580 results on '"Kyriacou, Charalambos P."'
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2. Essential elements of radical pair magnetosensitivity in Drosophila
3. Bypassing mitochondrial defects rescues Huntington's phenotypes in Drosophila
4. Quantitative genetic analysis of attractiveness of yeast products to Drosophila
5. Publisher Correction: Essential elements of radical pair magnetosensitivity in Drosophila
6. Visualization of Mutant Aggregates from Clock Neurons by Agarose Gel Electrophoresis (AGERA) in Drosophila melanogaster
7. Methods for Delivery of dsRNAi Against Canonical Clock Genes and Immunocytodetection of Clock Proteins in Crustacea
8. Heme binding to human CLOCK affects interactions with the E-box
9. Correction: The circadian clock gene bmal1 is necessary for co-ordinated circatidal rhythms in the marine isopod Eurydice pulchra (Leach)
10. The circadian clock gene bmal1 is necessary for co-ordinated circatidal rhythms in the marine isopod Eurydice pulchra (Leach)
11. Disruption of Cryptochrome Partially Restores Circadian Rhythmicity to the Arrhythmic Period Mutant of Drosophila
12. Marine biorhythms: bridging chronobiology and ecology
13. Failure to reproduce period -dependent song cycles in Drosophila is due to poor automated pulse-detection and low-intensity courtship
14. Chronobiological studies on body search, oviposition and emergence of Megaselia scalaris (Diptera, Phoridae) in controlled conditions
15. Flies, Clocks and Evolution
16. Molecular Coevolution within a Drosophila Clock Gene
17. Natural Variation in a Drosophila Clock Gene and Temperature Compensation
18. Tryptophan-2,3-dioxygenase (TDO) inhibition ameliorates neurodegeneration by modulation of kynurenine pathway metabolites
19. Review of “Making Sense of Genes” by Kostas Kampourakis
20. Editorial: Biological rhythms: Evolution, population biology, and adaptation
21. The circadian clock genebmal1is necessary for co-ordinated circatidal rhythms in the marine isopodEurydice pulchra(Leach)
22. Drosophila circadian rhythms in seminatural environments : Summer afternoon component is not an artifact and requires TrpA1 channels
23. Genetic analysis of cryptochrome in insect magnetosensitivity
24. Diurnal Differences in Intracellular Replication Within Splenic Macrophages Correlates With the Outcome of Pneumococcal Infection
25. Molecular analysis of circadian clocks in Drosophila simulans
26. Single gene mutations in Drosophila: What can they tell us about the evolution of sexual behaviour?
27. Adaptation of molecular circadian clockwork to environmental changes: a role for alternative splicing and miRNAs
28. Latitudinal clines: an evolutionary view on biological rhythms
29. Photoperiod-Dependent Expression of MicroRNA in Drosophila
30. Unraveling Traveling
31. Sleep, Arousal, and Rhythms in Flies
32. Review: Genomic Approaches for Studying Biological Clocks
33. The hormonal and circadian basis for insect photoperiodic timing
34. A Molecular Basis for Natural Selection at the Timeless Locus in Drosophila melanogaster
35. Natural Selection Favors a Newly Derived Timeless Allele in Drosophila melanogaster
36. Contributors
37. Genetic Analysis of Drosophila Circadian Behavior in Seminatural Conditions
38. Modeling Huntington Disease in Yeast and Invertebrates
39. Circadian clocks: genes, sleep, and cognition
40. Essential elements of radical pair magnetosensitivity inDrosophila
41. Rab11 modulates α-synuclein-mediated defects in synaptic transmission and behaviour
42. Functional neurogenomics of the courtship song of male Drosophila melanogaster
43. A Latitudinal Cline in a Drosophila Clock Gene
44. Molecular Transfer of a Species-Specific Behavior from Drosophila simulans to Drosophila melanogaster
45. Genetic and Molecular Analysis of the Love Song Preferences of Drosophila Females
46. A latitudinal cline in a courtship song character of Drosophila melanogaster
47. Peroxiredoxins are conserved markers of circadian rhythms
48. Unexpected features of Drosophila circadian behavioural rhythms under natural conditions
49. Is vertical migration in Antarctic krill (Euphausia superba) influenced by an underlying circadian rhythm?
50. Molecular correlates of swarming behaviour in Aedes aegyptimales
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