20
References
2004
Year
Synaptic TransmissionMechanotransductionNeurotransmissionOptogeneticsCellular PhysiologyCell TypeCa/sup 2+/Hyperpolarization (Biology)Electrical StimulusIntercellular CommunicationCell SignalingBiophysicsCell PhysiologyMolecular SignalingHealth SciencesMolecular PhysiologyIon ChannelsNervous SystemCell BiologySignal TransductionNeurophysiologyPhysiologyMembrane Electrical PotentialNeuroscienceElectrophysiologyCentral Nervous SystemMedicine
Intracellular calcium ion concentration ([Ca/sup 2+/]/sub i/) is known to affect numerous molecular signaling events. Regulation of the [Ca/sup 2+/]/sub i/ could therefore be used to control important cellular and molecular responses, including cell functionality, survival, differentiation, and proliferation. Because changes in the membrane electrical potential (MEP) activate plasma membrane Ca/sup 2+/ influx pathways and increase the [Ca/sup 2+/]/sub i/ level, electrical stimulus (ES) has been used to induce such MEP changes. It now appears that while large ES can directly activate voltage-gated Ca/sup 2+/ channels (VGCCs) by depolarizing the cell membrane, smaller and noninvasive ES could also be applied to activate the Ca/sup 2+/ entry pathways. Elucidation of the electrocoupling mechanisms that control [Ca/sup 2+/]/sub i/ increase is complicated by the observations that not only the mode (e.g., dc or oscillatory) of ES application but also the cell type (e.g., excitable or nonexcitable) regulates calcium responses. The aim of this review article is therefore to provide a comparative description for ES mode- and cell type dependent changes in [Ca/sup 2+/]/sub i/.
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