Title :
Biophysical model of posttetanic processes underlying simultaneous long-term modifications (LTP, LTD) in the efficacy of excitatory and inhibitory inputs to the dendritic spine
Author :
Murzina, G.B. ; Silkis, I.G.
Author_Institution :
Inst. of Higher Nervous Activity & Neurophysiol., Acad. of Sci., Moscow
Abstract :
A generally accepted hypothesis in neurobiology has been that memory is based, at least in part, on the long-term modifications in the strength of synaptic transmission. The theory, based on use-dependent input specific long-term potentiation and depression of glutamate (Glu)-ergic excitatory transmission (LTPe, LTDe), is outlined. Some predictions were concluded from this hypothesis which require experimental evidences. Since existent electrophysiological methods do not allow to test the changes in the individual dendritic spine, biophysical model of postsynaptic processes was elaborated and used to verify predicted modification rules. The mathematical model of CA3 hippocampal pyramidal neuron was chosen. The basic structure of our model is similar in many ways to the well-described model of CA3 pyramidal cell, that has a good coincidence with experimental data
Keywords :
brain models; neural nets; neurophysiology; CA3 hippocampal pyramidal neuron; biophysical model; dendritic spine; excitatory inputs; glutamate (Glu)-ergic excitatory transmission; inhibitory inputs; long-term depression; long-term modifications; memory; neurobiology; postsynaptic processes; posttetanic processes; simultaneous long-term modifications (LTP, LTD); synaptic transmission strength; use-dependent input specific long-term potentiation; Mathematical model; Neurons; Neurophysiology; Neurotransmitters; Predictive models; Proteins; Testing; Voltage;
Conference_Titel :
Neuroinformatics and Neurocomputers, 1995., Second International Symposium on
Conference_Location :
Rostov on Don
Print_ISBN :
0-7803-2512-5
DOI :
10.1109/ISNINC.1995.480845