A general pattern of non-spiking neuron dynamics under the effect of potassium and calcium channel modifications

Achard, P., & De Schutter, E. (2006). Complex parameter landscape for a complex neuron model. PLoS Computational Biology, 2(7), e94.

Article  PubMed  PubMed Central  Google Scholar 

Alonso, L. M., & Marder, E. (2019). Visualization of currents in neural models with similar behavior and different conductance densities. eLife, 8, e42722.

Article  PubMed  PubMed Central  Google Scholar 

Aoyama, T., Kamiyama, Y., Usui, S., Blanco, R., Vaquero, C. F., & de la Villa, P. (2000). Ionic current model of rabbit retinal horizontal cell. Neuroscience Research, 37(2), 141–151.

Article  CAS  PubMed  Google Scholar 

Art, J., & Goodman, M. (1996). Ionic conductances and hair cell tuning in the turtle cochlea a. Annals of the New York Academy of Sciences, 781(1), 103–122.

Article  CAS  PubMed  Google Scholar 

Aussel, A., Buhry, L., Tyvaert, L., & Ranta, R. (2018). A detailed anatomical and mathematical model of the hippocampal formation for the generation of sharp-wave ripples and theta-nested gamma oscillations. Journal of computational neuroscience, 45(3), 207–221.

Article  PubMed  Google Scholar 

Berry, H., & Genet, S. (2021). A model of on/off transitions in neurons of the deep cerebellar nuclei: deciphering the underlying ionic mechanisms. The Journal of Mathematical Neuroscience, 11(1), 1–34.

Article  Google Scholar 

Bidaye, S. S., Bockemühl, T., & Büschges, A. (2018). Six-legged walking in insects: how cpgs, peripheral feedback, and descending signals generate coordinated and adaptive motor rhythms. Journal of neurophysiology, 119(2), 459–475.

Article  PubMed  Google Scholar 

Boos, R., Schneider, H., & Wassle, H. (1993). Voltage-and transmitter-gated currents of all-amacrine cells in a slice preparation of the rat retina. Journal of Neuroscience, 13(7), 2874–2888.

Article  CAS  PubMed  Google Scholar 

Burrows, M., Laurent, G., & Field, L. (1988). Proprioceptive inputs to nonspiking local interneurons contribute to local reflexes of a locust hindleg. Journal of Neuroscience, 8(8), 3085–3093.

Article  CAS  PubMed  Google Scholar 

Camperi, M., & Wang, X.-J. (1998). A model of visuospatial working memory in prefrontal cortex: recurrent network and cellular bistability. Journal of computational neuroscience, 5(4), 383–405.

Article  CAS  PubMed  Google Scholar 

Czeredys, M. (2020). Dysregulation of neuronal calcium signaling via store-operated channels in huntington’s disease. Frontiers in Cell and Developmental Biology, 8, 1645.

Article  Google Scholar 

Davis, R., & Stretton, A. (1989a). Passive membrane properties of motorneurons and their role in long-distance signaling in the nematode ascaris. Journal of Neuroscience, 9(2), 403–414.

Article  CAS  PubMed  Google Scholar 

Davis, R. E., & Stretton, A. (1989b). Signaling properties of ascaris motorneurons: graded active responses, graded synaptic transmission, and tonic transmitter release. Journal of Neuroscience, 9(2), 415–425.

Article  CAS  PubMed  Google Scholar 

Dobosiewicz, M., Liu, Q., & Bargmann, C. I. (2019). Reliability of an interneuron response depends on an integrated sensory state. eLife, 8,

Article  CAS  PubMed  PubMed Central  Google Scholar 

Drion, G., O’Leary, T., & Marder, E. (2015). Ion channel degeneracy enables robust and tunable neuronal firing rates. Proceedings of the National Academy of Sciences, 112(38), E5361–E5370.

Article  CAS  Google Scholar 

Eliasmith, C., & Trujillo, O. (2014). The use and abuse of large-scale brain models. Current opinion in neurobiology, 25, 1–6.

Article  CAS  PubMed  Google Scholar 

Fettiplace, R. (1987). Electrical tuning of hair cells in the inner ear. Trends in Neurosciences, 10(10), 421–425.

Article  Google Scholar 

Field, G. D., & Chichilnisky, E. (2007). Information processing in the primate retina: circuitry and coding. Annual Review of Neuroscience (Palo Alto, CA), 30, 1–30.

Article  CAS  Google Scholar 

Geffeney, S. L., Cueva, J. G., Glauser, D. A., Doll, J. C., Lee, T. H. -C., Montoya, M., Karania, S., Garakani, A. M., Pruitt, B. L., & Goodman, M. B. (2011). Deg/enac but not trp channels are the major mechanoelectrical transduction channels in a c. elegans nociceptor. Neuron, 71(5), 845–857.

Giovannini, F., Knauer, B., Yoshida, M., & Buhry, L. (2017). The can-in network: A biologically inspired model for self-sustained theta oscillations and memory maintenance in the hippocampus. Hippocampus, 27(4), 450–463.

Article  CAS  PubMed  Google Scholar 

Goaillard, J. -M., & Marder, E. (2021). Ion channel degeneracy, variability, and covariation in neuron and circuit resilience. Annual Review of Neuroscience, 44.

Goodman, M. B., Hall, D. H., Avery, L., & Lockery, S. R. (1998). Active currents regulate sensitivity and dynamic range in c. elegans neurons. Neuron, 20(4), 763–772.

Gray, J. M., Hill, J. J., & Bargmann, C. I. (2005). A circuit for navigation in caenorhabditis elegans. Proceedings of the National Academy of Sciences, 102(9), 3184–3191.

Article  CAS  Google Scholar 

Hart, A. C., Sims, S., & Kaplan, J. M. (1995). Synaptic code for sensory modalities revealed by c. elegans glr-1 glutamate receptor. Nature, 378(6552), 82–85.

Heyes, S., Pratt, W. S., Rees, E., Dahimene, S., Ferron, L., Owen, M. J., & Dolphin, A. C. (2015). Genetic disruption of voltage-gated calcium channels in psychiatric and neurological disorders. Progress in neurobiology, 134, 36–54.

Article  CAS  PubMed  PubMed Central  Google Scholar 

Hughes, S. W., Cope, D. W., Tóth, T. I., Williams, S. R., & Crunelli, V. (1999). All thalamocortical neurones possess a t-type ca2+ ‘window’ current that enables the expression of bistability-mediated activities. The Journal of physiology, 517(3), 805–815.

Article  CAS  PubMed  PubMed Central  Google Scholar 

Hurley, M. J., & Dexter, D. T. (2012). Voltage-gated calcium channels and parkinson’s disease. Pharmacology & therapeutics, 133(3), 324–333.

Article  CAS  Google Scholar 

Izhikevich, E. M. (2007). Dynamical systems in neuroscience. MIT press.

Jiang, J., Su, Y., Zhang, R., Li, H., Tao, L., & Liu, Q. (2022). C. elegans enteric motor neurons fire synchronized action potentials underlying the defecation motor program. Nature Communications, 13(1), 1–15.

Jiménez Laredo, J. L., Naudin, L., Corson, N., & Fernandes C. M. (2022). A methodology for determining ion channels from membrane potential neuronal recordings. In Applications of Evolutionary Computation, pages 15–29. Springer International Publishing.

Kamaleddin, M. A. (2021). Degeneracy in the nervous system: from neuronal excitability to neural coding. BioEssays, p 2100148.

Kamiyama, Y., Wu, S. M., & Usui, S. (2009). Simulation analysis of bandpass filtering properties of a rod photoreceptor network. Vision research, 49(9), 970–978.

Article  PubMed  Google Scholar 

Kilicarslan, I., Zanetti, L., Novelli, E., Schwarzer, C., Strettoi, E., & Koschak, A. (2021). Knockout of cav1. 3 l-type calcium channels in a mouse model of retinitis pigmentosa. Scientific Reports, 11(1), 1–12.

Kindt, K. S., Viswanath, V., Macpherson, L., Quast, K., Hu, H., Patapoutian, A., & Schafer, W. R. (2007). Caenorhabditis elegans trpa-1 functions in mechanosensation. Nature neuroscience, 10(5), 568–577.

Article  CAS  PubMed  Google Scholar 

Ko, M. L., Liu, Y., Dryer, S. E., & Ko, G.Y.-P. (2007). The expression of l-type voltage-gated calcium channels in retinal photoreceptors is under circadian control. Journal of neurochemistry, 103(2), 784–792.

Article  CAS  PubMed  PubMed Central  Google Scholar 

Koch, U., Bässler, U., & Brunner, M. (1989). Non-spiking neurons supress fluctuations in small networks. Biological cybernetics, 62(1), 75–81.

Article  Google Scholar 

Kourennyi, D. E., Liu, X.-D., Hart, J., Mahmud, F., Baldridge, W. H., & Barnes, S. (2004). Reciprocal modulation of calcium dynamics at rod and cone photoreceptor synapses by nitric oxide. Journal of neurophysiology, 92(1), 477–483.

Article  CAS  PubMed  Google Scholar 

Laurent, G., & Burrows, M. (1989). Distribution of intersegmental inputs to nonspiking local interneurons and motor neurons in the locust. Journal of Neuroscience, 9(9), 3019–3029.

Article  CAS  PubMed  Google Scholar 

Laurent, G., & Burrows, M. (1989). Intersegmental interneurons can control the gain of reflexes in adjacent segments of the locust by their action on nonspiking local interneurons. Journal of Neuroscience, 9(9), 3030–3039.

Article  CAS  PubMed  Google Scholar 

Lindsay, T. H., Thiele, T. R., & Lockery, S. R. (2011). Optogenetic analysis of synaptic transmission in the central nervous system of the nematode caenorhabditis elegans. Nature communications, 2(1), 1–9.

Article  Google Scholar 

Liu, P., Ge, Q., Chen, B., Salkoff, L., Kotlikoff, M. I., & Wang, Z. -W. (2011). Genetic dissection of ion currents underlying all-or-none action potentials in c. elegans body-wall muscle cells. The Journal of physiology, 589(1), 101–117.

Liu, P., Chen, B., Mailler, R., & Wang, Z.-W. (2017). Antidromic-rectifying gap junctions amplify chemical transmission at functionally mixed electrical-chemical synapses. Nature Communications, 8(1), 1–16.

Google Scholar 

Liu, Q., Hollopeter, G., & Jorgensen, E. M. (2009). Graded synaptic transmission at the caenorhabditis elegans neuromuscular junction. Proceedings of the National Academy of Sciences, 106(26), 10823–10828.

Article  CAS  Google Scholar 

Liu, Q., Kidd, P. B., Dobosiewicz, M., & Bargmann, C. I. (2018). C. elegans awa olfactory neurons fire calcium-mediated all-or-none action potentials. Cell, 175(1), 57–70.

Liu, X.-D., & Kourennyi, D. E. (2004). Effects of tetraethylammonium on kx channels and simulated light response in rod photoreceptorss. Annals of Biomedical Engineering, 32(10), 1428–1442.

Article  PubMed  Google Scholar 

Lockery, S. R., Goodman, M. B., & Faumont, S. (2009). First report of action potentials in a c. elegans neuron is premature. Nature Neuroscience, 12(4), 365–366.

Mao, B.-Q., MacLeish, P. R., & Victor, J. D. (2003). Role of hyperpolarization-activated currents for the intrinsic dynamics of isolated retinal neurons. Biophysical Journal, 84(4), 2756–2767.

Article  CAS  PubMed  PubMed Central  Google Scholar 

Mayama, C. (2014). Calcium channels and their blockers in intraocular pressure and glaucoma. European Journal of Pharmacology, 739, 96–105.

Article  CAS  PubMed  Google Scholar 

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