Circadian rhythms are oscillations of behavior and physiology with a period of approximately 24 hours that are generated by an endogenous biological timing mechanism, that is, a biological clock. In mammals the master circadian clock is located within the suprachiasmatic nucleus of the hypothalamus (SCN). The SCN is composed of thousands of single cell circadian oscillators (neurons) that together produce a rhythmic output that sets the time for a diversity of rhythms like hormonal release cycles, sleep and wakefulness, and body temperature rhythms. We have recently shown that the SCN of rats exposed to artificially short days (22 h) can be dissociated into two subregions, the SCN core and shell, that oscillate independently and that are associated with two rhythms of locomotor activity, one with a period of 22 hours and the other with the rat endogenous period of 24.9 hours.
Specific Aim A.1 proposes experiments to determine whether this animal model presents features of human forced desynchronization and may therefore represent a good animal model for human internal desynchronization. Experiments in Specific Aim A.2 exploit the rat forced desynchronization model to identify output pathways by which the SCN regulates endocrine rhythms that are likely to rely differentially on the circadian activity of the SCN core or that of the SCN shell.
For Specific Aim A.3 we propose to develop an in vitro model of the forced desynchronized rat SCN to study the coupling mechanisms between the SCN core and shell. The experiments proposed in this application will unmask specific output pathways by which the master circadian oscillator of mammals times specific rhythmic outputs. Furthermore, the experiments will establish the foundations for the potential use of the forced desynchronized rat model to study the neural bases of human internal synchronization and intercellular coupling in the SCN. ? ? ?

Agency
National Institute of Health (NIH)
Institute
National Institute of Mental Health (NIMH)
Type
Research Project (R01)
Project #
1R01MH075016-01A1
Application #
7096930
Study Section
Biological Rhythms and Sleep Study Section (BRS)
Program Officer
Vicentic, Aleksandra
Project Start
2006-04-01
Project End
2010-03-31
Budget Start
2006-04-01
Budget End
2007-03-31
Support Year
1
Fiscal Year
2006
Total Cost
$298,449
Indirect Cost
Name
University of Washington
Department
Biology
Type
Schools of Arts and Sciences
DUNS #
605799469
City
Seattle
State
WA
Country
United States
Zip Code
98195
Ben-Hamo, Miriam; Larson, Tracy A; Duge, Leanne S et al. (2016) Circadian Forced Desynchrony of the Master Clock Leads to Phenotypic Manifestation of Depression in Rats. eNeuro 3:
Smarr, Benjamin L; Schwartz, Michael D; Wotus, Cheryl et al. (2013) Re-examining ""temporal niche"". Integr Comp Biol 53:165-74
Wotus, Cheryl; Lilley, Travis R; Neal, Adam S et al. (2013) Forced desynchrony reveals independent contributions of suprachiasmatic oscillators to the daily plasma corticosterone rhythm in male rats. PLoS One 8:e68793
Smarr, B L; Gile, J J; de la Iglesia, H O (2013) Oestrogen-independent circadian clock gene expression in the anteroventral periventricular nucleus in female rats: possible role as an integrator for circadian and ovarian signals timing the luteinising hormone surge. J Neuroendocrinol 25:1273-1279
Smarr, Benjamin L; Morris, Emma; de la Iglesia, Horacio O (2012) The dorsomedial suprachiasmatic nucleus times circadian expression of Kiss1 and the luteinizing hormone surge. Endocrinology 153:2839-50
Lilley, Travis R; Wotus, Cheryl; Taylor, Daniel et al. (2012) Circadian regulation of cortisol release in behaviorally split golden hamsters. Endocrinology 153:732-8
Han, Sung; Yu, Frank H; Schwartz, Michael D et al. (2012) Na(V)1.1 channels are critical for intercellular communication in the suprachiasmatic nucleus and for normal circadian rhythms. Proc Natl Acad Sci U S A 109:E368-77
Han, Sung; Tai, Chao; Westenbroek, Ruth E et al. (2012) Autistic-like behaviour in Scn1a+/- mice and rescue by enhanced GABA-mediated neurotransmission. Nature 489:385-90
Plano, Santiago A; Agostino, Patricia V; de la Iglesia, Horacio O et al. (2012) cGMP-phosphodiesterase inhibition enhances photic responses and synchronization of the biological circadian clock in rodents. PLoS One 7:e37121
Schwartz, William J; Tavakoli-Nezhad, Mahboubeh; Lambert, Christopher M et al. (2011) Distinct patterns of Period gene expression in the suprachiasmatic nucleus underlie circadian clock photoentrainment by advances or delays. Proc Natl Acad Sci U S A 108:17219-24

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