Experimentally guided modelling of dendritic excitability in rat neocortical pyramidal neurones
- 31 March 2009
- journal article
- Published by Wiley in The Journal of Physiology
- Vol. 587 (7) , 1413-1437
- https://doi.org/10.1113/jphysiol.2008.167130
Abstract
Constructing physiologically relevant compartmental models of neurones is critical for understanding neuronal activity and function. We recently suggested that measurements from multiple locations along the soma, dendrites and axon are necessary as a data set when using a genetic optimization algorithm to constrain the parameters of a compartmental model of an entire neurone. However, recordings from L5 pyramidal neurones can routinely be performed simultaneously from only two locations. Now we show that a data set recorded from the soma and apical dendrite combined with a parameter peeling procedure is sufficient to constrain a compartmental model for the apical dendrite of L5 pyramidal neurones. The peeling procedure was tested on several compartmental models showing that it avoids local minima in parameter space. Based on the requirements of this analysis procedure, we designed and performed simultaneous whole‐cell recordings from the soma and apical dendrite of rat L5 pyramidal neurones. The data set obtained from these recordings allowed constraining a simplified compartmental model for the apical dendrite of L5 pyramidal neurones containing four voltage‐gated conductances. In agreement with experimental findings, the optimized model predicts that the conductance density gradients of voltage‐gated K+conductances taper rapidly proximal to the soma, while the density gradient of the voltage‐gated Na+conductance tapers slowly along the apical dendrite. The model reproduced the back‐propagation of the action potential and the modulation of the resting membrane potential along the apical dendrite. Furthermore, the optimized model provided a mechanistic explanation for the back‐propagation of the action potential into the apical dendrite and the generation of dendritic Na+spikes.Keywords
This publication has 87 references indexed in Scilit:
- A Classification Method to Distinguish Cell-Specific Responses Elicited by Current Pulses in Hippocampal CA1 Pyramidal CellsNeural Computation, 2008
- Why Are Computational Neuroscience and Systems Biology So Separate?PLoS Computational Biology, 2008
- Neuronal Firing Sensitivity to Morphologic and Active Membrane ParametersPLoS Computational Biology, 2008
- A Numerical Approach to Ion Channel Modelling Using Whole-Cell Voltage-Clamp Recordings and a Genetic AlgorithmPLoS Computational Biology, 2007
- Mapping Function Onto Neuronal MorphologyJournal of Neurophysiology, 2007
- Dendritic voltage‐gated K+ conductance gradient in pyramidal neurones of neocortical layer 5B from ratsThe Journal of Physiology, 2007
- Complex Parameter Landscape for a Complex Neuron ModelPLoS Computational Biology, 2006
- Parallel network simulations with NEURONJournal of Computational Neuroscience, 2006
- Regulation of Synaptic Efficacy by Coincidence of Postsynaptic APs and EPSPsScience, 1997
- A Synaptically Controlled, Associative Signal for Hebbian Plasticity in Hippocampal NeuronsScience, 1997