Hight AE, Kalluri R. (2016). A biophysical model examining the role of low-voltage-activated potassium currents in shaping the responses of vestibular ganglion neurons. Journal of neurophysiology. 116 [PubMed]

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References and models cited by this paper

Accili EA, Proenza C, Baruscotti M, DiFrancesco D. (2002). From funny current to HCN channels: 20 years of excitation. News in physiological sciences : an international journal of physiology produced jointly by the International Union of Physiological Sciences and the American Physiological Society. 17 [PubMed]

Almanza A, Luis E, Mercado F, Vega R, Soto E. (2012). Molecular identity, ontogeny, and cAMP modulation of the hyperpolarization-activated current in vestibular ganglion neurons. Journal of neurophysiology. 108 [PubMed]

Baird RA, Desmadryl G, Fernández C, Goldberg JM. (1988). The vestibular nerve of the chinchilla. II. Relation between afferent response properties and peripheral innervation patterns in the semicircular canals. Journal of neurophysiology. 60 [PubMed]

Black JA, Frézel N, Dib-Hajj SD, Waxman SG. (2012). Expression of Nav1.7 in DRG neurons extends from peripheral terminals in the skin to central preterminal branches and terminals in the dorsal horn. Molecular pain. 8 [PubMed]

Brugeaud A, Gaboyard-Niay S, Puel JL, Chabbert C. (2006). Hypergravity affects the developmental expression of voltage-gated sodium current in utricular hair cells. Neuroreport. 17 [PubMed]

Cervantes B, Vega R, Limón A, Soto E. (2013). Identity, expression and functional role of the sodium-activated potassium current in vestibular ganglion afferent neurons. Neuroscience. 240 [PubMed]

Chabbert C, Chambard JM, Valmier J, Sans A, Desmadryl G. (1997). Voltage-activated sodium currents in acutely isolated mouse vestibular ganglion neurones. Neuroreport. 8 [PubMed]

Chabbert C, Chambard JM, Valmier J, Sans A, Desmadryl G. (2001). Hyperpolarization-activated (Ih) current in mouse vestibular primary neurons. Neuroreport. 12 [PubMed]

Chambard JM, Chabbert C, Sans A, Desmadryl G. (1999). Developmental changes in low and high voltage-activated calcium currents in acutely isolated mouse vestibular neurons. The Journal of physiology. 518 [PubMed]

DiFrancesco D. (2010). The role of the funny current in pacemaker activity. Circulation research. 106 [PubMed]

Eatock RA, Xue J, Kalluri R. (2008). Ion channels in mammalian vestibular afferents may set regularity of firing. The Journal of experimental biology. 211 [PubMed]

Felix R et al. (2003). ZD7288 inhibits low-threshold Ca(2+) channel activity and regulates sperm function. Biochemical and biophysical research communications. 311 [PubMed]

Fernández C, Baird RA, Goldberg JM. (1988). The vestibular nerve of the chinchilla. I. Peripheral innervation patterns in the horizontal and superior semicircular canals. Journal of neurophysiology. 60 [PubMed]

Ferragamo MJ, Oertel D. (2002). Octopus cells of the mammalian ventral cochlear nucleus sense the rate of depolarization. Journal of neurophysiology. 87 [PubMed]

Glowatzki E, Fuchs PA. (2002). Transmitter release at the hair cell ribbon synapse. Nature neuroscience. 5 [PubMed]

Glowatzki E, Grant L, Fuchs P. (2008). Hair cell afferent synapses. Current opinion in neurobiology. 18 [PubMed]

Goldberg JM. (2000). Afferent diversity and the organization of central vestibular pathways. Experimental brain research. 130 [PubMed]

Goldberg JM, Holt JC. (2013). Discharge regularity in the turtle posterior crista: comparisons between experiment and theory. Journal of neurophysiology. 110 [PubMed]

Goldberg JM, Lysakowski A, Fernández C. (1990). Morphophysiological and ultrastructural studies in the mammalian cristae ampullares. Hearing research. 49 [PubMed]

Goldberg JM, Smith CE, Fernández C. (1984). Relation between discharge regularity and responses to externally applied galvanic currents in vestibular nerve afferents of the squirrel monkey. Journal of neurophysiology. 51 [PubMed]

Grant L, Yi E, Glowatzki E. (2010). Two modes of release shape the postsynaptic response at the inner hair cell ribbon synapse. The Journal of neuroscience : the official journal of the Society for Neuroscience. 30 [PubMed]

Highstein SM, Holstein GR, Mann MA, Rabbitt RD. (2014). Evidence that protons act as neurotransmitters at vestibular hair cell-calyx afferent synapses. Proceedings of the National Academy of Sciences of the United States of America. 111 [PubMed]

Highstein SM, Politoff AL. (1978). Relation of interspike baseline activity to the spontaneous discharges of primary afferents from the labyrinth of the toadfish, Opsanus tau. Brain research. 150 [PubMed]

Horwitz GC, Risner-Janiczek JR, Holt JR. (2014). Mechanotransduction and hyperpolarization-activated currents contribute to spontaneous activity in mouse vestibular ganglion neurons. The Journal of general physiology. 143 [PubMed]

Horwitz GC, Risner-Janiczek JR, Jones SM, Holt JR. (2011). HCN channels expressed in the inner ear are necessary for normal balance function. The Journal of neuroscience : the official journal of the Society for Neuroscience. 31 [PubMed]

Hossain WA, Antic SD, Yang Y, Rasband MN, Morest DK. (2005). Where is the spike generator of the cochlear nerve? Voltage-gated sodium channels in the mouse cochlea. The Journal of neuroscience : the official journal of the Society for Neuroscience. 25 [PubMed]

Hurley KM et al. (2006). M-like K+ currents in type I hair cells and calyx afferent endings of the developing rat utricle. The Journal of neuroscience : the official journal of the Society for Neuroscience. 26 [PubMed]

Ishiyama G, Lopez I, Williamson R, Acuna D, Ishiyama A. (2002). Subcellular immunolocalization of NMDA receptor subunit NR1, 2A, 2B in the rat vestibular periphery. Brain research. 935 [PubMed]

Iwasaki S, Chihara Y, Komuta Y, Ito K, Sahara Y. (2008). Low-voltage-activated potassium channels underlie the regulation of intrinsic firing properties of rat vestibular ganglion cells. Journal of neurophysiology. 100 [PubMed]

Kalluri R, Ventura C. (2014). Current density differences between action potential firing patterns in vestibular ganglion neurons Assoc Res Otolaryngol Abs PS-205.

Kalluri R, Xue J, Eatock RA. (2010). Ion channels set spike timing regularity of mammalian vestibular afferent neurons. Journal of neurophysiology. 104 [PubMed]

Kanold PO, Manis PB. (1999). Transient potassium currents regulate the discharge patterns of dorsal cochlear nucleus pyramidal cells. The Journal of neuroscience : the official journal of the Society for Neuroscience. 19 [PubMed]

Kanold PO, Manis PB. (2001). A physiologically based model of discharge pattern regulation by transient K+ currents in cochlear nucleus pyramidal cells. Journal of neurophysiology. 85 [PubMed]

Limón A, Pérez C, Vega R, Soto E. (2005). Ca2+-activated K+-current density is correlated with soma size in rat vestibular-afferent neurons in culture. Journal of neurophysiology. 94 [PubMed]

Liu XP. (2012). Sodium Channel Diversity in the Vestibular Ganglion: Evidence for NaV1.5-Like and NaV1.8-Like Currents.

Lysakowski A et al. (2011). Molecular microdomains in a sensory terminal, the vestibular calyx ending. The Journal of neuroscience : the official journal of the Society for Neuroscience. 31 [PubMed]

Lysakowski A, Minor LB, Fernández C, Goldberg JM. (1995). Physiological identification of morphologically distinct afferent classes innervating the cristae ampullares of the squirrel monkey. Journal of neurophysiology. 73 [PubMed]

Maccaferri G, McBain CJ. (1996). The hyperpolarization-activated current (Ih) and its contribution to pacemaker activity in rat CA1 hippocampal stratum oriens-alveus interneurones. The Journal of physiology. 497 ( Pt 1) [PubMed]

Matsubara A et al. (1999). Immunoelectron microscopy of AMPA receptor subunits reveals three types of putative glutamatergic synapse in the rat vestibular end organs. Brain research. 819 [PubMed]

Meredith FL, Benke TA, Rennie KJ. (2012). Hyperpolarization-activated current (I(h)) in vestibular calyx terminals: characterization and role in shaping postsynaptic events. Journal of the Association for Research in Otolaryngology : JARO. 13 [PubMed]

Meredith FL, Rennie KJ. (2015). Zonal variations in K+ currents in vestibular crista calyx terminals. Journal of neurophysiology. 113 [PubMed]

O'Gorman DE, White JA, Shera CA. (2009). Dynamical instability determines the effect of ongoing noise on neural firing. Journal of the Association for Research in Otolaryngology : JARO. 10 [PubMed]

Otis T, Zhang S, Trussell LO. (1996). Direct measurement of AMPA receptor desensitization induced by glutamatergic synaptic transmission. The Journal of neuroscience : the official journal of the Society for Neuroscience. 16 [PubMed]

Precht W. (1979). Vestibular mechanisms. Annual review of neuroscience. 2 [PubMed]

Pérez C, Limón A, Vega R, Soto E. (2009). The muscarinic inhibition of the potassium M-current modulates the action-potential discharge in the vestibular primary-afferent neurons of the rat. Neuroscience. 158 [PubMed]

Risner JR, Holt JR. (2006). Heterogeneous potassium conductances contribute to the diverse firing properties of postnatal mouse vestibular ganglion neurons. Journal of neurophysiology. 96 [PubMed]

Rose KE et al. (2013). Immunohistological demonstration of CaV3.2 T-type voltage-gated calcium channel expression in soma of dorsal root ganglion neurons and peripheral axons of rat and mouse. Neuroscience. 250 [PubMed]

Rothman JS, Manis PB. (2003). The roles potassium currents play in regulating the electrical activity of ventral cochlear nucleus neurons. Journal of neurophysiology. 89 [PubMed]

Rothman JS, Manis PB. (2003). Differential expression of three distinct potassium currents in the ventral cochlear nucleus. Journal of neurophysiology. 89 [PubMed]

Rutherford MA, Chapochnikov NM, Moser T. (2012). Spike encoding of neurotransmitter release timing by spiral ganglion neurons of the cochlea. The Journal of neuroscience : the official journal of the Society for Neuroscience. 32 [PubMed]

Sadeghi SG, Chacron MJ, Taylor MC, Cullen KE. (2007). Neural variability, detection thresholds, and information transmission in the vestibular system. The Journal of neuroscience : the official journal of the Society for Neuroscience. 27 [PubMed]

Sadeghi SG, Pyott SJ, Yu Z, Glowatzki E. (2014). Glutamatergic signaling at the vestibular hair cell calyx synapse. The Journal of neuroscience : the official journal of the Society for Neuroscience. 34 [PubMed]

Schessel DA, Highstein SM. (1981). Is transmission between the vestibular type I hair cell and its primary afferent chemical? Annals of the New York Academy of Sciences. 374 [PubMed]

Smith CE, Goldberg JM. (1986). A stochastic afterhyperpolarization model of repetitive activity in vestibular afferents. Biological cybernetics. 54 [PubMed]

Songer JE, Eatock RA. (2013). Tuning and timing in mammalian type I hair cells and calyceal synapses. The Journal of neuroscience : the official journal of the Society for Neuroscience. 33 [PubMed]

Trussell LO. (1999). Synaptic mechanisms for coding timing in auditory neurons. Annual review of physiology. 61 [PubMed]

Vega R, Rodríguez U, Soto E. (2009). Acid-sensing ionic-channel functional expression in the vestibular endorgans. Neuroscience letters. 463 [PubMed]

Wooltorton JR et al. (2007). Developmental changes in two voltage-dependent sodium currents in utricular hair cells. Journal of neurophysiology. 97 [PubMed]

Wu X et al. (2012). Is ZD7288 a selective blocker of hyperpolarization-activated cyclic nucleotide-gated channel currents? Channels (Austin, Tex.). 6 [PubMed]

Yamashita M, Ohmori H. (1990). Synaptic responses to mechanical stimulation in calyceal and bouton type vestibular afferents studied in an isolated preparation of semicircular canal ampullae of chicken. Experimental brain research. 80 [PubMed]

Yi E, Roux I, Glowatzki E. (2010). Dendritic HCN channels shape excitatory postsynaptic potentials at the inner hair cell afferent synapse in the mammalian cochlea. Journal of neurophysiology. 103 [PubMed]

Yoshimoto R et al. (2015). Developmental increase in hyperpolarization-activated current regulates intrinsic firing properties in rat vestibular ganglion cells. Neuroscience. 284 [PubMed]

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Holmes WR, Huwe JA, Williams B, Rowe MH, Peterson EH. (2017). Models of utricular bouton afferents: role of afferent-hair cell connectivity in determining spike train regularity. Journal of neurophysiology. 117 [PubMed]

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