Neurons and networks in daily rhythms
Author:
Publisher
Springer Science and Business Media LLC
Subject
General Neuroscience
Link
http://www.nature.com/articles/nrn2215.pdf
Reference150 articles.
1. Dunlap, J. C. Molecular bases for circadian clocks. Cell 96, 271–290 (1999). A wonderful review of the extensive evidence for an intracellular mechanism for circadian rhythm generation that highlights the molecular differences and similarities across species. Although the list of molecular players has grown since this paper was published, it provides an excellent introduction to many of the key concepts in the field of chronobiology.
2. Hardin, P. E. Essential and expendable features of the circadian timekeeping mechanism. Curr. Opin. Neurobiol. 16, 686–692 (2006).
3. Debruyne, J. P., Weaver, D. R. & Reppert, S. M. CLOCK and NPAS2 have overlapping roles in the suprachiasmatic circadian clock. Nature Neurosci. 10, 543–545 (2007).
4. Hardin, P. E., Hall, J. C. & Rosbash, M. Feedback of the Drosophila period gene product on circadian cycling of its messenger RNA levels. Nature 343, 536–540 (1990). This paper was the first to show that a clock protein suppresses it own transcription, establishing the transcription–translation negative- feedback model for cell-autonomous circadian rhythm generation.
5. Constance, C. M., Green, C. B., Tei, H. & Block, G. D. Bulla gouldiana period exhibits unique regulation at the mRNA and protein levels. J. Biol. Rhythms 17, 413–427 (2002).
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