[16] Clements JD. Transmitter
timecourse in the synaptic cleft: Its role
in central synaptic function. Trends in
Neurosciences. 1996;19:163-171
[17] Meldolesi J. Long-term potentiation.
The cell biology connection. Current
Biology. 1995;5(9):1006-1008
[18] Gu B-M, van Rijn H, Meck WH.
Oscillatory multiplexing of neural
population codes for interval timing and
working memory. Neuroscience and
Biobehavioral Reviews. 2015;48:
160-185. DOI: 10.1016/j.neubiorev.2014.
10.008. Available from: http://www.scie
ncedirect.com/science/article/pii/
S0149763414002589
[19] Agmon N, Edelstein AL. Collective
binding properties of receptor arrays.
Biophysical Journal. 1997;72:1582-1594
[20] Zuber B, Nikonenko I, Klauser P,
Muller D, Dobochet J. The mammalian
central nervous synaptic cleft contains a
high density of periodically organized
complexes. Proceedings of the National
Academy of Sciences of the United
States of America. 2005;102:
19192-19197
[21] Ventriglia F. Effect of filaments
within the synaptic cleft on the response
of excitatory synapses simulated by
computer experiments. Biosystems.
2011;104:14-22
[22] Ventriglia F, Di Maio V. Effects of
AMPARs trafficking and glutamatereceptor binding probability on
stochastic variability of EPSC.
Biosystems. 2013;112:298-304
[23] Ventriglia F, Di Maio V. GlutamateAMPA interaction in a model of
synaptic transmission. Brain Research.
2013;1536:168-176
[24] Tichelaar W, Safferling M,
Keinänen K, Stark H, Madden DR. The
three-dimensional structure of an
ionotropic glutamate receptor reveals a
dimer-of-dimers assembly. The Journal
of Molecular Biology. 2004;344:
435-442. DOI: 10.1016/j.
jmb.2004.09.048
[25] Dobrunz LE, Stevens CF.
Heterogeneity of release probability,
facilitation, and depletion at central
synapses. Neuron. 1997;18:995-1008
[26] Park H, Li Y, Tsien RW. Influence
of synaptic vesicle position on release
probability and exocytotic fusion mode.
Science. 2012;335(6074):1362-1366.
DOI: 10.1126/science.1216937
[27] Kokaia M. Long-term potentiation
of single subicular neurons in mice.
Hippocampus. 2000;10(6):684-692.
DOI: 10.1002/1098-1063(2000)10:6
[28] Zakharenko SS, Zablow L,
Siegelbaum SA. Visualization of changes
in presynaptic function during longterm synaptic plasticity. Nature
Neuroscience. 2001;4(7):711-717. DOI:
10.1038/89498. ISSN: 1097-6256.
Available from: http://tinyurl.sfx.mpg.
de/qv9r; http://www.bibsonomy.org/
bibtex/2b66228cbabc54500b35eb
408436fdbd2/schrod
[29] Raymond CR. LTP forms 1, 2 and 3:
Different mechanisms for the “long” in
long-term potentiation. Trends in
Neurosciences. 2007;30(4):167-175.
DOI: 10.1016/j.tins.2007.01.007
[30] Di Maio V. Regulation of
information passing by synaptic
transmission: A short review. Brain
Research. 2008;1225:26-38
[31] Hao J, Wang XD, Yang D, Poo MM,
Zhang X. An arithmetic rule for spatial
summation of excitatory and inhibitory
inputs in pyramidal neurons.
Proceedings of the National Academy of
Sciences. 2009;106:21906-21911. DOI:
10.1073/pnas.0912022106. ISSN:
0027-8424. Available from: https://
www.pnas.org/content/early/2009/12/
01/0912022106
106
Advances in Neural Signal Processing
Précédent

- 119/143

Suivant