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Physiology & Behavior|October 1, 1997
Lengthening of circadian period in hamsters by novelty-induced wheel runningD Weisgerber, U Redlin, N MrosovskyJournal of Comparative Physiology. A, Sensory, Neural, and Behavioral Physiology|June 23, 1999
Enhanced masking response to light in hamsters with IGL lesionsU Redlin, N Vrang, N MrosovskyNeuroscience|December 11, 2007
The effects of photic and nonphotic stimuli in the 5-HT7 receptor knockout mouseM Gardani, S M BielloJournal of Comparative Physiology. A, Neuroethology, Sensory, Neural, and Behavioral Physiology|November 24, 2004
The circadian Clock mutant mouse: impaired masking response to lightUwe Redlin, Samer Hattar, N MrosovskyPhysiology & Behavior|January 1, 1994
Phase angle changes of photically entrained circadian rhythms following a single nonphotic stimulusD Janik, M Godfrey, N MrosovskyChronobiology International|April 1, 1994
Rubidium chloride fuses split circadian activity rhythms in hamsters housed in bright constant lightJ Hallonquist, M Lindegger, N MrosovskyNeuroscience|May 29, 2003
Attenuation of circadian light induced phase advances and delays by neuropeptide Y and a neuropeptide Y Y1/Y5 receptor agonistG S Lall, S M BielloBrain Research|November 25, 1996
Persistence of nonphotic phase shifts in hamsters after serotonin depletion in the suprachiasmatic nucleusK J Bobrzynska, N Vrang, N MrosovskyBrain Research|November 6, 1995
Cellular colocalization of Fos and neuropeptide Y in the intergeniculate leaflet after nonphotic phase-shifting eventsD Janik, J D Mikkelsen, N MrosovskyNeuroscience Letters|May 18, 2001
WAY-100635, a specific 5-HT1A antagonist, can increase the responsiveness of the mammalian circadian pacemaker to photic stimuliC M Smart, S M BielloPageof 12