Literature DB >> 9130787

Tracer and electrical coupling of rat suprachiasmatic nucleus neurons.

Z G Jiang1, Y Q Yang, C N Allen.   

Abstract

Whole-cell recording from single neurons of the suprachiasmatic nucleus with an electrode containing the tracer neurobiotin resulted in the staining of multiple neurons in 30% of the cases. Typically, one neuron was darkly stained with dendritic processes and an axon clearly visible while other neurons were lightly stained. The darkly-stained cells were identified as the recorded neuron and tracer-coupled to one to five lightly stained neurons. The resting membrane potential, input membrane conductance, membrane capacitance, the decay time constant and the maximum H-current amplitude of the recorded neurons with tracer-coupled cells were not significantly different from those of neurons not showing tracer coupling. Stimulation of the preoptic area activated an antidromic action potential or an all-or-none small slow inward current in some neurons when the synaptic transmission was blocked by a calcium-free/Mn2+ solution. The small slow inward current did not "collide" with an orthodromically activated action spike suggesting that the current represents the signal from an electrotonically-coupled neuron. In addition, the frequency of biphasic field currents from a neighbouring cell firing were increased by depolarization and decreased by hyperpolarization of the recorded cell. These data demonstrate a chemical and electrical low-resistance coupling of suprachiasmatic nucleus neurons, which could be important in synthesizing the suprachiasmatic nucleus circadian rhythm.

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Year:  1997        PMID: 9130787     DOI: 10.1016/s0306-4522(96)00539-8

Source DB:  PubMed          Journal:  Neuroscience        ISSN: 0306-4522            Impact factor:   3.590


  18 in total

1.  Rhythmic coupling among cells in the suprachiasmatic nucleus.

Authors:  C S Colwell
Journal:  J Neurobiol       Date:  2000-06-15

2.  Heterogeneity of rhythmic suprachiasmatic nucleus neurons: Implications for circadian waveform and photoperiodic encoding.

Authors:  Jeroen Schaap; Henk Albus; Henk Tjebbe VanderLeest; Paul H C Eilers; László Détári; Johanna H Meijer
Journal:  Proc Natl Acad Sci U S A       Date:  2003-12-11       Impact factor: 11.205

Review 3.  Bridging the gap: coupling single-cell oscillators in the suprachiasmatic nucleus.

Authors:  Christopher S Colwell
Journal:  Nat Neurosci       Date:  2005-01       Impact factor: 24.884

Review 4.  Exploring spatiotemporal organization of SCN circuits.

Authors:  L Yan; I Karatsoreos; J Lesauter; D K Welsh; S Kay; D Foley; R Silver
Journal:  Cold Spring Harb Symp Quant Biol       Date:  2007

Review 5.  Expression of clock genes in the suprachiasmatic nucleus: effect of environmental lighting conditions.

Authors:  Lily Yan
Journal:  Rev Endocr Metab Disord       Date:  2009-12       Impact factor: 6.514

6.  Electrophysiological and morphological heterogeneity of neurons in slices of rat suprachiasmatic nucleus.

Authors:  C M Pennartz; M T De Jeu; A M Geurtsen; A A Sluiter; M L Hermes
Journal:  J Physiol       Date:  1998-02-01       Impact factor: 5.182

Review 7.  Collective timekeeping among cells of the master circadian clock.

Authors:  Jennifer A Evans
Journal:  J Endocrinol       Date:  2016-05-06       Impact factor: 4.286

Review 8.  In synch but not in step: Circadian clock circuits regulating plasticity in daily rhythms.

Authors:  J A Evans; M R Gorman
Journal:  Neuroscience       Date:  2016-02-06       Impact factor: 3.590

9.  Vasoactive intestinal polypeptide mediates circadian rhythmicity and synchrony in mammalian clock neurons.

Authors:  Sara J Aton; Christopher S Colwell; Anthony J Harmar; James Waschek; Erik D Herzog
Journal:  Nat Neurosci       Date:  2005-03-06       Impact factor: 24.884

10.  Fibroblast PER2 circadian rhythmicity depends on cell density.

Authors:  Takako Noguchi; Lexie L Wang; David K Welsh
Journal:  J Biol Rhythms       Date:  2013-06       Impact factor: 3.182

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