Sela R, Segel L, Parnas I, Parnas H. (2005). Release of neurotransmitter induced by Ca2+-uncaging: reexamination of the ca-voltage hypothesis for release. Journal of computational neuroscience. 19 [PubMed]

See more from authors: Sela R · Segel L · Parnas I · Parnas H

References and models cited by this paper

Alford S et al. (1995). Neurotransmitter release evoked by nerve impulses without Ca2+ entry through Ca2+ channels in frog motor nerve endings. J Physiol. 482 ( Pt 3)

Atwood HL, Wojtowicz JM. (1986). Short-term and long-term plasticity and physiological differentiation of crustacean motor synapses. International review of neurobiology. 28 [PubMed]

Ben-Chaim Y, Tour O, Dascal N, Parnas I, Parnas H. (2003). The M2 muscarinic G-protein-coupled receptor is voltage-sensitive. The Journal of biological chemistry. 278 [PubMed]

Bollmann JH, Sakmann B, Borst JG. (2000). Calcium sensitivity of glutamate release in a calyx-type terminal. Science (New York, N.Y.). 289 [PubMed]

DEL CASTILLO J, KATZ B. (1954). The effect of magnesium on the activity of motor nerve endings. The Journal of physiology. 124 [PubMed]

Datyner NB, Gage PW. (1980). Phasic secretion of acetylcholine at a mammalian neuromuscular junction. The Journal of physiology. 303 [PubMed]

Dodge FA, Rahamimoff R. (1967). Co-operative action a calcium ions in transmitter release at the neuromuscular junction. The Journal of physiology. 193 [PubMed]

Felmy F, Neher E, Schneggenburger R. (2003). The timing of phasic transmitter release is Ca2+-dependent and lacks a direct influence of presynaptic membrane potential. Proceedings of the National Academy of Sciences of the United States of America. 100 [PubMed]

Heidelberger R, Heinemann C, Neher E, Matthews G. (1994). Calcium dependence of the rate of exocytosis in a synaptic terminal. Nature. 371 [PubMed]

Hochner B, Parnas H, Parnas I. (1989). Membrane depolarization evokes neurotransmitter release in the absence of calcium entry. Nature. 342 [PubMed]

Hochner B, Parnas H, Parnas I. (1991). Effects of intra-axonal injection of Ca2+ buffers on evoked release and on facilitation in the crayfish neuromuscular junction. Neuroscience letters. 125 [PubMed]

Ilouz N, Branski L, Parnis J, Parnas H, Linial M. (1999). Depolarization affects the binding properties of muscarinic acetylcholine receptors and their interaction with proteins of the exocytic apparatus. The Journal of biological chemistry. 274 [PubMed]

Kasai H. (1999). Comparative biology of Ca2+-dependent exocytosis: implications of kinetic diversity for secretory function. Trends in neurosciences. 22 [PubMed]

Kimura M, Saitoh N, Takahashi T. (2003). Adenosine A(1) receptor-mediated presynaptic inhibition at the calyx of Held of immature rats. The Journal of physiology. 553 [PubMed]

Land BR, Harris WV, Salpeter EE, Salpeter MM. (1984). Diffusion and binding constants for acetylcholine derived from the falling phase of miniature endplate currents. Proceedings of the National Academy of Sciences of the United States of America. 81 [PubMed]

Lustig C, Parnas H, Segel LA. (1989). Neurotransmitter release: development of a theory for total release based on kinetics. Journal of theoretical biology. 136 [PubMed]

Mochida S, Yokoyama CT, Kim DK, Itoh K, Catterall WA. (1998). Evidence for a voltage-dependent enhancement of neurotransmitter release mediated via the synaptic protein interaction site of N-type Ca2+ channels. Proceedings of the National Academy of Sciences of the United States of America. 95 [PubMed]

Mulkey RM, Zucker RS. (1991). Action potentials must admit calcium to evoke transmitter release. Nature. 350 [PubMed]

Parnas H, Dudel J, Parnas I. (1986). Neurotransmitter release and its facilitation in crayfish. VII. Another voltage dependent process beside Ca entry controls the time course of phasic release. Pflugers Archiv : European journal of physiology. 406 [PubMed]

Parnas H, Linial M, Ilouz N. (1997). Voltage-dependent interaction between the muscarinic ACh receptor and proteins of the exocytic machinery. J Physiol. 504 ( Pt 2)

Parnas H, Segel L, Dudel J, Parnas I. (2000). Autoreceptors, membrane potential and the regulation of transmitter release. Trends in neurosciences. 23 [PubMed]

Parnas H, Valle-Lisboa JC, Segel LA. (2002). Can the Ca2+ hypothesis and the Ca2+-voltage hypothesis for neurotransmitter release be reconciled? Proceedings of the National Academy of Sciences of the United States of America. 99 [PubMed]

Ravin R, Parnas H, Spira ME, Parnas I. (1999). Partial uncoupling of neurotransmitter release from [Ca2+]i by membrane hyperpolarization. Journal of neurophysiology. 81 [PubMed]

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

Silinsky EM. (1985). The biophysical pharmacology of calcium-dependent acetylcholine secretion. Pharmacological reviews. 37 [PubMed]

Slutsky I, Parnas H, Parnas I. (1999). Presynaptic effects of muscarine on ACh release at the frog neuromuscular junction. The Journal of physiology. 514 ( Pt 3) [PubMed]

Slutsky I, Rashkovan G, Parnas H, Parnas I. (2002). Ca2+-independent feedback inhibition of acetylcholine release in frog neuromuscular junction. The Journal of neuroscience : the official journal of the Society for Neuroscience. 22 [PubMed]

Slutsky I, Silman I, Parnas I, Parnas H. (2001). Presynaptic M(2) muscarinic receptors are involved in controlling the kinetics of ACh release at the frog neuromuscular junction. The Journal of physiology. 536 [PubMed]

Slutsky I et al. (2003). Use of knockout mice reveals involvement of M2-muscarinic receptors in control of the kinetics of acetylcholine release. Journal of neurophysiology. 89 [PubMed]

Wessler I. (1989). Control of transmitter release from the motor nerve by presynaptic nicotinic and muscarinic autoreceptors. Trends in pharmacological sciences. 10 [PubMed]

Yamada WM, Zucker RS. (1992). Time course of transmitter release calculated from simulations of a calcium diffusion model. Biophysical journal. 61 [PubMed]

Yusim K, Parnas H, Segel LA. (2000). Theory for the feedback inhibition of fast release of neurotransmitter. Bulletin of mathematical biology. 62 [PubMed]

Zhang C, Zhou Z. (2002). Ca(2+)-independent but voltage-dependent secretion in mammalian dorsal root ganglion neurons. Nature neuroscience. 5 [PubMed]

Zucker RS, Haydon PG. (1988). Membrane potential has no direct role in evoking neurotransmitter release. Nature. 335 [PubMed]

References and models that cite this paper
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.