Title :
A model of the rat phrenic motor neuron
Author :
Amini, Behrang ; Bidani, Akhil ; Zwischenberger, Joseph B. ; Clark, John W., Jr.
Author_Institution :
Univ. of Texas Health Sci. Center, Houston, TX, USA
fDate :
7/1/2004 12:00:00 AM
Abstract :
We have developed a model for the rat phrenic motor neuron (PMN) that robustly replicates many experimentally observed behaviors of PMNs in response to pharmacological, ionic, and electrical perturbations using a single set of parameters. Our model suggests that the after-depolarization (ADP) response seen in action potentials is a result of the slow deactivation of the fast sodium channel in the range of the ADP coupled with the activation of the L-type calcium channel (ICaL). This current and its interactions with the small and large conductance calcium-activated potassium currents (IKCaSK and IKCaBK, respectively) is also important in the generation of spike frequency adaptation in the repetitive firing mode of activity. Other aspects of the model conform very well to experimental observations in both the action potential and repetitive firing mode of activity, including the role of IKCaSK in the medium after-hyperpolarization (AHP) and the role of IKCaBK in the fast AHP. We have made a number of predictions using the model, including the characterization of two putative sodium currents (fast and persistent), as well as functional roles for the N- and T-type calcium currents.
Keywords :
bioelectric potentials; calcium; neurophysiology; physiological models; potassium; sodium; Ca; K; L-type calcium channel activation; N-type calcium currents; Na; T-type calcium currents; action potentials; after-depolarization response; after-hyperpolarization; calcium-activated potassium currents; electrical perturbations; ionic perturbations; pharmacological perturbations; rat phrenic motor neuron model; sodium channel slow deactivation; spike frequency adaptation; Biological system modeling; Biomembranes; Calcium; Frequency; Neural engineering; Neurons; Predictive models; Respiratory system; Robustness; Voltage; 3-Pyridinecarboxylic acid, 1,4-dihydro-2,6-dimethyl-5-nitro-4-(2-(trifluoromethyl)phenyl)-, Methyl ester; Action Potentials; Animals; Ion Channel Gating; Membrane Potentials; Models, Neurological; Motor Neurons; Phrenic Nerve; Potassium Channels, Calcium-Activated; Rats;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2004.827949