Genetic and functional diversity of primary auditory afferents
Tài liệu tham khảo
Hossain, 2005, Where is the spike generator of the cochlear nerve? Voltage-gated sodium channels in the mouse cochlea, J Neurosci, 25, 6857, 10.1523/JNEUROSCI.0123-05.2005
Kim, 2016, Maturation of NaV and KV channel topographies in the auditory nerve spike initiator before and after developmental onset of hearing function, J Neurosci, 36, 2111, 10.1523/JNEUROSCI.3437-15.2016
Rose, 1967, Phase-locked response to low-frequency tones in single auditory nerve fibers of the squirrel monkey, J Neurophysiol, 30, 769, 10.1152/jn.1967.30.4.769
Johnson, 1980, The relationship between spike rate and synchrony in responses of auditory-nerve fibers to single tones, J Acoust Soc Am, 68, 1115, 10.1121/1.384982
Kiang, 1967, Shapes of tuning curves for single auditory-nerve fibers, J Acoust Soc Am, 42, 1341, 10.1121/1.1910723
Evans, 1972, The frequency response and other properties of single fibres in the guinea-pig cochlear nerve, J Physiol, 226, 263, 10.1113/jphysiol.1972.sp009984
Rupert, 1963, Unit responses to sound from auditory nerve of the cat, J Neurophysiol, 26, 449, 10.1152/jn.1963.26.3.449
Liberman, 1982, Single-neuron labeling in the cat auditory nerve, Science, 216, 1239, 10.1126/science.7079757
Fettiplace, 2006, The sensory and motor roles of auditory hair cells, Nat Rev Neurosci, 7, 19, 10.1038/nrn1828
Froud, 2015, Type II spiral ganglion afferent neurons drive medial olivocochlear reflex suppression of the cochlear amplifier, Nat Commun, 6, 10.1038/ncomms8115
Maison, 2016, Type II cochlear ganglion neurons do not drive the olivocochlear reflex: re-examination of the cochlear phenotype in peripherin knock-out mice, eNeuro, 3, 10.1523/ENEURO.0207-16.2016
el Barbary, 1991, Auditory nerve of the normal and jaundiced rat. I. Spontaneous discharge rate and cochlear nerve histology, Hear Res, 54, 75, 10.1016/0378-5955(91)90138-Y
Taberner, 2005, Response properties of single auditory nerve fibers in the mouse, J Neurophysiol, 93, 557, 10.1152/jn.00574.2004
Flores, 2015, A non-canonical pathway from cochlea to brain signals tissue-damaging noise, Curr Biol, 25, 606, 10.1016/j.cub.2015.01.009
Weisz, 2009, The postsynaptic function of type II cochlear afferents, Nature, 461, 1126, 10.1038/nature08487
Liu, 2015, Unmyelinated type II afferent neurons report cochlear damage, Proc Natl Acad Sci U S A, 112, 14723, 10.1073/pnas.1515228112
Zhang-Hooks, 2016, NMDA receptors enhance spontaneous activity and promote neuronal survival in the developing cochlea, Neuron, 89, 337, 10.1016/j.neuron.2015.12.016
Zhang, 2017, Recent advances in the development and function of type II spiral ganglion neurons in the mammalian inner ear, Semin Cell Dev Biol, 65, 80, 10.1016/j.semcdb.2016.09.017
Petitpre, 2018, Neuronal heterogeneity and stereotyped connectivity in the auditory afferent system, Nat Commun, 9, 10.1038/s41467-018-06033-3
Huet, 2016, Sound coding in the auditory nerve of gerbils, Hear Res, 338, 32, 10.1016/j.heares.2016.05.006
Liberman, 1980, Morphological differences among radial afferent fibers in the cat cochlea: an electron-microscopic study of serial sections, Hear Res, 3, 45, 10.1016/0378-5955(80)90007-6
Liberman, 1990, Afferent and efferent innervation of the cat cochlea: quantitative analysis with light and electron microscopy, J Comp Neurol, 301, 443, 10.1002/cne.903010309
Liberman, 2011, Opposing gradients of ribbon size and AMPA receptor expression underlie sensitivity differences among cochlear-nerve/hair-cell synapses, J Neurosci, 31, 801, 10.1523/JNEUROSCI.3389-10.2011
Frank, 2009, Mechanisms contributing to synaptic Ca2+ signals and their heterogeneity in hair cells, Proc Natl Acad Sci U S A, 106, 4483, 10.1073/pnas.0813213106
Griesinger, 2005, Fast vesicle replenishment allows indefatigable signalling at the first auditory synapse, Nature, 435, 212, 10.1038/nature03567
Ohn, 2016, Hair cells use active zones with different voltage dependence of Ca2+ influx to decompose sounds into complementary neural codes, Proc Natl Acad Sci U S A, 113, E4716, 10.1073/pnas.1605737113
Michanski, 2019, Mapping developmental maturation of inner hair cell ribbon synapses in the apical mouse cochlea, Proc Natl Acad Sci U S A, 116, 6415, 10.1073/pnas.1812029116
Meyer, 2009, Tuning of synapse number, structure and function in the cochlea, Nat Neurosci, 12, 444, 10.1038/nn.2293
Jean, 2019, Intrinsic planar polarity mechanisms influence the position-dependent regulation of synapse properties in inner hair cells, Proc Natl Acad Sci U S A, 116, 9084, 10.1073/pnas.1818358116
Robertson, 2002, Role of L-type Ca2+ channels in transmitter release from mammalian inner hair cells. II. Single-neuron activity, J Neurophysiol, 87, 2734, 10.1152/jn.2002.87.6.2734
Merchan-Perez, 1996, Ultrastructural differences among afferent synapses on cochlear hair cells: correlations with spontaneous discharge rate, J Comp Neurol, 371, 208, 10.1002/(SICI)1096-9861(19960722)371:2<208::AID-CNE2>3.0.CO;2-6
Nouvian, 2015, Cochlear efferents in developing adult and pathological conditions, Cell Tissue Res, 361, 301, 10.1007/s00441-015-2158-z
Ruel, 2001, Dopamine inhibition of auditory nerve activity in the adult mammalian cochlea, Eur J Neurosci, 14, 977, 10.1046/j.0953-816x.2001.01721.x
Wu, 2020, Sound exposure dynamically induces dopamine synthesis in cholinergic LOC efferents for feedback to auditory nerve fibers, eLife, 9, 10.7554/eLife.52419
d’Aldin, 1995, Effects of a dopaminergic agonist in the guinea pig cochlea, Hear Res, 90, 202, 10.1016/0378-5955(95)00167-5
Brown, 1984, Efferent control of cochlear inner hair cell responses in the guinea-pig, J Physiol, 354, 625, 10.1113/jphysiol.1984.sp015396
Shrestha, 2018, Sensory neuron diversity in the inner ear is shaped by activity, Cell, 174, 1229, 10.1016/j.cell.2018.07.007
Sun, 2018, Hair cell mechanotransduction regulates spontaneous activity and spiral ganglion subtype specification in the auditory system, Cell, 174, 1247, 10.1016/j.cell.2018.07.008
Zeisel, 2018, Molecular architecture of the mouse nervous system, Cell, 174, 999, 10.1016/j.cell.2018.06.021
Usoskin, 2015, Unbiased classification of sensory neuron types by large-scale single-cell RNA sequencing, Nat Neurosci, 18, 145, 10.1038/nn.3881
Kupari, 2019, An atlas of vagal sensory neurons and their molecular specialization, Cell Rep, 27, 2508, 10.1016/j.celrep.2019.04.096
Furlan, 2016, Visceral motor neuron diversity delineates a cellular basis for nipple- and pilo-erection muscle control, Nat Neurosci, 19, 1331, 10.1038/nn.4376
Shekhar, 2016, Comprehensive classification of retinal bipolar neurons by single-cell transcriptomics, Cell, 166, 1308, 10.1016/j.cell.2016.07.054
Ruggero, 1992, Responses to sound of the basilar membrane of the mammalian cochlea, Curr Opin Neurobiol, 2, 449, 10.1016/0959-4388(92)90179-O
Joris, 2004, Neural processing of amplitude-modulated sounds, Physiol Rev, 84, 541, 10.1152/physrev.00029.2003
Fuchs, 2019, Efferent inhibition of the cochlea, Cold Spring Harb Perspect Med, 9, 10.1101/cshperspect.a033530
Patuzzi, 2011, Ion flow in cochlear hair cells and the regulation of hearing sensitivity, Hear Res, 280, 3, 10.1016/j.heares.2011.04.006
Huet, 2018, The interplay between spike-time and spike-rate modes in the auditory nerve encodes tone-in-noise threshold, J Neurosci, 38, 5727, 10.1523/JNEUROSCI.3103-17.2018
Rhode, 1985, Characteristics of tone-pip response patterns in relationship to spontaneous rate in cat auditory nerve fibers, Hear Res, 18, 159, 10.1016/0378-5955(85)90008-5
Buran, 2010, Onset coding is degraded in auditory nerve fibers from mutant mice lacking synaptic ribbons, J Neurosci, 30, 7587, 10.1523/JNEUROSCI.0389-10.2010
Rudy, 2001, Kv3 channels: voltage-gated K+ channels designed for high-frequency repetitive firing, Trends Neurosci, 24, 517, 10.1016/S0166-2236(00)01892-0
Rutherford, 2012, Spike encoding of neurotransmitter release timing by spiral ganglion neurons of the cochlea, J Neurosci, 32, 4773, 10.1523/JNEUROSCI.4511-11.2012
Bourien, 2014, Contribution of auditory nerve fibers to compound action potential of the auditory nerve, J Neurophysiol, 112, 1025, 10.1152/jn.00738.2013
Palmer, 1980, Cochlear fibre rate—intensity functions: no evidence for basilar membrane nonlinearities, Hear Res, 2, 319, 10.1016/0378-5955(80)90065-9
Winter, 1990, Diversity of characteristic frequency rate-intensity functions in guinea pig auditory nerve fibres, Hear Res, 45, 191, 10.1016/0378-5955(90)90120-E
Kirkby, 2013, A role for correlated spontaneous activity in the assembly of neural circuits, Neuron, 80, 1129, 10.1016/j.neuron.2013.10.030
Druckenbrod, 2015, Sequential retraction segregates SGN processes during target selection in the cochlea, J Neurosci, 35, 16221, 10.1523/JNEUROSCI.2236-15.2015
Tritsch, 2010, Developmental regulation of spontaneous activity in the mammalian cochlea, J Neurosci, 30, 1539, 10.1523/JNEUROSCI.3875-09.2010
Tritsch, 2007, The origin of spontaneous activity in the developing auditory system, Nature, 450, 50, 10.1038/nature06233
Mikaelian, 1965, Cochlear potentials and 8 nerve action potentials in normal and genetically deaf mice, Ann Otol Rhinol Laryngol, 74, 146, 10.1177/000348946507400113
Johnson, 2013, Presynaptic maturation in auditory hair cells requires a critical period of sensory-independent spiking activity, Proc Natl Acad Sci U S A, 110, 8720, 10.1073/pnas.1219578110
Clause, 2014, The precise temporal pattern of prehearing spontaneous activity is necessary for tonotopic map refinement, Neuron, 82, 822, 10.1016/j.neuron.2014.04.001
Markowitz, 2020, Gradients in the biophysical properties of neonatal auditory neurons align with synaptic contact position and the intensity coding map of inner hair cells, eLife, 9, 10.7554/eLife.55378
Liu, 2014, I h and HCN channels in murine spiral ganglion neurons: tonotopic variation, local heterogeneity, and kinetic model, J Assoc Res Otolaryngol, 15, 585, 10.1007/s10162-014-0446-z
Sharma, 2020, The emergence of transcriptional identity in somatosensory neurons, Nature, 577, 392, 10.1038/s41586-019-1900-1
Flavell, 2008, Signaling mechanisms linking neuronal activity to gene expression and plasticity of the nervous system, Annu Rev Neurosci, 31, 563, 10.1146/annurev.neuro.31.060407.125631
Stroud, 2020, An activity-mediated transition in transcription in early postnatal neurons, Neuron, 107, 874, 10.1016/j.neuron.2020.06.008
Chen, 2017, Transcribing the connectome: roles for transcription factors and chromatin regulators in activity-dependent synapse development, J Neurophysiol, 118, 755, 10.1152/jn.00067.2017
Yap, 2018, Activity-regulated transcription: bridging the gap between neural activity and behavior, Neuron, 100, 330, 10.1016/j.neuron.2018.10.013
Kalish, 2018, Single-cell transcriptomics of the developing lateral geniculate nucleus reveals insights into circuit assembly and refinement, Proc Natl Acad Sci U S A, 115, E1051, 10.1073/pnas.1717871115
Seal, 2008, Sensorineural deafness and seizures in mice lacking vesicular glutamate transporter 3, Neuron, 57, 263, 10.1016/j.neuron.2007.11.032
Ruel, 2008, Impairment of SLC17A8 encoding vesicular glutamate transporter-3, VGLUT3, underlies nonsyndromic deafness DFNA25 and inner hair cell dysfunction in null mice, Am J Hum Genet, 83, 278, 10.1016/j.ajhg.2008.07.008
Ohlemiller, 1990, Functional correlates of characteristic frequency in single cochlear nerve fibers of the Mongolian gerbil, J Comp Physiol A, 167, 329, 10.1007/BF00192568
Muller, 1996, The cochlear place-frequency map of the adult and developing Mongolian gerbil, Hear Res, 94, 148, 10.1016/0378-5955(95)00230-8
Robles, 2001, Mechanics of the mammalian cochlea, Physiol Rev, 81, 1305, 10.1152/physrev.2001.81.3.1305
Ryan, 1976, Hearing sensitivity of the Mongolian gerbil, Meriones unguiculatis, J Acoust Soc Am, 59, 1222, 10.1121/1.380961
Kawase, 1992, Spatial organization of the auditory nerve according to spontaneous discharge rate, J Comp Neurol, 319, 312, 10.1002/cne.903190210
Kiselev, 2018, scmap: projection of single-cell RNA-seq data across data sets, Nat Methods, 15, 359, 10.1038/nmeth.4644