PNAS 2015-07-21

GABA-mediated repulsive coupling between circadian clock neurons in the SCN encodes seasonal time.

Jihwan Myung, Sungho Hong, Daniel DeWoskin, Erik De Schutter, Daniel B Forger, Toru Takumi

文献索引:Proc. Natl. Acad. Sci. U. S. A. 112 , E3920-9, (2015)

全文:HTML全文

摘要

The mammalian suprachiasmatic nucleus (SCN) forms not only the master circadian clock but also a seasonal clock. This neural network of ∼10,000 circadian oscillators encodes season-dependent day-length changes through a largely unknown mechanism. We show that region-intrinsic changes in the SCN fine-tune the degree of network synchrony and reorganize the phase relationship among circadian oscillators to represent day length. We measure oscillations of the clock gene Bmal1, at single-cell and regional levels in cultured SCN explanted from animals raised under short or long days. Coupling estimation using the Kuramoto framework reveals that the network has couplings that can be both phase-attractive (synchronizing) and -repulsive (desynchronizing). The phase gap between the dorsal and ventral regions increases and the overall period of the SCN shortens with longer day length. We find that one of the underlying physiological mechanisms is the modulation of the intracellular chloride concentration, which can adjust the strength and polarity of the ionotropic GABAA-mediated synaptic input. We show that increasing day-length changes the pattern of chloride transporter expression, yielding more excitatory GABA synaptic input, and that blocking GABAA signaling or the chloride transporter disrupts the unique phase and period organization induced by the day length. We test the consequences of this tunable GABA coupling in the context of excitation-inhibition balance through detailed realistic modeling. These results indicate that the network encoding of seasonal time is controlled by modulation of intracellular chloride, which determines the phase relationship among and period difference between the dorsal and ventral SCN.


相关化合物

  • 解毒喹
  • 氯化钠
  • 氢氧化钾
  • 无水氯化钙
  • 呋噻米
  • 氯化钠-35cl
  • 二水氯化钙
  • 三丁基氯化锡
  • 精氨酸加压素

相关文献:

Synthesis and characterization of improved chloride-sensitive fluorescent indicators for biological applications.

1989-05-01

[Anal. Biochem. 178 , 355, (1989)]

Hypoxia inhibits colonic ion transport via activation of AMP kinase.

2011-12-01

[Ann. Surg. 254 , 957-963, (2011)]

The membrane-bound bile acid receptor TGR5 is localized in the epithelium of human gallbladders.

2009-09-01

[Hepatology 50 , 861-870, (2009)]

Synthetic ion transporters can induce apoptosis by facilitating chloride anion transport into cells.

2014-10-01

[Nature Chemistry 6(10) , 885-92, (2014)]

Na+,K+,2Cl- cotransport and intracellular chloride regulation in rat primary sensory neurons: thermodynamic and kinetic aspects.

2008-07-01

[J. Neurophysiol. 100 , 169-84, (2008)]

更多文献...