Reduced Plasticity in Coupling Strength in the Aging SCN Clock as Revealed by Kuramoto Modeling.
暂无分享,去创建一个
J. Meijer | S. Michel | J. Rohling | Anneke H. O. Olde Engberink | J. Meylahn | S. Achterhof | Anouk W. van Beurden | Renate Buijink
[1] J. Mendes,et al. Generation and Disruption of Circadian Rhythms in the Suprachiasmatic Nucleus: A Core-Shell Model , 2022, Journal of biological rhythms.
[2] J. Meylahn,et al. Two-community noisy Kuramoto model with general interaction strengths. II. , 2021, Chaos.
[3] A. Kramer,et al. Coupled network of the circadian clocks: a driving force of rhythmic physiology , 2020, FEBS letters.
[4] S Achterhof,et al. Two-community noisy Kuramoto model with general interaction strengths. I. , 2020, Chaos.
[5] J. Meijer,et al. Aging Affects the Capacity of Photoperiodic Adaptation Downstream from the Central Molecular Clock , 2020, Journal of biological rhythms.
[6] J. Rohling,et al. Two-Community Noisy Kuramoto Model Suggests Mechanism for Splitting in the Suprachiasmatic Nucleus , 2020, Journal of biological rhythms.
[7] Daniel B. Forger,et al. Seasonality and light phase-resetting in the mammalian circadian rhythm , 2019, Scientific Reports.
[8] Diego Garlaschelli,et al. Uncovering functional signature in neural systems via random matrix theory , 2017, PLoS Comput. Biol..
[9] J. Levine,et al. A Symphony of Signals: Intercellular and Intracellular Signaling Mechanisms Underlying Circadian Timekeeping in Mice and Flies , 2019, International journal of molecular sciences.
[10] E. Maywood,et al. The Mammalian Circadian Timing System and the Suprachiasmatic Nucleus as Its Pacemaker , 2019, Biology.
[11] Huijie Yang,et al. Heterogeneity of neuronal properties determines the collective behavior of the neurons in the suprachiasmatic nucleus. , 2019, Mathematical biosciences and engineering : MBE.
[12] J. Meylahn. Two-community noisy Kuramoto model , 2018, Nonlinearity.
[13] E. Maywood. Synchronization and maintenance of circadian timing in the mammalian clockwork , 2018, The European journal of neuroscience.
[14] Jihwan Myung,et al. Encoding seasonal information in a two‐oscillator model of the multi‐oscillator circadian clock , 2018, The European journal of neuroscience.
[15] E. Maywood,et al. Generation of circadian rhythms in the suprachiasmatic nucleus , 2018, Nature Reviews Neuroscience.
[16] Michael C. Tackenberg,et al. Photoperiodic Programming of the SCN and Its Role in Photoperiodic Output , 2018, Neural plasticity.
[17] Huijie Yang,et al. Differences in intrinsic amplitudes of neuronal oscillators improve synchronization in the suprachiasmatic nucleus. , 2017, Chaos.
[18] F. Hollander,et al. Synchronization of Phase Oscillators on the Hierarchical Lattice , 2017, Journal of Statistical Physics.
[19] Stephanie R. Taylor,et al. Resynchronization Dynamics Reveal that the Ventral Entrains the Dorsal Suprachiasmatic Nucleus , 2017, Journal of biological rhythms.
[20] Diego Garlaschelli,et al. Evidence for Weakened Intercellular Coupling in the Mammalian Circadian Clock under Long Photoperiod , 2016, PloS one.
[21] R. Buijs,et al. The Circadian System: A Regulatory Feedback Network of Periphery and Brain. , 2016, Physiology.
[22] Erik De Schutter,et al. GABA-mediated repulsive coupling between circadian clock neurons in the SCN encodes seasonal time , 2015, Proceedings of the National Academy of Sciences.
[23] A. Davidson,et al. Dynamic Interactions Mediated by Nonredundant Signaling Mechanisms Couple Circadian Clock Neurons , 2013, Neuron.
[24] Eliana L Zimmerman,et al. Voluntary exercise can strengthen the circadian system in aged mice , 2013, AGE.
[25] Nicholas C. Foley,et al. Characterization of orderly spatiotemporal patterns of clock gene activation in mammalian suprachiasmatic nucleus , 2011, The European journal of neuroscience.
[26] John C. Axley,et al. Perinatal photoperiod imprints the circadian clock , 2010, Nature Neuroscience.
[27] David K Welsh,et al. Suprachiasmatic nucleus: cell autonomy and network properties. , 2010, Annual review of physiology.
[28] S. Strogatz,et al. Stability diagram for the forced Kuramoto model. , 2008, Chaos.
[29] K. Kristensson,et al. Decline of the Presynaptic Network, Including GABAergic Terminals, in the Aging Suprachiasmatic Nucleus of the Mouse , 2008, Journal of biological rhythms.
[30] M. Vansteensel,et al. Seasonal Encoding by the Circadian Pacemaker of the SCN , 2007, Current Biology.
[31] Yoshiyuki Sakaki,et al. Temporal Precision in the Mammalian Circadian System: A Reliable Clock from Less Reliable Neurons , 2004, Journal of biological rhythms.
[32] S. Leibler,et al. Biological rhythms: Circadian clocks limited by noise , 2000, Nature.
[33] M. Hastings,et al. Regulating the Suprachiasmatic Nucleus (SCN) Circadian Clockwork: Interplay between Cell-Autonomous and Circuit-Level Mechanisms. , 2017, Cold Spring Harbor perspectives in biology.
[34] D. Welsh,et al. Exploring spatiotemporal organization of SCN circuits. , 2007, Cold Spring Harbor symposia on quantitative biology.