Transmitter metabolism as a mechanism of synaptic plasticity: A modeling study

被引:17
作者
Axmacher, N
Stemmler, M
Engel, D
Draguhn, A
Ritz, R
机构
[1] Humboldt Univ, Inst Theoret Biol, D-10115 Berlin, Germany
[2] Humboldt Univ, Johannes Muller Inst Physiol, D-10117 Berlin, Germany
[3] Univ Freiburg, Inst Physiol, D-79104 Freiburg, Germany
[4] Heidelberg Univ, Inst Physiol & Pathophysiol, D-69120 Heidelberg, Germany
关键词
D O I
10.1152/jn.00797.2003
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The nervous system adapts to experience by changes in synaptic strength. The mechanisms of synaptic plasticity include changes in the probability of transmitter release and in postsynaptic responsiveness. Experimental and neuropharmacological evidence points toward a third variable in synaptic efficacy: changes in presynaptic transmitter concentration. Several groups, including our own, have reported changes in the amplitude and frequency of postsynaptic ( miniature) events indicating that alterations in transmitter content cause alterations in vesicular transmitter content and vesicle dynamics. It is, however, not a priori clear how transmitter metabolism will affect vesicular transmitter content and how this in turn will affect pre- and postsynaptic functions. We therefore have constructed a model of the presynaptic terminal incorporating vesicular transmitter loading and the presynaptic vesicle cycle. We hypothesize that the experimentally observed synaptic plasticity after changes in transmitter metabolism puts predictable restrictions on vesicle loading, cytoplasmic-vesicular transmitter concentration gradient, and on vesicular cycling or release. The results of our model depend on the specific mechanism linking presynaptic transmitter concentration to vesicular dynamics, that is, alteration of vesicle maturation or alteration of release. It also makes a difference whether differentially filled vesicles are detected and differentially processed within the terminal or whether vesicle filling acts back onto the terminal by presynaptic autoreceptors. Therefore, the model allows one to decide, at a given synapse, how transmitter metabolism is linked to presynaptic function and efficacy.
引用
收藏
页码:25 / 39
页数:15
相关论文
共 98 条
[61]   The effects of temperature on vesicular supply and release in autaptic cultures of rat and mouse hippocampal neurons [J].
Pyott, SJ ;
Rosenmund, C .
JOURNAL OF PHYSIOLOGY-LONDON, 2002, 539 (02) :523-535
[62]   Kainate receptors presynaptically downregulate GABAergic inhibition in the rat hippocampus [J].
RodriguezMoreno, A ;
Herreras, O ;
Lerma, J .
NEURON, 1997, 19 (04) :893-901
[63]   GABA(B) receptor-mediated inhibition of spontaneous inhibitory synaptic currents in rat midbrain culture [J].
Rohrbacher, J ;
Jarolimek, W ;
Lewen, A ;
Misgeld, U .
JOURNAL OF PHYSIOLOGY-LONDON, 1997, 500 (03) :739-749
[64]   CHARACTERISTICS OF MINIATURE INHIBITORY POSTSYNAPTIC CURRENTS IN CA1 PYRAMIDAL NEURONS OF RAT HIPPOCAMPUS [J].
ROPERT, N ;
MILES, R ;
KORN, H .
JOURNAL OF PHYSIOLOGY-LONDON, 1990, 428 :707-722
[65]   Definition of the readily releasable pool of vesicles at hippocampal synapses [J].
Rosenmund, C ;
Stevens, CF .
NEURON, 1996, 16 (06) :1197-1207
[66]   VESICLE POOL MOBILIZATION DURING ACTION-POTENTIAL FIRING AT HIPPOCAMPAL SYNAPSES [J].
RYAN, TA ;
SMITH, SJ .
NEURON, 1995, 14 (05) :983-989
[67]   THE KINETICS OF SYNAPTIC VESICLE RECYCLING MEASURED AT SINGLE PRESYNAPTIC BOUTONS [J].
RYAN, TA ;
REUTER, H ;
WENDLAND, B ;
SCHWEIZER, FE ;
TSIEN, RW ;
SMITH, SJ .
NEURON, 1993, 11 (04) :713-724
[68]   Quantal components of the excitatory postsynaptic currents at a rat central auditory synapse [J].
Sahara, Y ;
Takahashi, T .
JOURNAL OF PHYSIOLOGY-LONDON, 2001, 536 (01) :189-197
[69]   Fast vesicle recycling supports neurotransmission during sustained stimulation at hippocampal synapses [J].
Sara, Y ;
Mozhayeva, MG ;
Liu, XR ;
Kavalali, ET .
JOURNAL OF NEUROSCIENCE, 2002, 22 (05) :1608-1617
[70]   Synaptic activation of presynaptic kainate receptors on hippocampal mossy fiber synapses [J].
Schmitz, D ;
Frerking, M ;
Nicoll, RA .
NEURON, 2000, 27 (02) :327-338