Hippocampal mossy fiber synapses show an unusual form of long-term potentiation (LTP) that is independent of NMDA receptor activation and is expressed presynaptically. Using receptor antagonists, as well as receptor knockout mice, we found that presynaptic kainate receptors facilitate the induction of mossy fiber long-term potentiation (LTP), although they are not required for this form of LTP. Most importantly, these receptors impart an associativity to mossy fiber LTP such that activity in neighboring mossy fiber synapses, or even associational/commissural synapses, influences the threshold for inducing mossy fiber LTP. Such a mechanism greatly increases the computational power of this form of plasticity
SummaryThe mossy fiber to CA3 pyramidal cell synapse (mf-CA3) provides a major source of excitation ...
Compared with NMDA receptor-dependent LTP, much less is known about the mechanism of induction of NM...
International audienceThe ability of synapses to modify their synaptic strength in response to activ...
AbstractKainate receptors alter the excitability of mossy fiber axons and have been reported to play...
AbstractThe mechanisms involved in mossy fiber LTP in the hippocampus are not well established. In t...
There is considerable interest in understanding long-term potentiation (LTP) of glutamatergic synapt...
There is considerable interest in understanding long-term potentiation (LTP) of glutamatergic synapt...
It is currently unknown why glutamatergic presynaptic terminals express multiple types of glutamate ...
It is currently unknown why glutamatergic presynaptic terminals express multiple types of glutamate ...
It is currently unknown why glutamatergic presynaptic terminals express multiple types of glutamate ...
Long-term potentiation (LTP) is a well-established experimental model used to investigate the synapt...
Hippocampal mossy fibers, which are the axons of dentate granule cells, form powerful excitatory syn...
ABSTRACT: The roles of both kainate receptors (KARs) and metabo-tropic glutamate receptors (mGluRs) ...
Compared with NMDA receptor-dependent LTP, much less is known about the mechanism of induction of NM...
AbstractCompared with NMDA receptor-dependent LTP, much less is known about the mechanism of inducti...
SummaryThe mossy fiber to CA3 pyramidal cell synapse (mf-CA3) provides a major source of excitation ...
Compared with NMDA receptor-dependent LTP, much less is known about the mechanism of induction of NM...
International audienceThe ability of synapses to modify their synaptic strength in response to activ...
AbstractKainate receptors alter the excitability of mossy fiber axons and have been reported to play...
AbstractThe mechanisms involved in mossy fiber LTP in the hippocampus are not well established. In t...
There is considerable interest in understanding long-term potentiation (LTP) of glutamatergic synapt...
There is considerable interest in understanding long-term potentiation (LTP) of glutamatergic synapt...
It is currently unknown why glutamatergic presynaptic terminals express multiple types of glutamate ...
It is currently unknown why glutamatergic presynaptic terminals express multiple types of glutamate ...
It is currently unknown why glutamatergic presynaptic terminals express multiple types of glutamate ...
Long-term potentiation (LTP) is a well-established experimental model used to investigate the synapt...
Hippocampal mossy fibers, which are the axons of dentate granule cells, form powerful excitatory syn...
ABSTRACT: The roles of both kainate receptors (KARs) and metabo-tropic glutamate receptors (mGluRs) ...
Compared with NMDA receptor-dependent LTP, much less is known about the mechanism of induction of NM...
AbstractCompared with NMDA receptor-dependent LTP, much less is known about the mechanism of inducti...
SummaryThe mossy fiber to CA3 pyramidal cell synapse (mf-CA3) provides a major source of excitation ...
Compared with NMDA receptor-dependent LTP, much less is known about the mechanism of induction of NM...
International audienceThe ability of synapses to modify their synaptic strength in response to activ...