Title :
Nonlinear Dynamic Modeling of Neuron Action Potential Threshold During Synaptically Driven Broadband Intracellular Activity
Author :
Lu, Ude ; Roach, Shane M. ; Song, Dong ; Berger, Theodore W.
Author_Institution :
Dept. of Biomed. Eng., Univ. of Southern California, Los Angeles, CA, USA
fDate :
3/1/2012 12:00:00 AM
Abstract :
Activity-dependent variation of neuronal thresholds for action potential (AP) generation is one of the key determinants of spike-train temporal-pattern transformations from presynaptic to postsynaptic spike trains. In this study, we model the nonlinear dynamics of the threshold variation during synaptically driven broadband intracellular activity. First, membrane potentials of single CA1 pyramidal cells were recorded under physiologically plausible broadband stimulation conditions. Second, a method was developed to measure AP thresholds from the continuous recordings of membrane potentials. It involves measuring the turning points of APs by analyzing the third-order derivatives of the membrane potentials. Four stimulation paradigms with different temporal patterns were applied to validate this method by comparing the measured AP turning points and the actual AP thresholds estimated with varying stimulation intensities. Results show that the AP turning points provide consistent measurement of the AP thresholds, except for a constant offset. It indicates that 1) the variation of AP turning points represents the nonlinearities of threshold dynamics; and 2) an optimization of the constant offset is required to achieve accurate spike prediction. Third, a nonlinear dynamical third-order Volterra model was built to describe the relations between the threshold dynamics and the AP activities. Results show that the model can predict threshold accurately based on the preceding APs. Finally, the dynamic threshold model was integrated into a previously developed single neuron model and resulted in a 33% improvement in spike prediction.
Keywords :
Volterra equations; bioelectric potentials; biomembranes; brain models; cellular biophysics; neural nets; neurophysiology; nonlinear dynamical systems; CA1 pyramidal cells; broadband intracellular activity; membrane potentials; neuron action potential threshold; nonlinear dynamic modeling; single neuron model; spike prediction; spike-train temporal-pattern transformations; synaptically driven broadband intracellular activity; temporal patterns; third-order Volterra model; Electric potential; IEEE Potentials; Kernel; Neurons; Physiology; Predictive models; Turning; Neuron; Volterra kernels; threshold dynamics; whole-cell patch-clamp; Algorithms; Animals; CA1 Region, Hippocampal; Feedback, Physiological; Male; Models, Neurological; Nonlinear Dynamics; Patch-Clamp Techniques; Pyramidal Cells; Rats; Rats, Sprague-Dawley; Sodium Channels; Synaptic Potentials;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2011.2178241