SIMULATED DENDRITIC SPINES INFLUENCE RECIPROCAL SYNAPTIC STRENGTHS AND LATERAL INHIBITION IN THE OLFACTORY-BULB

被引:9
作者
ANTON, PS
GRANGER, R
LYNCH, G
机构
[1] UNIV CALIF IRVINE,DEPT INFORMAT & COMP SCI,IRVINE,CA 92717
[2] MITRE CORP,CTR ARTIFICIAL INTELLIGENCE TECH,MCLEAN,VA 22102
关键词
DENDRITIC SPINE; PLASTICITY; DENDRODENDRITIC SYNAPSE; SYNAPTIC INHIBITION; COMPUTER SIMULATION;
D O I
10.1016/0006-8993(93)90951-I
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Whereas many theories have been proposed for the function of dendritic spines in axodendritic processing, the influence of spines on reciprocal dendrodendritic processing has received relatively little attention. Mitral cells in the olfactory bulb, for example, synapse on granule cell spines (gemmules) which are in turn presynaptic to reciprocal inhibitory synapses back onto the same mitral cells. The postulate that these synapses respond with synaptic strengths graded by presynaptic depolarization results in a sensitivity of the reciprocal response to the local depolarization in the spine head. A biophysical computer simulation was performed to study this effect and the effect of changing the spine neck diameter and cytoplasmic resistance on the reciprocal and lateral inhibitory responses given graded dendrodendritic synapses. Since spine head local potentials are larger than similar inputs on dendritic shafts, spines facilitate the graded reciprocal response even for low levels of activity. Spine heads also reduce the synaptic current, lowering the contribution to the rest of the granule dendritic tree and thus reducing lateral inhibition. In addition, an increase in the effective spine neck axial resistance further increases the reciprocal synaptic response and decreases the lateral inhibitory response. Short-term, reversible, and long-term methods of implementing this resistance-based dendrodendritic plasticity are discussed as well as the partial dependence of the reciprocal increase/lateral decrease effect on a broad synaptic gradation. Candidate memory operations by the bulb are also discussed, including a possible recognition memory pass/block function.
引用
收藏
页码:157 / 165
页数:9
相关论文
共 56 条
[21]  
JACK JJB, 1983, ELECTRIC CURRENT FLO
[22]   A STUDY OF SYNAPTIC TRANSMISSION IN ABSENCE OF NERVE IMPULSES [J].
KATZ, B ;
MILEDI, R .
JOURNAL OF PHYSIOLOGY-LONDON, 1967, 192 (02) :407-+
[23]  
KAWATO M, 1984, BIOL CYBERN, V50, P447, DOI 10.1007/BF00335202
[24]   A THEORETICAL-ANALYSIS OF ELECTRICAL-PROPERTIES OF SPINES [J].
KOCH, C ;
POGGIO, T .
PROCEEDINGS OF THE ROYAL SOCIETY SERIES B-BIOLOGICAL SCIENCES, 1983, 218 (1213) :455-477
[25]  
KOCH C, 1987, SYNPATIC FUNCTION
[26]   BRIEF BURSTS OF HIGH-FREQUENCY STIMULATION PRODUCE 2 TYPES OF STRUCTURAL-CHANGE IN RAT HIPPOCAMPUS [J].
LEE, KS ;
SCHOTTLER, F ;
OLIVER, M ;
LYNCH, G .
JOURNAL OF NEUROPHYSIOLOGY, 1980, 44 (02) :247-258
[27]   SYNAPTIC AMPLIFICATION BY ACTIVE MEMBRANE IN DENDRITIC SPINES [J].
MILLER, JP ;
RALL, W ;
RINZEL, J .
BRAIN RESEARCH, 1985, 325 (1-2) :325-330
[29]   DENDRITIC SPINES - ROLE OF ACTIVE MEMBRANE IN MODULATING SYNAPTIC EFFICACY [J].
PERKEL, DH ;
PERKEL, DJ .
BRAIN RESEARCH, 1985, 325 (1-2) :331-335
[30]  
RALL W, 1974, BRAIN INFORMATION SE, V3, P13