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Proceedings of the National Academy of Sciences of the United States of America|September 24, 2014
FBH1 affects warm temperature responses in the Arabidopsis circadian clockDawn H Nagel, Jose L Pruneda-Paz, Steve A Kay
Journal of Biological Rhythms|May 23, 2007
Beyond intuitive modeling: combining biophysical models with innovative experiments to move the circadian clock field forwardDaniel Forger, Didier Gonze, David Virshup, et al.
Methods in Molecular Biology (Clifton, N.J.)|December 7, 2020
Collection of Mouse Brain Slices for Bioluminescence Imaging of Circadian Clock NetworksJennifer A Evans, David K Welsh, Alec J Davidson
Cell|May 8, 2007
Intercellular coupling confers robustness against mutations in the SCN circadian clock networkAndrew C Liu, David K Welsh, Caroline H Ko, et al.
Neuroscience Letters|March 2, 2016
Lithium effects on circadian rhythms in fibroblasts and suprachiasmatic nucleus slices from Cry knockout miceTakako Noguchi, Kevin Lo, Tanja Diemer, et al.
Neural Plasticity|April 24, 2018
Photoperiod-Induced Neuroplasticity in the Circadian SystemAlessandra Porcu, Malini Riddle, Davide Dulcis, et al.
The Yale Journal of Biology and Medicine|June 29, 2019
Effects of BMAL1 Manipulation on the Brain's Master Circadian Clock and BehaviorSamreen N Haque, Sathwik R Booreddy, David K Welsh
Journal of Theoretical Biology|September 18, 2012
Bayesian statistical analysis of circadian oscillations in fibroblastsAndrew L Cohen, Tanya L Leise, David K Welsh
Science (New York, N.Y.)|March 17, 2009
A functional genomics approach reveals CHE as a component of the Arabidopsis circadian clockJose L Pruneda-Paz, Ghislain Breton, Alessia Para, et al.
Nature|December 5, 2003
Targeted degradation of TOC1 by ZTL modulates circadian function in Arabidopsis thalianaPaloma Más, Woe-Yeon Kim, David E Somers, et al.
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