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The genetic basis of diurnal preference in Drosophila melanogaster, , , , , , and . BMC Genomics, 21 (1): 596 (2020)Organization of Circadian Behavior Relies on Glycinergic Transmission, , , , , , , , , and 2 other author(s). Cell Reports, 19 (1): 72-85 (2017)Twilight dominates over moonlight in adjusting Drosophila’s activity pattern, , , and . J Biol Rhythms, 30 (2): 117-128 (2015)PMID: 25838418.Cryptochrome-Dependent and -Independent Circadian Entrainment Circuits in Drosophila, , , , , and . J Neurosci, 35 (15): 6131--6141 (2015)A new ImageJ plug-in “ActogramJ” for chronobiological analyses, , and . J Biol Rhythms, 26 (5): 464-467 (2011)Moonlight shifts the endogenous clock of Drosophila melanogaster, , , , and . Proc Natl Acad Sci, 104 (9): 3538-3543 (2007)Peptidergic clock neurons in Drosophila: ion transport peptide and short neuropeptide F in subsets of dorsal and ventral lateral neurons, , , , , , and . J Comp Neurol, 516 (1): 59-73 (2009)A self-sustaining, light-entrainable circadian oscillator in the Drosophila brain, , , , and . Curr Biol, 13 (20): 1758-1767 (2003)Blocking endocytosis in Drosophila's circadian pacemaker neurons interferes with the endogenous clock in a PDF-dependent way, , and . Chronobiol Int, 26 (7): 1307-1322 (2009)The circadian system of Drosophila melanogaster and its light input pathways1. Zoology, 105 (4): 297-312 (2002)