Interval Timing Is Intact in Arrhythmic Cry1/Cry2-Deficient Mice

被引:15
|
作者
Papachristos, Efstathios B. [1 ]
Jacobs, Edwin H. [2 ]
Elgersma, Ype [1 ]
机构
[1] Erasmus Univ, Med Ctr, Dept Neurosci, NL-3015 GE Rotterdam, Netherlands
[2] Erasmus Univ, Med Ctr, Dept Genet, NL-3015 GE Rotterdam, Netherlands
关键词
interval timing; circadian timing; Cry1; Cry2; cryptochromes; circadian rhythmicity; scalar variability; mutant mice; FOOD-ANTICIPATORY ACTIVITY; TIME PERCEPTION; TEMPORAL INTERVALS; SUPRACHIASMATIC NUCLEUS; CIRCADIAN VARIATIONS; COURTSHIP SONG; INTERNAL CLOCK; WEBERS LAW; TEMPERATURE; BEHAVIOR;
D O I
10.1177/0748730411410026
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Localizing the self in time is fundamental for daily life functioning and is lacking in severe disabling neuropsychiatric disorders like schizophrenia. Brains keep track of time across an impressive range of scales. Great progress has been made in identifying the molecular machinery of the circadian clock, the brain's master clock that operates on the 24-hour scale and allows animals to know the "time of the day" that important events occur, without referring to external cues. However, the biology of interval timing, the mechanism responsible for durations in the seconds-to-minutes-to-hours range, remains a mystery, and an obvious question is whether there is a common biological solution for keeping track of time across these 2 time scales. To address this, we trained Cry1/Cry2 double knockout mice on an interval timing task with durations that ranged between 3 and 27 seconds. The mice were kept under constant light conditions to avoid any exogenously induced form of daily rhythmicity. We observed that the homozygous knockouts displayed as accurate and precise a temporal memory as the control mice. This suggests that the Cry1 and Cry2 genes are not an important component of the interval timer. Furthermore, proper calibration of the interval timer does not depend on a functional circadian clock. Thus, these 2 timing systems likely rely on different and independent biological mechanisms.
引用
收藏
页码:305 / 313
页数:9
相关论文
共 50 条
  • [21] A putative flavin electron transport pathway is differentially utilized in Xenopus CRY1 and CRY2
    Zhu, HS
    Green, CB
    CURRENT BIOLOGY, 2001, 11 (24) : 1945 - 1949
  • [22] CRY1 and CRY2 genetic variants in seasonality: A longitudinal and cross-sectional study
    Kovanen, Leena
    Donner, Kati
    Kaunisto, Mari
    Partonen, Timo
    PSYCHIATRY RESEARCH, 2016, 242 : 101 - 110
  • [23] Cloning and circadian expression of rat Cry1
    Park, K
    Kang, HM
    MOLECULES AND CELLS, 2004, 18 (02) : 256 - 260
  • [24] Autophagic Degradation of CRY1 and Control of Gluconeogenesis
    Soler, Miriam Toledo
    Singh, Rajat
    DIABETES, 2019, 68
  • [25] Unusual circadian locomotor activity and pathophysiology in mutant CRY1 transgenic mice
    Okano, Satoshi
    Akashi, Makoto
    Hayasaka, Kiyoshi
    Nakajima, Osamu
    NEUROSCIENCE LETTERS, 2009, 451 (03) : 246 - 251
  • [26] Circadian repressors CRY1 and CRY2 broadly interact with nuclear receptors and modulate transcriptional activity
    Kriebs, Anna
    Jordan, Sabine D.
    Soto, Erin
    Henriksson, Emma
    Sandate, Colby R.
    Vaughan, Megan E.
    Chan, Alanna B.
    Duglan, Drew
    Papp, Stephanie J.
    Huber, Anne-Laure
    Afetian, Megan E.
    Yu, Ruth T.
    Zhao, Xuan
    Downes, Michael
    Evans, Ronald M.
    Lamia, Katja A.
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2017, 114 (33) : 8776 - 8781
  • [27] UNUSUAL CIRCADIAN BEHAVIOR AND DIABETES MELLITUS IN MUTANT CRY1 TRANSGENIC MICE
    Okano, Satoshi
    Hayasaka, Kiyoshi
    Igarashi, Masahiko
    Iwai, Harue
    Nakajima, Osamu
    JOURNAL OF PHYSIOLOGICAL SCIENCES, 2009, 59 : 534 - 534
  • [28] Cryptochrome photoreceptors cry1 and cry2 antagonistically regulate primary root elongation in Arabidopsis thaliana
    Canamero, Roberto C.
    Bakrim, Nadia
    Bouly, Jean-Pierre
    Garay, Alvaro
    Dudkin, Elizabeth E.
    Habricot, Yvette
    Ahmad, Margaret
    PLANTA, 2006, 224 (05) : 995 - 1003
  • [29] Cryptochrome photoreceptors cry1 and cry2 antagonistically regulate primary root elongation in Arabidopsis thaliana
    Roberto C. Canamero
    Nadia Bakrim
    Jean-Pierre Bouly
    Alvaro Garay
    Elizabeth E. Dudkin
    Yvette Habricot
    Margaret Ahmad
    Planta, 2006, 224 : 995 - 1003
  • [30] Altered Phase-Relationship between Peripheral Oscillators and Environmental Time in Cry1 or Cry2 Deficient Mouse Models for Early and Late Chronotypes
    Destici, Eugin
    Jacobs, Edwin H.
    Tamanini, Filippo
    Loos, Maarten
    van der Horst, Gijsbertus T. J.
    Oklejewicz, Malgorzata
    PLOS ONE, 2013, 8 (12):