Computational model of the effects of stochastic conditioning on the induction of long-term potentiation and depression

被引:0
|
作者
M. Migliore
P. Lansky
机构
[1]  Institute of Advanced Diagnostic Methodologies,
[2] National Research Council,undefined
[3] Palermo,undefined
[4] Italy,undefined
[5]  Institute of Physiology,undefined
[6] Academy of Sciences of the Czech Republic,undefined
[7] Prague,undefined
[8] Czech Republic,undefined
来源
Biological Cybernetics | 1999年 / 81卷
关键词
Depression; Operating Mode; Great Majority; Basic Mechanism; Schematic Model;
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摘要
The long-term potentiation (LTP) or long-term depression (LTD) of synaptic strength are currently considered to be the first microscopic steps leading to learning and memory. The great majority of experiments (both in vitro and in vivo) studying the basic mechanisms of LTP and LTD induction use conditioning protocols in which the presynaptic stimuli are delivered at constant frequencies. This is not, however, what is commonly found in vivo, where a highly irregular spiking activity seems to drive most of the neuronal functions. Thus, some important aspects of the induction characteristics of LTP and LTD expressed in vivo might have been overlooked by the experiments. Using a simple schematic model for a synapse we show here that, in fact, the statistical properties of a presynaptic conditioning signal could change the probability to induce LTP and/or LTD, suggesting a new and faster operating mode for a synapse.
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页码:291 / 298
页数:7
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