DocumentCode
1263020
Title
A quantitative evaluation of the magnetic field generated by a CA3 pyramidal cell at EPSP and action potential stages
Author
Sakatani, Seiichi ; Hirose, Akira
Author_Institution
Dept. of Frontier Informatics, Univ. of Tokyo, Japan
Volume
49
Issue
4
fYear
2002
fDate
4/1/2002 12:00:00 AM
Firstpage
310
Lastpage
319
Abstract
We evaluate quantitatively which behavioral stage dominantly generates magnetic field adjacent to a CA3 pyramidal cell by using a compartmental model with dendrites and an axon. Generally speaking, there are four stages in the potential behavior, i.e., excitatory and inhibitory postsynaptic potential, firing action potential, bursting action potential, if any, and after-hyperpolarization potential stages. Calculated magnetic field also consists of corresponding four stages. We find, first, the dominant origin of the peaks of the magnetic field is counter propagating pulses at the firing and bursting stage at basal and apical dendrites. Second, the amplitude of the magnetic field changes to a great extent by the cancellation timing of the apical- and basal-originating fields depending on the calcium ionic channel spikes. Third, the field generated by the current flowing through the axon is significant enough when the temporal resolution of the measurement system becomes high. The results predict that the magnetic-field waveform measured in physiological experiments represents the dendritic configurations, channel density distributions; and bursting characteristics. These facts enable new investigations of neuronal activities in more detail through the observation of the magnetic-field waveform.
Keywords
bioelectric potentials; biomagnetism; brain; cellular transport; neurophysiology; physiological models; CA3 pyramidal cell; EPSP stages; action potential stages; active ionic channel conductance; after-hyperpolarization potential stage; axon; bursting action potential; channel density distributions; compartmental model; compartmental potentials; counterpropagating pulses; dendrites; excitatory postsynaptic potential; firing action potential; guinea pig; inhibitory postsynaptic potential; magnetic field generation; magnetic flux density; neuronal activities; Biomembranes; Hippocampus; Informatics; Magnetic analysis; Magnetic field measurement; Magnetic fields; Magnetic force microscopy; Nerve fibers; Spatiotemporal phenomena; Superconducting magnets; Action Potentials; Animals; Dendrites; Guinea Pigs; Magnetics; Mathematics; Models, Neurological; Neural Conduction; Pyramidal Cells;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/10.991158
Filename
991158
Link To Document