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Scientific Reports|August 29, 2019
Identification of pathways that regulate circadian rhythms using a larval zebrafish small molecule screenEric A Mosser, Cindy N Chiu, T Katherine Tamai, et al.The Plant Cell|April 25, 2013
BRANCHED1 interacts with FLOWERING LOCUS T to repress the floral transition of the axillary meristems in ArabidopsisMasaki Niwa, Yasufumi Daimon, Ken-ichi Kurotani, et al.Plant Direct|June 28, 2019
Functional dissection of the ARGONAUTE7 promoterJ Steen Hoyer, Jose L Pruneda-Paz, Ghislain Breton, et al.Cell|May 23, 2002
Coordinated transcription of key pathways in the mouse by the circadian clockSatchidananda Panda, Marina P Antoch, Brooke H Miller, et al.Angewandte Chemie (International Ed. in English)|May 12, 2015
C-H activation generates period-shortening molecules that target cryptochrome in the mammalian circadian clockTsuyoshi Oshima, Iori Yamanaka, Anupriya Kumar, et al.Neuron|August 18, 2004
A functional genomics strategy reveals Rora as a component of the mammalian circadian clockTrey K Sato, Satchidananda Panda, Loren J Miraglia, et al.Oncogene|April 13, 2021
Clocking cancer: the circadian clock as a target in cancer therapyFrancesca Battaglin, Priscilla Chan, Yuanzhong Pan, et al.Nature Genetics|February 14, 2006
Feedback repression is required for mammalian circadian clock functionTrey K Sato, Rikuhiro G Yamada, Hideki Ukai, et al.Plos Biology|October 23, 2010
Emergence of noise-induced oscillations in the central circadian pacemakerCaroline H Ko, Yujiro R Yamada, David K Welsh, et al.Plos Biology|December 24, 2010
High-throughput chemical screen identifies a novel potent modulator of cellular circadian rhythms and reveals CKIα as a clock regulatory kinaseTsuyoshi Hirota, Jae Wook Lee, Warren G Lewis, et al.Pageof 19