TY - JOUR
T1 - Short-term potentiation at the parallel fiber-Purkinje cell synapse
AU - Goto, Jun Ichi
AU - Inoue, Takafumi
AU - Kuruma, Akinori
AU - Mikoshiba, Katsuhiko
PY - 2006/5
Y1 - 2006/5
N2 - Changes in synaptic efficacy at the parallel fiber (PF)-Purkinje cell (PC) synapse are postulated to be a cellular basis for motor learning. Although long-term efficacy changes lasting more than an hour at this synapse, i.e., long-term potentiation and depression, have been extensively studied, relatively short lasting synaptic efficacy changes, namely short-term potentiation (STP) lasting for tens of minutes, have not been discussed to date. Here we report that this synapse shows an apparent STP reliably by a periodic burst pattern of homosynaptic stimulation. This STP is presynaptically expressed, since it accompanies with a reduced paired-pulse facilitation and is resistant to postsynaptic Ca2+ reduction by BAPTA injection or in P/Q-type Ca channel knockout cerebella. This novel type of synaptic plasticity at the PF-PC synapse would be a clue for understanding the presynaptic mechanisms of plasticity at this synapse.
AB - Changes in synaptic efficacy at the parallel fiber (PF)-Purkinje cell (PC) synapse are postulated to be a cellular basis for motor learning. Although long-term efficacy changes lasting more than an hour at this synapse, i.e., long-term potentiation and depression, have been extensively studied, relatively short lasting synaptic efficacy changes, namely short-term potentiation (STP) lasting for tens of minutes, have not been discussed to date. Here we report that this synapse shows an apparent STP reliably by a periodic burst pattern of homosynaptic stimulation. This STP is presynaptically expressed, since it accompanies with a reduced paired-pulse facilitation and is resistant to postsynaptic Ca2+ reduction by BAPTA injection or in P/Q-type Ca channel knockout cerebella. This novel type of synaptic plasticity at the PF-PC synapse would be a clue for understanding the presynaptic mechanisms of plasticity at this synapse.
KW - Brain slice
KW - Cerebellum
KW - Electrophysiology
KW - Parallel fiber
KW - Purkinje cell
KW - Short-term potentiation
KW - Synaptic plasticity
UR - http://www.scopus.com/inward/record.url?scp=33646007679&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=33646007679&partnerID=8YFLogxK
U2 - 10.1016/j.neures.2006.01.001
DO - 10.1016/j.neures.2006.01.001
M3 - Article
C2 - 16472880
AN - SCOPUS:33646007679
SN - 0168-0102
VL - 55
SP - 28
EP - 33
JO - Neuroscience Research
JF - Neuroscience Research
IS - 1
ER -