Hamid E, Church E, Alford S. (2019). Quantitation and Simulation of Single Action Potential-Evoked Ca2+ Signals in CA1 Pyramidal Neuron Presynaptic Terminals. eNeuro. 6 [PubMed]

See more from authors: Hamid E · Church E · Alford S

References and models cited by this paper

Adler EM, Augustine GJ, Duffy SN, Charlton MP. (1991). Alien intracellular calcium chelators attenuate neurotransmitter release at the squid giant synapse. The Journal of neuroscience : the official journal of the Society for Neuroscience. 11 [PubMed]

Alford S, Frenguelli BG, Schofield JG, Collingridge GL. (1993). Characterization of Ca2+ signals induced in hippocampal CA1 neurones by the synaptic activation of NMDA receptors. The Journal of physiology. 469 [PubMed]

Allbritton NL, Meyer T, Stryer L. (1992). Range of messenger action of calcium ion and inositol 1,4,5-trisphosphate. Science (New York, N.Y.). 258 [PubMed]

Augustine GJ, Adler EM, Charlton MP. (1991). The calcium signal for transmitter secretion from presynaptic nerve terminals. Annals of the New York Academy of Sciences. 635 [PubMed]

Baimbridge KG, Celio MR, Rogers JH. (1992). Calcium-binding proteins in the nervous system. Trends in neurosciences. 15 [PubMed]

Bertram R, Sherman A, Stanley EF. (1996). Single-domain/bound calcium hypothesis of transmitter release and facilitation. Journal of neurophysiology. 75 [PubMed]

Bucurenciu I, Kulik A, Schwaller B, Frotscher M, Jonas P. (2008). Nanodomain coupling between Ca2+ channels and Ca2+ sensors promotes fast and efficient transmitter release at a cortical GABAergic synapse. Neuron. 57 [PubMed]

Chapman ER. (2002). Synaptotagmin: a Ca(2+) sensor that triggers exocytosis? Nature reviews. Molecular cell biology. 3 [PubMed]

D Burgoyne R. (2004). The neuronal calcium-sensor proteins. Biochimica et biophysica acta. 1742 [PubMed]

Eggermann E, Bucurenciu I, Goswami SP, Jonas P. (2011). Nanodomain coupling between Ca²? channels and sensors of exocytosis at fast mammalian synapses. Nature reviews. Neuroscience. 13 [PubMed]

Emptage NJ, Reid CA, Fine A. (2001). Calcium stores in hippocampal synaptic boutons mediate short-term plasticity, store-operated Ca2+ entry, and spontaneous transmitter release. Neuron. 29 [PubMed]

Faas GC, Raghavachari S, Lisman JE, Mody I. (2011). Calmodulin as a direct detector of Ca2+ signals. Nature neuroscience. 14 [PubMed]

Finch DM, Nowlin NL, Babb TL. (1983). Demonstration of axonal projections of neurons in the rat hippocampus and subiculum by intracellular injection of HRP. Brain research. 271 [PubMed]

Fioravante D, Regehr WG. (2011). Short-term forms of presynaptic plasticity. Current opinion in neurobiology. 21 [PubMed]

Geppert M et al. (1994). Synaptotagmin I: a major Ca2+ sensor for transmitter release at a central synapse. Cell. 79 [PubMed]

Jackman SL, Turecek J, Belinsky JE, Regehr WG. (2016). The calcium sensor synaptotagmin 7 is required for synaptic facilitation. Nature. 529 [PubMed]

Jackson MB, Redman SJ. (2003). Calcium dynamics, buffering, and buffer saturation in the boutons of dentate granule-cell axons in the hilus. The Journal of neuroscience : the official journal of the Society for Neuroscience. 23 [PubMed]

Kamiya H, Zucker RS. (1994). Residual Ca2+ and short-term synaptic plasticity. Nature. 371 [PubMed]

Katz B, Miledi R. (1967). The timing of calcium action during neuromuscular transmission. The Journal of physiology. 189 [PubMed]

Keller D et al. (2015). An Exclusion Zone for Ca2+ Channels around Docked Vesicles Explains Release Control by Multiple Channels at a CNS Synapse. PLoS computational biology. 11 [PubMed]

Kerr RA et al. (2008). FAST MONTE CARLO SIMULATION METHODS FOR BIOLOGICAL REACTION-DIFFUSION SYSTEMS IN SOLUTION AND ON SURFACES. SIAM journal on scientific computing : a publication of the Society for Industrial and Applied Mathematics. 30 [PubMed]

Klingauf J, Neher E. (1997). Modeling buffered Ca2+ diffusion near the membrane: implications for secretion in neuroendocrine cells. Biophysical journal. 72 [PubMed]

Koester HJ, Sakmann B. (2000). Calcium dynamics associated with action potentials in single nerve terminals of pyramidal cells in layer 2/3 of the young rat neocortex. The Journal of physiology. 529 Pt 3 [PubMed]

Llano I et al. (2000). Presynaptic calcium stores underlie large-amplitude miniature IPSCs and spontaneous calcium transients. Nature neuroscience. 3 [PubMed]

Llinás R, Gruner JA, Sugimori M, McGuinness TL, Greengard P. (1991). Regulation by synapsin I and Ca(2+)-calmodulin-dependent protein kinase II of the transmitter release in squid giant synapse. The Journal of physiology. 436 [PubMed]

Llinás R, Sugimori M, Silver RB. (1992). Microdomains of high calcium concentration in a presynaptic terminal. Science (New York, N.Y.). 256 [PubMed]

Matveev V, Zucker RS, Sherman A. (2004). Facilitation through buffer saturation: constraints on endogenous buffering properties. Biophysical journal. 86 [PubMed]

Müller A et al. (2005). Endogenous Ca2+ buffer concentration and Ca2+ microdomains in hippocampal neurons. The Journal of neuroscience : the official journal of the Society for Neuroscience. 25 [PubMed]

Müller M, Felmy F, Schneggenburger R. (2008). A limited contribution of Ca2+ current facilitation to paired-pulse facilitation of transmitter release at the rat calyx of Held. The Journal of physiology. 586 [PubMed]

Müller M, Felmy F, Schwaller B, Schneggenburger R. (2007). Parvalbumin is a mobile presynaptic Ca2+ buffer in the calyx of Held that accelerates the decay of Ca2+ and short-term facilitation. The Journal of neuroscience : the official journal of the Society for Neuroscience. 27 [PubMed]

Neher E. (1998). Usefulness and limitations of linear approximations to the understanding of Ca++ signals. Cell calcium. 24 [PubMed]

Neher E, Augustine GJ. (1992). Calcium gradients and buffers in bovine chromaffin cells. The Journal of physiology. 450 [PubMed]

Neher E, Sakaba T. (2008). Multiple roles of calcium ions in the regulation of neurotransmitter release. Neuron. 59 [PubMed]

Nägerl UV, Novo D, Mody I, Vergara JL. (2000). Binding kinetics of calbindin-D(28k) determined by flash photolysis of caged Ca(2+) Biophysical journal. 79 [PubMed]

Sabatini BL, Regehr WG. (1996). Timing of neurotransmission at fast synapses in the mammalian brain. Nature. 384 [PubMed]

Schmidt H, Schwaller B, Eilers J. (2005). Calbindin D28k targets myo-inositol monophosphatase in spines and dendrites of cerebellar Purkinje neurons. Proceedings of the National Academy of Sciences of the United States of America. 102 [PubMed]

Schneggenburger R, Neher E. (2000). Intracellular calcium dependence of transmitter release rates at a fast central synapse. Nature. 406 [PubMed]

Scott R, Rusakov DA. (2006). Main determinants of presynaptic Ca2+ dynamics at individual mossy fiber-CA3 pyramidal cell synapses. The Journal of neuroscience : the official journal of the Society for Neuroscience. 26 [PubMed]

Shahrezaei V, Cao A, Delaney KR. (2006). Ca2+ from one or two channels controls fusion of a single vesicle at the frog neuromuscular junction. The Journal of neuroscience : the official journal of the Society for Neuroscience. 26 [PubMed]

Shahrezaei V, Delaney KR. (2004). Consequences of molecular-level Ca2+ channel and synaptic vesicle colocalization for the Ca2+ microdomain and neurotransmitter exocytosis: a monte carlo study. Biophysical journal. 87 [PubMed]

Shahrezaei V, Delaney KR. (2005). Brevity of the Ca2+ microdomain and active zone geometry prevent Ca2+-sensor saturation for neurotransmitter release. Journal of neurophysiology. 94 [PubMed]

Stanley EF. (1993). Single calcium channels and acetylcholine release at a presynaptic nerve terminal. Neuron. 11 [PubMed]

Tamamaki N, Nojyo Y. (1990). Disposition of the slab-like modules formed by axon branches originating from single CA1 pyramidal neurons in the rat hippocampus. The Journal of comparative neurology. 291 [PubMed]

Weber AM et al. (2010). N-type Ca2+ channels carry the largest current: implications for nanodomains and transmitter release. Nature neuroscience. 13 [PubMed]

Zucker RS, Regehr WG. (2002). Short-term synaptic plasticity. Annual review of physiology. 64 [PubMed]

von Gersdorff H, Matthews G. (1994). Dynamics of synaptic vesicle fusion and membrane retrieval in synaptic terminals. Nature. 367 [PubMed]

References and models that cite this paper

Church E et al. (2022). Synaptic integration of subquantal neurotransmission by co-localized G protein coupled receptors in presynaptic terminals The Journal of neuroscience : the official journal of the Society for Neuroscience. 42 [PubMed]

This website requires cookies and limited processing of your personal data in order to function. By continuing to browse or otherwise use this site, you are agreeing to this use. See our Privacy policy and how to cite and terms of use.