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Neuroscience|February 11, 2016
In synch but not in step: Circadian clock circuits regulating plasticity in daily rhythmsJ A Evans, M R GormanAmerican Journal of Physiology. Regulatory, Integrative and Comparative Physiology|December 3, 2003
Photoperiod differentially modulates photic and nonphotic phase response curves of hamstersJ A Evans, J A Elliott, M R GormanNeuroscience|December 14, 2011
Dim nighttime illumination alters photoperiodic responses of hamsters through the intergeniculate leaflet and other photic pathwaysJ A Evans, S N Carter, D A Freeman, et al.Journal of Comparative Physiology. A, Sensory, Neural, and Behavioral Physiology|January 22, 2002
Exotic photoperiods induce and entrain split circadian activity rhythms in hamstersM R GormanAmerican Journal of Physiology. Regulatory, Integrative and Comparative Physiology|October 20, 2001
A plastic interval timer synchronizes pubertal development of summer- and fall-born hamstersM R GormanJournal of Neuroendocrinology|November 19, 2003
Melatonin implants disrupt developmental synchrony regulated by flexible interval timersM R GormanBiology of Reproduction|July 1, 1995
Seasonal adaptations of Siberian hamsters. I. Accelerated gonadal and somatic development in increasing versus static long day lengthsM R GormanBiology of Reproduction|July 1, 1995
Seasonal adaptations of Siberian hamsters. II. Pattern of change in daylength controls annual testicular and body weight rhythmsM R Gorman, I ZuckerThe American Journal of Physiology|October 1, 1995
Testicular regression and recrudescence without subsequent photorefractoriness in Siberian hamstersM R Gorman, I ZuckerBiology of Reproduction|March 1, 1997
Pattern of change in melatonin duration determines testicular responses in Siberian hamsters, Phodopus sungorusM R Gorman, I ZuckerPageof 19