WHEN IS AN INHIBITORY SYNAPSE EFFECTIVE

被引:76
|
作者
QIAN, N
SEJNOWSKI, TJ
机构
[1] JOHNS HOPKINS UNIV,DEPT BIOPHYS,BALTIMORE,MD 21218
[2] UNIV CALIF SAN DIEGO,DEPT BIOL,LA JOLLA,CA 92093
关键词
cable model; dendritic spines; electrodiffusion model; shunting inhibition;
D O I
10.1073/pnas.87.20.8145
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Interactions between excitatory and inhibitory synaptic inputs on dendrites determine the level of activity in neurons. Models based on the cable equation predict that silent shunting inhibition can strongly veto the effect of an excitatory input. The cable model assumes that ionic concentrations do not change during the electrical activity, which may not be a valid assumption, especially for small structures such as dendritic spines. We present here an analysis and computer simulations to show that for large Cl- conductance changes, the more general Nernst-Planck electrodiffusion model predicts that shunting inhibition on spines should be much less effective than that predicted by the cable model. This is a consequence of the large changes in the intracellular ionic concentration of Cl- that can occur in small structures, which would alter the reversal potential and reduce the driving force for Cl-. Shunting inhibition should therefore not be effective on spines, but it could be significantly more effective on the dendritic shaft at the base of the spine. In contrast to shunting inhibition, hyperpolarizing synaptic inhibition mediated by K+ currents can be very effective in reducing the excitatory synaptic potentials on the same spine if the excitatory conductance change is less than 10 nS. We predict that if the inhibitory synapses found on cortical spines are to be effective, then they should be mediated by K+ through GABA(B) receptors.
引用
收藏
页码:8145 / 8149
页数:5
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