Differential mechanisms of transmission at three types of mossy fiber synapse

被引:206
作者
Toth, K [1 ]
Suares, G [1 ]
Lawrence, JJ [1 ]
Tansey, EP [1 ]
McBain, CJ [1 ]
机构
[1] NICHHD, Lab Cellular & Mol Neurophysiol, NIH, Bethesda, MD 20892 USA
关键词
interneuron; GABAergic; Ca-permeable; AMPA receptor; LTP; mGluR;
D O I
10.1523/JNEUROSCI.20-22-08279.2000
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The axons of the dentate gyrus granule cells, the so-called mossy fibers, innervate their inhibitory interneuron and pyramidal neuron targets via both anatomically and functionally specialized synapses. Mossy fiber synapses onto inhibitory interneurons were comprised of either calcium-permeable (CP) or calcium-impermeable (CI) AMPA receptors, whereas only calcium-impermeable AMPA receptors existed at CA3 principal neuron synapses. In response to brief trains of high-frequency stimuli (20 Hz), pyramidal neuron synapses invariably demonstrated shortterm facilitation, whereas interneuron EPSCs demonstrated either short-term facilitation or depression. Facilitation at all CI AMPA synapses was voltage independent, whereas EPSCs at CP AMPA synapses showed greater facilitation at -20 than at -80 mV, consistent with a role for the postsynaptic unblock of polyamines. At pyramidal cell synapses, mossy fiber EPSCs possessed marked frequency-dependent facilitation (commencing at stimulation frequencies >0.1 Hz), whereas EPSCs at either type of interneuron synapse showed only moderate frequency-dependent facilitation or underwent depression. Presynaptic metabotropic glutamate receptors (mGluRs) decreased transmission at all three synapse types in a frequency-dependent manner. However, after block of presynaptic mGluRs, transmission at interneuron synapses still did not match the dynamic range of EPSCs at pyramidal neuron synapses. High-frequency stimulation of mossy fibers induced long-term potentiation (LTP), long-term depression (LTD), or no change at pyramidal neuron synapses, interneuron CP AMPA synapses, and CI AMPA synapses, respectively. Induction of LTP or LTD altered the shortterm plasticity of transmission onto both pyramidal cells and interneuron CP AMPA synapses by a mechanism consistent with changes in release probability. These data reveal differential mechanisms of transmission at three classes of mossy fiber synapse made onto distinct targets.
引用
收藏
页码:8279 / 8289
页数:11
相关论文
共 55 条
[31]   PASSIVE PROPAGATION OF LTD TO STRATUM ORIENS-ALVEUS INHIBITORY NEURONS MODULATES THE TEMPOROAMMONIC INPUT TO THE HIPPOCAMPAL CA1 REGION [J].
MACCAFERRI, G ;
MCBAIN, CJ .
NEURON, 1995, 15 (01) :137-145
[32]   MODULATION OF SYNAPTIC TRANSMISSION AND LONG-TERM POTENTIATION - EFFECTS ON PAIRED-PULSE FACILITATION AND EPSC VARIANCE IN THE CA1 REGION OF THE HIPPOCAMPUS [J].
MANABE, T ;
WYLLIE, DJA ;
PERKEL, DJ ;
NICOLL, RA .
JOURNAL OF NEUROPHYSIOLOGY, 1993, 70 (04) :1451-1459
[33]   PHARMACOLOGY OF METABOTROPIC GLUTAMATE RECEPTORS AT THE MOSSY FIBER SYNAPSES OF THE GUINEA-PIG HIPPOCAMPUS [J].
MANZONI, OJ ;
CASTILLO, PE ;
NICOLL, RA .
NEUROPHARMACOLOGY, 1995, 34 (08) :965-971
[34]   Differential signaling via the same axon of neocortical pyramidal neurons [J].
Markram, H ;
Wang, Y ;
Tsodyks, M .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (09) :5323-5328
[35]   Redistribution of synaptic efficacy between neocortical pyramidal neurons [J].
Markram, H ;
Tsodyks, M .
NATURE, 1996, 382 (6594) :807-810
[36]   Glutamatergic synapses onto hippocampal interneurons: precision timing without lasting plasticity [J].
McBain, CJ ;
Freund, TE ;
Mody, I .
TRENDS IN NEUROSCIENCES, 1999, 22 (05) :228-235
[37]   A short-term mechanism of plasticity for interneurones? [J].
McBain, CJ .
JOURNAL OF PHYSIOLOGY-LONDON, 1998, 511 (02) :331-331
[38]   Hippocampal interneurons express a novel form of synaptic plasticity [J].
McMahon, LL ;
Kauer, JA .
NEURON, 1997, 18 (02) :295-305
[39]  
Reyes A, 1999, J NEUROSCI, V19, P3827
[40]   Target-cell-specific facilitation and depression in neocortical circuits [J].
Reyes, A ;
Lujan, R ;
Rozov, A ;
Burnashev, N ;
Somogyi, P ;
Sakmann, B .
NATURE NEUROSCIENCE, 1998, 1 (04) :279-285