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      KCI등재 SCOPUS SCIE

      Entrainment of the Arabidopsis Circadian Clock

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      https://www.riss.kr/link?id=A104510183

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      다국어 초록 (Multilingual Abstract)

      The rising and setting of the sun marks a transition between starkly contrasting environmental conditions for vegetative life. Given these differing diurnal and nocturnal environmental factors and the inherent regularity of the transition between ...

      The rising and setting of the sun marks a

      transition between starkly contrasting environmental conditions

      for vegetative life. Given these differing diurnal and

      nocturnal environmental factors and the inherent regularity

      of the transition between the two, it is perhaps unsurprising

      that plants have developed an internal timing mechanism

      (known as a circadian clock) to allow modulation of gene

      expression and metabolism in response to external cues.

      Entrainment of the circadian clock, primarily via the

      detection of changes in light and temperature, maintains

      synchronization between the surrounding environment and

      the endogenous clock mechanism. In this review, recent

      advances in our understanding of the molecular workings of

      the plant circadian clock are discussed as are the input

      pathways necessary for entrainment of the clock machinery

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      참고문헌 (Reference)

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      2 Somers DE, "ZEITLUPE encodes a novel clock-associated PAS protein from Arabidopsis" 101 (101): 319-329, 2000

      3 Martin-Tryon EL, "XAP5 CIRCADIAN TIME-KEEPER coordinates light signals for proper timing of photo-morphogenesis and the circadian clock in Arabidopsis" 20 : 1244-1259, 2008

      4 Salome PA, "What makes the Arabidopsis clock tick on time? A review on entrainment" 28 (28): 21-38, 2005

      5 Michael TP, "Two Arabidopsis circadian oscillators can be distinguished by differential temperature sensitivity" 100 (100): 6878-6883, 2003

      6 Brunner M, "Transcriptional and post-transcriptional regulation of the circadian clock of cyanobacteria and Neurospora" 20 (20): 1061-1074, 2006

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      8 Somers DE, "The short-period mutant, toc1-1, alters circadian clock regulation of multiple outputs throughout development in Arabidopsis thaliana" 125 (125): 485-494, 1998

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      89 Ni Z, "Altered circadian rhythms regulate growth vigour in hybrids and allopolyploids" 457 (457): 327-331, 2009

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      95 Michael TP, "A morning-specific phytohormone gene expression program underlying rhythmic plant growth" 6 (6): e225-, 2008

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      97 Pruneda-Paz JL, "A functional genomics approach reveals CHE as a component of the Arabidopsis circadian clock" 323 (323): 1481-1485, 2009

      98 Dunlap JC, "A circadian clock in Neurospora: how genes and proteins cooperate to produce a sustained, entrainable, and compensated biological oscillator with a period of about a day" 72 : 57-68, 2007

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