Afterhyperpolarization potential modulated by local [K+]o in K+ diffusion-restricted extracellular space in the central clock of suprachiasmatic nucleus
Tài liệu tham khảo
Dibner, 2010, The mammalian circadian timing system: organization and coordination of central and peripheral clocks, Annu Rev Physiol, 72, 517, 10.1146/annurev-physiol-021909-135821
Inouye, 1979, Persistence of circadian rhythmicity in a mammalian hypothalamic ‘island’ containing the suprachiasmatic nucleus, Proc Natl Acad Sci U S A, 76, 5962, 10.1073/pnas.76.11.5962
Green, 1982, Circadian rhythm of firing rate recorded from single cells in the rat suprachiasmatic brain slice, Brain Res, 245, 198, 10.1016/0006-8993(82)90361-4
Groos, 1982, Circadian rhythms in electrical discharge of rat suprachiasmatic neurones recorded in vitro, Neurosci Lett, 34, 283, 10.1016/0304-3940(82)90189-6
Shibata, 1982, Circadian rhythmic changes of neuronal activity in the suprachiasmatic nucleus of the rat hypothalamic slice, Brain Res, 247, 154, 10.1016/0006-8993(82)91041-1
Huang, 2018, The discoveries of molecular mechanisms for the circadian rhythm: the 2017 Nobel prize in physiology or medicine, Biomed J, 41, 5, 10.1016/j.bj.2018.02.003
Harvey, 2020, Ion channels controlling circadian rhythms in suprachiasmatic nucleus excitability, Physiol Rev, 100, 1415, 10.1152/physrev.00027.2019
Herzog, 1998, Clock controls circadian period in isolated suprachiasmatic nucleus neurons, Nat Neurosci, 1, 708, 10.1038/3708
Honma, 1998, Circadian periods of single suprachiasmatic neurons in rats, Neurosci Lett, 250, 157, 10.1016/S0304-3940(98)00464-9
Welsh, 1995, Individual neurons dissociated from rat suprachiasmatic nucleus express independently phased circadian firing rhythms, Neuron, 14, 697, 10.1016/0896-6273(95)90214-7
Ono, 2021, Roles of neuropeptides, VIP and AVP, in the mammalian central circadian clock, Front Neurosci, 15
Fuchs, 1980, Development of circadian rhythmicity and light responsiveness in the rat suprachiasmatic nucleus: a study using the 2-deoxy[1-14C]glucose method, Proc Natl Acad Sci U S A, 77, 1204, 10.1073/pnas.77.2.1204
Landgraf, 2014, Embryonic development of circadian clocks in the mammalian suprachiasmatic nuclei, Front Neuroanat, 8, 143, 10.3389/fnana.2014.00143
Moore, 1989, Synaptogenesis in the rat suprachiasmatic nucleus demonstrated by electron microscopy and synapsin I immunoreactivity, J Neurosci, 9, 2151, 10.1523/JNEUROSCI.09-06-02151.1989
Bouskila, 1993, Neuronal synchronization without calcium-dependent synaptic transmission in the hypothalamus, Proc Natl Acad Sci U S A, 90, 3207, 10.1073/pnas.90.8.3207
van den Pol, 1980, The hypothalamic suprachiasmatic nucleus of rat: intrinsic anatomy, J Comp Neurol, 191, 661, 10.1002/cne.901910410
Diemer, 2017, Cellular circadian oscillators in the suprachiasmatic nucleus remain coupled in the absence of connexin-36, Neuroscience, 357, 1, 10.1016/j.neuroscience.2017.05.037
Jiang, 1997, Tracer and electrical coupling of rat suprachiasmatic nucleus neurons, Neuroscience, 77, 1059, 10.1016/S0306-4522(96)00539-8
Wang, 2014, The coupling features of electrical synapses modulate neuronal synchrony in hypothalamic suprachiasmatic nucleus, Brain Res, 1550, 9, 10.1016/j.brainres.2014.01.007
van den Pol, 1993, Cellular communication in the circadian clock, the suprachiasmatic nucleus, Neuroscience, 56, 793, 10.1016/0306-4522(93)90128-3
Cheng, 2018, Differential regulation of nimodipine-sensitive and -insensitive Ca2+ influx by the Na+/Ca2+ exchanger and mitochondria in the rat suprachiasmatic nucleus neurons, J Biomed Sci, 25, 44, 10.1186/s12929-018-0447-z
Wang, 2015, Role of Na+/Ca2+ exchanger in Ca2+ homeostasis in rat suprachiasmatic nucleus neurons, J Neurophysiol, 113, 2114, 10.1152/jn.00404.2014
Chen, 2009, Acid-sensing ion channels in neurones of the rat suprachiasmatic nucleus, J Physiol, 587, 1727, 10.1113/jphysiol.2008.166918
Wang, 2004, Diurnal modulation of the Na+/K+-ATPase and spontaneous firing in the rat retinorecipient clock neurons, J Neurophysiol, 92, 2295, 10.1152/jn.00061.2004
Yang, 2017, KATP channels mediate differential metabolic responses to glucose shortage of the dorsomedial and ventrolateral oscillators in the central clock, Sci Rep, 7, 640, 10.1038/s41598-017-00699-3
Neher, 1992, Correction for liquid junction potentials in patch clamp experiments, Methods Enzymol, 207, 123, 10.1016/0076-6879(92)07008-C
Wang, 2012, Intracellular Na+ and metabolic modulation of Na/K pump and excitability in the rat suprachiasmatic nucleus neurons, J Neurophysiol, 108, 2024, 10.1152/jn.00361.2012
Yang, 2010, Cholinergic modulation of neuronal excitability in the rat suprachiasmatic nucleus, J Neurophysiol, 103, 1397, 10.1152/jn.00877.2009
Huang, 1993, Sodium and calcium currents in acutely dissociated neurons from rat suprachiasmatic nucleus, J Neurophysiol, 70, 1692, 10.1152/jn.1993.70.4.1692
Latorre, 1989, Varieties of calcium-activated potassium channels, Annu Rev Physiol, 51, 385, 10.1146/annurev.ph.51.030189.002125
Itri, 2005, Fast delayed rectifier potassium current is required for circadian neural activity, Nat Neurosci, 8, 650, 10.1038/nn1448
Kudo, 2011, Fast delayed rectifier potassium current: critical for input and output of the circadian system, J Neurosci, 31, 2746, 10.1523/JNEUROSCI.5792-10.2011
Kaczmarek, 2017, Kv3 channels: enablers of rapid firing, neurotransmitter release, and neuronal endurance, Physiol Rev, 97, 1431, 10.1152/physrev.00002.2017
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
Ozaita, 2002, Differential subcellular localization of the two alternatively spliced isoforms of the Kv3.1 potassium channel subunit in brain, J Neurophysiol, 88, 394, 10.1152/jn.2002.88.1.394
Sekirnjak, 1997, Subcellular localization of the K+ channel subunit Kv3.1b in selected rat CNS neurons, Brain Res, 766, 173, 10.1016/S0006-8993(97)00527-1
Xu, 2007, The axon-dendrite targeting of Kv3 (Shaw) channels is determined by a targeting motif that associates with the T1 domain and ankyrin G, J Neurosci, 27, 14158, 10.1523/JNEUROSCI.3675-07.2007
Devaux, 2003, Kv3.1b is a novel component of CNS nodes, J Neurosci, 23, 4509, 10.1523/JNEUROSCI.23-11-04509.2003
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
Stevens, 2021, Ankyrin-R regulates fast-spiking interneuron excitability through perineuronal nets and Kv3.1b K+ channels, eLife, 10, 10.7554/eLife.66491
Nicholson, 1998, Extracellular space structure revealed by diffusion analysis, Trends Neurosci, 21, 207, 10.1016/S0166-2236(98)01261-2
Hrabĕtová, 2003, Dead-space microdomains hinder extracellular diffusion in rat neocortex during ischemia, J Neurosci, 23, 8351, 10.1523/JNEUROSCI.23-23-08351.2003
Nicholson, 2017, Brain extracellular space: the final frontier of neuroscience, Biophys J, 113, 2133, 10.1016/j.bpj.2017.06.052
Syková, 2008, Diffusion in brain extracellular space, Physiol Rev, 88, 1277, 10.1152/physrev.00027.2007
Cloues, 2003, Afterhyperpolarization regulates firing rate in neurons of the suprachiasmatic nucleus, J Neurosci, 23, 1593, 10.1523/JNEUROSCI.23-05-01593.2003
Kim, 1993, Membrane properties of rat suprachiasmatic nucleus neurons receiving optic nerve input, J Physiol, 464, 229, 10.1113/jphysiol.1993.sp019632
Pennartz, 1998, Electrophysiological and morphological heterogeneity of neurons in slices of rat suprachiasmatic nucleus, J Physiol, 506, 775, 10.1111/j.1469-7793.1998.775bv.x
Teshima, 2003, Characterization of an apmin-sensitive potassium current in suprachiasmatic nucleus neurons, Neuroscience, 120, 65, 10.1016/S0306-4522(03)00270-7
Thomson, 1990, Factors affecting slow regular firing in the suprachiasmatic nucleus in vitro, J Biol Rhythms, 5, 59, 10.1177/074873049000500106
Wang, 2006, Effects of sodium pump activity on spontaneous firing in neurons of the rat suprachiasmatic nucleus, J Neurophysiol, 96, 109, 10.1152/jn.01369.2005