Posttranscriptional regulation of mammalian circadian clock output

被引:30
|
作者
Garbarino-Pico, E. [1 ]
Green, C. B. [1 ]
机构
[1] Univ Virginia, Dept Biol, Charlottesville, VA 22904 USA
关键词
D O I
10.1101/sqb.2007.72.022
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Circadian clocks are present in many different cell types/tissues and control many aspects of physiology. This broad control is exerted, at least in part, by the circadian regulation of many genes, resulting in rhythmic expression patterns of 5-10% of the mRNAs in a given tissue. Although transcriptional regulation is certainly involved in this process, it is becoming clear that posttranscriptional mechanisms also have important roles in producing the appropriate rhythmic expression profiles. In this chapter, we review the available data about posttranscriptional regulation of circadian gene expression and highlight the potential role of Nocturnin (Noc) in Such processes. NOC is a deadenylase-a ribonuclease that specifically removes poly(A) tails from mRNAs-that is expressed widely in the mouse with high-amplitude rhythmicity. Deadenylation affects the stability and translational properties of mRNAs. Mice lacking the Noc gene have metabolic defects including a resistance to diet-induced obesity, decreased fat storage, changes in lipid-related gene expression profiles in the liver, and altered glucose and insulin sensitivities. These findings suggest that NOC has a pivotal role downstream from the circadian clockwork in the posttranscriptional regulation genes involved in the circadian control of metabolism.
引用
收藏
页码:145 / 156
页数:12
相关论文
共 50 条
  • [1] Posttranscriptional Regulation of Mammalian Circadian Clock Output
    Garbarino-Pico, E.
    Green, C. B.
    CLOCKS AND RHYTHMS, 2007, 72 : 145 - 156
  • [2] Regulation of the mammalian circadian clock by cryptochrome
    Sancar, A
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2004, 279 (33) : 34079 - 34082
  • [3] Light and the regulation of mammalian circadian clock genes
    Hastings, MH
    King, VM
    Maywood, ES
    BIOLOGIC EFFECTS OF LIGHT 2001, 2002, : 411 - 425
  • [4] Involvement of posttranscriptional regulation of Clock in the emergence of circadian clock oscillation during mouse development
    Umemura, Yasuhiro
    Koike, Nobuya
    Ohashi, Munehiro
    Tsuchiya, Yoshiki
    Meng, Qing Jun
    Minami, Yoichi
    Hara, Masayuki
    Hisatomi, Moe
    Yagita, Kazuhiro
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2017, 114 (36) : E7479 - E7488
  • [5] Regulation of output from the plant circadian clock
    Yakir, Esther
    Hilman, Dror
    Harir, Yael
    Green, Rachel M.
    FEBS JOURNAL, 2007, 274 (02) : 335 - 345
  • [6] Invited review: Regulation of mammalian circadian clock genes
    Albrecht, U
    JOURNAL OF APPLIED PHYSIOLOGY, 2002, 92 (03) : 1348 - 1355
  • [7] Regulation of circadian clock transcriptional output by CLOCK: BMAL1
    Trott, Alexandra J.
    Menet, Jerome S.
    PLOS GENETICS, 2018, 14 (01):
  • [8] The mammalian circadian clock
    Albrecht, U
    Eichele, G
    CURRENT OPINION IN GENETICS & DEVELOPMENT, 2003, 13 (03) : 271 - 277
  • [9] MODELING TRANSCRIPTIONAL CO-REGULATION OF MAMMALIAN CIRCADIAN CLOCK
    Wang, Yanqin
    Ni, Xin
    Yan, Jie
    Yang, Ling
    MATHEMATICAL BIOSCIENCES AND ENGINEERING, 2017, 14 (5-6) : 1447 - 1462
  • [10] The Mammalian Circadian Clock Protein Period Counteracts Cryptochrome in Phosphorylation Dynamics of Circadian Locomotor Output Cycles Kaput (CLOCK)
    Matsumura, Ritsuko
    Tsuchiya, Yoshiki
    Tokuda, Isao
    Matsuo, Takahiro
    Sato, Miho
    Node, Koichi
    Nishida, Eisuke
    Akashi, Makoto
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2014, 289 (46) : 32064 - 32072