Retinal circadian clocks and control of retinal physiology

被引:110
|
作者
Green, CB
Besharse, JC
机构
[1] Univ Virginia, Dept Biol, Charlottesville, VA 22904 USA
[2] Med Coll Wisconsin, Dept Cell Biol Neurobiol & Anat, Milwaukee, WI 53226 USA
关键词
circadian clocks; retinal physiology; gene expression; SCN; retinal clock;
D O I
10.1177/0748730404263002
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Retinas of all classes of vertebrates contain endogenous circadian clocks that control many aspects of retinal physiology, including retinal sensitivity to light, neurohormone synthesis, and cellular events such as rod disk shedding, intracellular signaling pathways, and gene expression. The vertebrate retina is an example of a "peripheral" oscillator that is particularly amenable to study because this tissue is well characterized, the relationships between the various cell types are extensively studied, and many local clock-controlled rhythms are known. Although the existence of a photoreceptor clock is well established in several species, emerging data are consistent with multiple or dual oscillators within the retina that interact to control local physiology. A prominent example is the antiphasic regulation of melatonin and dopamine in photoreceptors and inner retina, respectively. This review focuses on the similarities and differences in the molecular mechanisms of the retinal versus the SCN oscillators, as well as on the expression of core components of the circadian clockwork in retina. Finally, the interactions between the retinal clock(s) and the master clock in the SCN are examined.
引用
收藏
页码:91 / 102
页数:12
相关论文
共 50 条
  • [1] Inner retinal circadian clocks and non-visual photoreceptors Novel players in the circadian system
    Guido, Mario E.
    Garbarino-Pico, Eduardo
    Ana Contin, Maria
    Valdez, Diego J.
    Nieto, Paula S.
    Verra, Daniela M.
    Acosta-Rodriguez, Victoria A.
    de Zavalia, Nuria
    Rosenstein, Ruth E.
    PROGRESS IN NEUROBIOLOGY, 2010, 92 (04) : 484 - 504
  • [2] Dopamine 2 Receptor Activation Entrains Circadian Clocks in Mouse Retinal Pigment Epithelium
    Baba, Kenkichi
    DeBruyne, Jason P.
    Tosini, Gianluca
    SCIENTIFIC REPORTS, 2017, 7
  • [3] Mutual influence of sleep and circadian clocks on physiology and cognition
    Heyde, Isabel
    Kiehn, Jana-Thabea
    Oster, Henrik
    FREE RADICAL BIOLOGY AND MEDICINE, 2018, 119 : 8 - 16
  • [4] Multi-Modal Regulation of Circadian Physiology by Interactive Features of Biological Clocks
    Lee, Yool
    Wisor, Jonathan P.
    BIOLOGY-BASEL, 2022, 11 (01):
  • [5] Clocks on top: The role of the circadian clock in the hypothalamic and pituitary regulation of endocrine physiology
    Tonsfeldt, Karen J.
    Chappell, Patrick E.
    MOLECULAR AND CELLULAR ENDOCRINOLOGY, 2012, 349 (01) : 3 - 12
  • [6] Ribonucleoprotein Complexes That Control Circadian Clocks
    Wang, Dongni
    Liang, Xiaodi
    Chen, Xianyun
    Guo, Jinhu
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2013, 14 (05): : 9018 - 9036
  • [7] Coupled network of the circadian clocks: a driving force of rhythmic physiology
    Finger, Anna-Marie
    Dibner, Charna
    Kramer, Achim
    FEBS LETTERS, 2020, 594 (17) : 2734 - 2769
  • [8] Adrenal Clocks and the Role of Adrenal Hormones in the Regulation of Circadian Physiology
    Leliavski, Alexei
    Dumbell, Rebecca
    Ott, Volker
    Oster, Henrik
    JOURNAL OF BIOLOGICAL RHYTHMS, 2015, 30 (01) : 20 - 34
  • [9] Human peripheral clocks: applications for studying circadian phenotypes in physiology and pathophysiology
    Saini, Camille
    Brown, Steven A.
    Dibner, Chama
    FRONTIERS IN NEUROLOGY, 2015, 6
  • [10] Epigenetic control of circadian clocks by environmental signals
    Liu, Xiao-Lan
    Duan, Zeyu
    Yu, Muqun
    Liu, Xiao
    TRENDS IN CELL BIOLOGY, 2024, 34 (12) : 992 - 1006