FB2026_03 , released September 17, 2026
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Fustin, J.M., Ye, S., Rakers, C., Kaneko, K., Fukumoto, K., Yamano, M., Versteven, M., Grünewald, E., Cargill, S.J., Tamai, T.K., Xu, Y., Jabbur, M.L., Kojima, R., Lamberti, M.L., Yoshioka-Kobayashi, K., Whitmore, D., Tammam, S., Howell, P.L., Kageyama, R., Matsuo, T., Stanewsky, R., Golombek, D.A., Johnson, C.H., Kakeya, H., van Ooijen, G., Okamura, H. (2020). Methylation deficiency disrupts biological rhythms from bacteria to humans.  Commun. Biol. 3(1): 211.
FlyBase ID
FBrf0250505
Publication Type
Research paper
Abstract
The methyl cycle is a universal metabolic pathway providing methyl groups for the methylation of nuclei acids and proteins, regulating all aspects of cellular physiology. We have previously shown that methyl cycle inhibition in mammals strongly affects circadian rhythms. Since the methyl cycle and circadian clocks have evolved early during evolution and operate in organisms across the tree of life, we sought to determine whether the link between the two is also conserved. Here, we show that methyl cycle inhibition affects biological rhythms in species ranging from unicellular algae to humans, separated by more than 1 billion years of evolution. In contrast, the cyanobacterial clock is resistant to methyl cycle inhibition, although we demonstrate that methylations themselves regulate circadian rhythms in this organism. Mammalian cells with a rewired bacteria-like methyl cycle are protected, like cyanobacteria, from methyl cycle inhibition, providing interesting new possibilities for the treatment of methylation deficiencies.
PubMed ID
PubMed Central ID
PMC7203018 (PMC) (EuropePMC)
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Secondary IDs
    Language of Publication
    English
    Additional Languages of Abstract
    Parent Publication
    Publication Type
    Journal
    Abbreviation
    Commun. Biol.
    Title
    Communications biology
    ISBN/ISSN
    2399-3642
    Data From Reference
    Genes (1)