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1. PRC2-EZH1 contributes to circadian gene expression by orchestrating chromatin states and RNA polymerase II complex stability

2. Targeting nuclear receptor corepressors for reversible male contraception.

3. Liver and muscle circadian clocks cooperate to support glucose tolerance in mice

5. Tryptophan metabolism is a physiological integrator regulating circadian rhythms

6. The central clock suffices to drive the majority of circulatory metabolic rhythms

7. Dopamine D2 receptor signaling in the brain modulates circadian liver metabolomic profiles

8. Rapid-acting antidepressants and the circadian clock

9. Integration of feeding behavior by the liver circadian clock reveals network dependency of metabolic rhythms

10. Ketogenesis impact on liver metabolism revealed by proteomics of lysine β-hydroxybutyrylation

11. S-adenosyl-l-homocysteine hydrolase links methionine metabolism to the circadian clock and chromatin remodeling

12. Reshaping circadian metabolism in the suprachiasmatic nucleus and prefrontal cortex by nutritional challenge

13. The circadian dynamics of the hippocampal transcriptome and proteome is altered in experimental temporal lobe epilepsy

14. Cocaine-mediated circadian reprogramming in the striatum through dopamine D2R and PPARγ activation.

15. Personalized medicine and circadian rhythms: Opportunities for modern society

16. BMAL1 Associates with NOP58 in the Nucleolus and Contributes to Pre-rRNA Processing

17. A non-pharmacological therapeutic approach in the gut triggers distal metabolic rewiring capable of ameliorating diet-induced dysfunctions encompassed by metabolic syndrome

18. Distinct metabolic adaptation of liver circadian pathways to acute and chronic patterns of alcohol intake

19. Nutrient‐sensitive transcription factors TFEB and TFE3 couple autophagy and metabolism to the peripheral clock

20. Defining the Independence of the Liver Circadian Clock

21. BMAL1-Driven Tissue Clocks Respond Independently to Light to Maintain Homeostasis

22. Circadian blueprint of metabolic pathways in the brain

23. The emerging link between cancer, metabolism, and circadian rhythms

24. Fasting Imparts a Switch to Alternative Daily Pathways in Liver and Muscle

25. Human metabolomics reveal daily variations under nutritional challenges specific to serum and skeletal muscle

26. Atlas of Circadian Metabolism Reveals System-wide Coordination and Communication between Clocks

27. Epigenetic regulation of the circadian gene Per1 contributes to age-related changes in hippocampal memory.

28. CircadiOmics: circadian omic web portal

29. Esterase-Catalyzed Siderophore Hydrolysis Activates an Enterobactin–Ciprofloxacin Conjugate and Confers Targeted Antibacterial Activity

30. Guidelines for Genome-Scale Analysis of Biological Rhythms

31. A Circadian Genomic Signature Common to Ketamine and Sleep Deprivation in the Anterior Cingulate Cortex.

32. Circadian Reprogramming in the Liver Identifies Metabolic Pathways of Aging

33. Gathering by the Red Sea highlights links between environment and epigenetics

35. Microcins mediate competition among Enterobacteriaceae in the inflamed gut.

36. Siderophore-based immunization strategy to inhibit growth of enteric pathogens

37. Spatial dynamics of SIRT1 and the subnuclear distribution of NADH species

38. Metabolic Signaling to Chromatin

39. Histone Deacetylase SIRT1 Controls Proliferation, Circadian Rhythm, and Lipid Metabolism during Liver Regeneration in Mice*

41. Gut microbiota directs PPARγ‐driven reprogramming of the liver circadian clock by nutritional challenge

42. Lung Adenocarcinoma Distally Rewires Hepatic Circadian Homeostasis

43. The Circadian Clock in the Ventromedial Hypothalamus Controls Cyclic Energy Expenditure

44. Comparative Circadian Metabolomics Reveal Differential Effects of Nutritional Challenge in the Serum and Liver*

47. Impact of Sleep and Circadian Disruption on Energy Balance and Diabetes: A Summary of Workshop Discussions

48. The pervasiveness and plasticity of circadian oscillations: the coupled circadian-oscillators framework

49. Coupling circadian rhythms of metabolism and chromatin remodelling

50. Chromatin landscape and circadian dynamics: Spatial and temporal organization of clock transcription

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