Potassium conductances mediate bidirectional state-dependent modulation of action potential evoked dendritic calcium signals in dentate gyrus granule cells
Autor: | Szabadics János, Brunner János |
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Rok vydání: | 2014 |
Předmět: |
dendritic calcium
granule cell Chemistry Cognitive Neuroscience Potassium Dentate gyrus Granule (cell biology) Neuroscience (miscellaneous) chemistry.chemical_element Calcium Hippocampus lcsh:RC321-571 calcium imaging Cellular and Molecular Neuroscience Developmental Neuroscience State dependent Dentate Gyrus lcsh:Neurosciences. Biological psychiatry. Neuropsychiatry Neuroscience backpropagating action potential |
Zdroj: | Frontiers in Systems Neuroscience, Vol 8 (2014) |
ISSN: | 1662-5137 |
Popis: | Backpropagating action potentials (bAPs) and local calcium signals that they trigger are fundamental for dendritic functions. Here we addressed the question what extent the changes of local dendritic membrane properties can contribute to the shaping of the coupling between dendritic action potentials and the local calcium responses. Using a combination of in vitro electrophysiological and confocal imaging techniques we found that activation of dendritic GIRK channels via mGlu2 or GABAB receptors enhanced the bAP¬-triggered calcium signals in the dendrites of dentate gyrus granule cells (GCs). The enhancement of calcium signals was significant only in those dendritic regions, where these receptors are predominantly expressed. Similarly to GIRK channel activation, somatic hyperpolarization by DC current injection (from -64 mV to -77 mV), significantly increased bAP-associated calcium signals in the proximal dendrites. The hyperpolarization was associated with a decrease in the input resistance due to the rectification of the membrane potential of GCs. The effect of hyperpolarization on the calcium signals was maintained when T-type calcium currents were blocked but it decreased when GIRK channels were inhibited. Simultaneous dual somato-dendritic recordings from GCs showed that somatic hyperpolarization accelerated the repolarization phase of dendritic bAP in the proximal region whereas the rising phase and peak amplitude was not affected. We hypothesize that the larger driving force for calcium ions during the faster repolarization can contribute to the increasing in calcium signals. Employment of previously recorded dendritic bAP waveforms from hyperpolarized membrane potential as voltage command evoked larger calcium currents in nucleated patches compared to bAP waveform from the same recording at depolarized membrane potential. Furthermore, addition of native, high-voltage activated, inactivating potassium conductance by somatic dynamic clamp resulted in faster repolarization and increased AP related calcium signals relative to the control (i. e. in the absence of the extra conductance) at the same membrane potential. In conclusion, our results revealed that activation of potassium currents can profoundly enhance dendritic bAP-evoked calcium signals in GC dendrites, thus providing a previously unknown state-dependent modulatory mechanism in dendritic signalization. |
Databáze: | OpenAIRE |
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