Journal of Neuroscience · 1999 · 189 citations · 32 references
Synaptic TransmissionNeurotransmitterNeurotransmissionCellular NeurobiologyCellular PhysiologySocial SciencesPostsynaptic InhibitionHyperpolarization (Biology)NeurologyNeurochemistryMolecular NeuroscienceMolecular PhysiologyIon ChannelsNervous SystemCell BiologyGabaa ReceptorsSynaptic PlasticityNeurophysiologyPhysiologyMammalian BrainNeuroscienceCentral Nervous SystemCellular BiochemistryMedicine
Efficacy of postsynaptic inhibition through GABAA receptors in the mammalian brain depends on the maintenance of a Cl- gradient for hyperpolarizing Cl- currents. We have taken advantage of the reduced complexity under which Cl- regulation can be investigated in cultured neurons as opposed to neurons in other in vitro preparations of the mammalian brain. Tightseal whole-cell recording of spontaneous GABAA receptor-mediated postsynaptic currents suggested that an outward Cl- transport reduced dendritic [Cl-]i if the somata of cells were loaded with Cl- via the patch pipette. We determined dendritic and somatic reversal potentials of Cl- currents induced by focally applied GABA to calculate [Cl-]i during variation of [K+]o and [Cl-] in the patch pipette. [Cl-]i and [K+]o were tightly coupled by a furosemide-sensitive K+-Cl- cotransport. Thermodynamic considerations excluded the significant contribution of a Na+-K+-Cl- cotransporter to the net Cl- transport. We conclude that under conditions of normal [K+]o the K+-Cl- cotransporter helps to maintain [Cl-]i at low levels, whereas under pathological conditions, under which [K+]o remains elevated because of neuronal hyperactivity, the cotransporter accumulates Cl- in neurons, thereby further enhancing neuronal excitability.
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GABA and glutamate depolarize cortical progenitor cells and inhibit DNA synthesis
Joseph J. LoTurco, David F. Owens, Mark J.S. Heath et al. · Neuron · 1995 · 1.1K citations · Full text