Coupling governs entrainment range of circadian clocks.

Standard

Coupling governs entrainment range of circadian clocks. / Abraham, Ute; Granada, Adrián E; Westermark, Pål O; Heine, Markus; Kramer, Achim; Herzel, Hanspeter.

in: MOL SYST BIOL, Jahrgang 6, 2010, S. 438.

Publikationen: SCORING: Beitrag in Fachzeitschrift/ZeitungSCORING: ZeitschriftenaufsatzForschungBegutachtung

Harvard

Abraham, U, Granada, AE, Westermark, PO, Heine, M, Kramer, A & Herzel, H 2010, 'Coupling governs entrainment range of circadian clocks.', MOL SYST BIOL, Jg. 6, S. 438. <http://www.ncbi.nlm.nih.gov/pubmed/21119632?dopt=Citation>

APA

Abraham, U., Granada, A. E., Westermark, P. O., Heine, M., Kramer, A., & Herzel, H. (2010). Coupling governs entrainment range of circadian clocks. MOL SYST BIOL, 6, 438. http://www.ncbi.nlm.nih.gov/pubmed/21119632?dopt=Citation

Vancouver

Abraham U, Granada AE, Westermark PO, Heine M, Kramer A, Herzel H. Coupling governs entrainment range of circadian clocks. MOL SYST BIOL. 2010;6:438.

Bibtex

@article{3a63e86443924e0fbe5960cf690de47a,
title = "Coupling governs entrainment range of circadian clocks.",
abstract = "Circadian clocks are endogenous oscillators driving daily rhythms in physiology and behavior. Synchronization of these timers to environmental light-dark cycles ('entrainment') is crucial for an organism's fitness. Little is known about which oscillator qualities determine entrainment, i.e., entrainment range, phase and amplitude. In a systematic theoretical and experimental study, we uncovered these qualities for circadian oscillators in the suprachiasmatic nucleus (SCN-the master clock in mammals) and the lung (a peripheral clock): (i) the ratio between stimulus (zeitgeber) strength and oscillator amplitude and (ii) the rigidity of the oscillatory system (relaxation rate upon perturbation) determine entrainment properties. Coupling among oscillators affects both qualities resulting in increased amplitude and rigidity. These principles explain our experimental findings that lung clocks entrain to extreme zeitgeber cycles, whereas SCN clocks do not. We confirmed our theoretical predictions by showing that pharmacological inhibition of coupling in the SCN leads to larger ranges of entrainment. These differences between master and the peripheral clocks suggest that coupling-induced rigidity in the SCN filters environmental noise to create a robust circadian system.",
author = "Ute Abraham and Granada, {Adri{\'a}n E} and Westermark, {P{\aa}l O} and Markus Heine and Achim Kramer and Hanspeter Herzel",
year = "2010",
language = "Deutsch",
volume = "6",
pages = "438",

}

RIS

TY - JOUR

T1 - Coupling governs entrainment range of circadian clocks.

AU - Abraham, Ute

AU - Granada, Adrián E

AU - Westermark, Pål O

AU - Heine, Markus

AU - Kramer, Achim

AU - Herzel, Hanspeter

PY - 2010

Y1 - 2010

N2 - Circadian clocks are endogenous oscillators driving daily rhythms in physiology and behavior. Synchronization of these timers to environmental light-dark cycles ('entrainment') is crucial for an organism's fitness. Little is known about which oscillator qualities determine entrainment, i.e., entrainment range, phase and amplitude. In a systematic theoretical and experimental study, we uncovered these qualities for circadian oscillators in the suprachiasmatic nucleus (SCN-the master clock in mammals) and the lung (a peripheral clock): (i) the ratio between stimulus (zeitgeber) strength and oscillator amplitude and (ii) the rigidity of the oscillatory system (relaxation rate upon perturbation) determine entrainment properties. Coupling among oscillators affects both qualities resulting in increased amplitude and rigidity. These principles explain our experimental findings that lung clocks entrain to extreme zeitgeber cycles, whereas SCN clocks do not. We confirmed our theoretical predictions by showing that pharmacological inhibition of coupling in the SCN leads to larger ranges of entrainment. These differences between master and the peripheral clocks suggest that coupling-induced rigidity in the SCN filters environmental noise to create a robust circadian system.

AB - Circadian clocks are endogenous oscillators driving daily rhythms in physiology and behavior. Synchronization of these timers to environmental light-dark cycles ('entrainment') is crucial for an organism's fitness. Little is known about which oscillator qualities determine entrainment, i.e., entrainment range, phase and amplitude. In a systematic theoretical and experimental study, we uncovered these qualities for circadian oscillators in the suprachiasmatic nucleus (SCN-the master clock in mammals) and the lung (a peripheral clock): (i) the ratio between stimulus (zeitgeber) strength and oscillator amplitude and (ii) the rigidity of the oscillatory system (relaxation rate upon perturbation) determine entrainment properties. Coupling among oscillators affects both qualities resulting in increased amplitude and rigidity. These principles explain our experimental findings that lung clocks entrain to extreme zeitgeber cycles, whereas SCN clocks do not. We confirmed our theoretical predictions by showing that pharmacological inhibition of coupling in the SCN leads to larger ranges of entrainment. These differences between master and the peripheral clocks suggest that coupling-induced rigidity in the SCN filters environmental noise to create a robust circadian system.

M3 - SCORING: Zeitschriftenaufsatz

VL - 6

SP - 438

ER -