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No correlation was found between CSF hypocretin-1 and corticosterone.Hypocretin-1 release is under SCN control.
The SCN control circadian rhythms in molecular, endocrine and physiological functions, as well as in behavior [5].
The pituitary gland is a tempting candidate to convey at least part of the SCN control to peripheral clocks.
To further investigate SCN control of the autonomic nervous system we focused in the present study on the daily rhythm in plasma glucose concentrations.
To further investigate SCN control of autonomic nervous activity we focused in the present study on the daily rhythm in plasma glucose concentrations, especially in view of the recently demonstrated rhythmic control of glucose metabolism in the liver [12] [15] and the clear involvement of the sympathetic and parasympathetic input to the liver in glucose metabolism.
This biphasic pattern, which is similar to that previously reported [38], is thought to be due to maintenance of the SCN control of adrenal output in the normal light-dark cycle combined with the additional reverse phase peak due to RF.
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The biological clock, located in the hypothalamic suprachiasmatic nucleus (SCN), controls the daily rhythms in physiology and behavior.
SCN neurons control clock genes throughout the body by controlling two major communication channels, the endocrine system and the autonomic nervous system (ANS).
They are dimerization partners of central importance to the function of the circadian clock, although NPAS2, another bHLH-PAS protein, can substitute for CLOCK as partner for BMAL1 in neurons of the suprachiasmatic nucleus (SCN) that control locomotor activity rhythms [ 4, 5].
In this study, we characterized the role of oxytocin (OT) in this system and the involvement of vasoactive intestinal polypeptide (VIP) from the suprachiasmatic nucleus (SCN) in controlling OT and PRL secretion of CS rats.
Stereological quantification of these parameters revealed no differences between hCNS-SCns and control groups.
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