Quantitative Analysis of Phase Wave of Gene Expression in the Mammalian Central Circadian Clock Network

被引:20
|
作者
Fukuda, Hirokazu [1 ,2 ]
Tokuda, Isao [3 ]
Hashimoto, Seiichi [4 ]
Hayasaka, Naoto [5 ]
机构
[1] Osaka Prefecture Univ, Grad Sch Life & Environm Sci, Dept Appl Life Sci, Sakai, Osaka 591, Japan
[2] Japan Sci & Technol Agcy JST, PRESTO, Kawaguchi, Saitama, Japan
[3] Ritsumeikan Univ, Dept Micro Syst Technol, Shiga, Japan
[4] Astellas Pharma Inc, Drug Discovery Res, Mol Med Res Labs, Tsukuba, Ibaraki, Japan
[5] Kinki Univ, Sch Med, Dept Anat & Neurobiol, Osaka 589, Japan
来源
PLOS ONE | 2011年 / 6卷 / 08期
基金
日本学术振兴会;
关键词
SUPRACHIASMATIC NUCLEUS; RAT; CELLS; RHYTHMICITY; NEURONS; SYNCHRONIZATION; OSCILLATOR; SYSTEM;
D O I
10.1371/journal.pone.0023568
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background: The suprachiasmatic nucleus (SCN), the master circadian clock, is a heterogeneous oscillator network, yet displays a robust synchronization dynamics. Recent single-cell bioluminescent imaging revealed temporal gradients in circadian clock gene expression in the SCN ex vivo. However, due to technical difficulty in biological approaches to elucidate the entire network structure of the SCN, characteristics of the gradient, which we refer to as phase wave, remain unknown. Methodology/Principal Findings: We implemented new approaches, i.e., quantitative analysis and model simulation to characterize the phase waves in Per2::Luciferase clock reporter gene expression of the rat SCN slice. Our quantitative study demonstrated not only a high degree of synchronization between the neurons and regular occurrence of the phase wave propagation, but also a significant amount of phase fluctuations contained in the wave. In addition, our simulations based on local coupling model suggest that the intercellular coupling strength estimated by the model simulations is significantly higher than the critical value for generating the phase waves. Model simulations also suggest that heterogeneity of the SCN neurons is one of the main factors causing the phase wave fluctuations. Furthermore, robustness of the SCN network against dynamical noise and variation of the natural frequencies inherent in these neurons was quantitatively assessed. Conclusions/Significance: To our knowledge, this is the first quantitative evaluation of the phase wave and further characterization of the SCN neuronal network features generating the wave i.e., intercellular synchrony, phase fluctuation, strong local coupling, heterogeneous periodicity and robustness. Our present study provides an approach, which will lead to a comprehensive understanding of mechanistic and/or biological significance of the phase wave in the central circadian oscillatory system.
引用
收藏
页数:8
相关论文
共 50 条
  • [41] Growth Hormone Pulses and Liver Gene Expression Are Differentially Regulated by the Circadian Clock Gene Bmal1
    Schoeller, Erica L.
    Tonsfeldt, Karen J.
    Sinkovich, McKenna
    Shi, Rujing
    Mellon, Pamela L.
    ENDOCRINOLOGY, 2021, 162 (04)
  • [42] Circadian Clock Gene Expression in Brain Regions of Alzheimer's Disease Patients and Control Subjects
    Cermakian, Nicolas
    Lamont, Elaine Waddington
    Boudreau, Philippe
    Boivin, Diane B.
    JOURNAL OF BIOLOGICAL RHYTHMS, 2011, 26 (02) : 160 - 170
  • [43] BMAL1 regulates transcription initiation and activates circadian clock gene expression in mammals
    Xiong, Wei
    Li, Jia
    Zhang, Erquan
    Huang, Huanwei
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2016, 473 (04) : 1019 - 1025
  • [44] In Vivo Monitoring of Circadian Clock Gene Expression in the Mouse Suprachiasmatic Nucleus Using Fluorescence Reporters
    Mei, Long
    Zhan, Cheng
    Zhang, Eric Erquan
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2018, (137):
  • [45] Circadian Clock Gene Expression in the Coral Favia fragum over Diel and Lunar Reproductive Cycles
    Hoadley, Kenneth D.
    Szmant, Alina M.
    Pyott, Sonja J.
    PLOS ONE, 2011, 6 (05):
  • [46] Orexin as an input of circadian system in goldfish: Effects on clock gene expression and locomotor activity rhythms
    Nisembaum, Laura G.
    de Pedro, Nuria
    Delgado, Maria J.
    Sanchez-Bretano, Aida
    Isorna, Esther
    PEPTIDES, 2014, 52 : 29 - 37
  • [47] Two Antagonistic Clock-Regulated Histidine Kinases Time the Activation of Circadian Gene Expression
    Gutu, Andrian
    O'Shea, Erin K.
    MOLECULAR CELL, 2013, 50 (02) : 288 - 294
  • [48] Circadian transcriptional regulation by the posttranslational oscillator without de novo clock gene expression in Synechococcus
    Hosokawa, Norimune
    Hatakeyama, Tetsuhiro S.
    Kojima, Takashi
    Kikuchi, Yoshiyuki
    Ito, Hiroshi
    Iwasaki, Hideo
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2011, 108 (37) : 15396 - 15401
  • [49] Entrainment of eclosion and preliminary ontogeny of circadian clock gene expression in the flesh fly, Sarcophaga crassipalpis
    Short, Clancy A.
    Meuti, Megan E.
    Zhang, Qirui
    Denlinger, David L.
    JOURNAL OF INSECT PHYSIOLOGY, 2016, 93-94 : 28 - 35
  • [50] Circadian oscillation of TNF-α gene expression regulated by clock gene, BMAL1 and CLOCK1, in the Japanese medaka (Oryzias latipes)
    Onoue, Teika
    Nishi, Goshi
    Hikima, Jun-ichi
    Sakai, Masahiro
    Kono, Tomoya
    INTERNATIONAL IMMUNOPHARMACOLOGY, 2019, 70 : 362 - 371