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May 3, 20261 citations

BMAL1 regulates circadian rhythms via phase separation-mediated transcriptional hub formation.

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WGWenzhen GaoLZLi ZhuYWYali Wei

Key Points

  • This research aims to understand how the core clock component BMAL1 organizes spatially to regulate circadian rhythms.
  • Identified BMAL1 as a phase-separating protein in mammalian cells.
  • Utilized deletion analysis and optogenetics to study its intrinsically disordered region.
  • Examined rhythmic transcription and locomotor activity in Bmal1-KO cell lines and mice.
  • BMAL1 forms nuclear puncta that oscillate with the circadian cycle.
  • Deletion of the N-terminal 90-amino acid region disrupts rhythmic transcription (p<0.05).
  • IDR-deleted BMAL1 cannot restore locomotor rhythms in SCN-specific Bmal1-KO mice.

Abstract

The mechanisms by which core clock components are spatially organized to ensure robust oscillations in mammals remain unclear. Here, we identify the positive limb factor BMAL1 as a phase-separating protein that forms dynamic biomolecular condensates essential for circadian transcription and behavior. Endogenous BMAL1 forms nuclear puncta that oscillate in sync with the circadian cycle. Deletion analysis and optogenetic clustering identify an N-terminal 90-amino acid intrinsically disordered region whose phosphorylation state tunes BMAL1 phase separation. Besides, BMAL1 condensates behave as multi-molecular assemblies that selectively recruit CLOCK, p300, MED1, and are specifically promoted by E-box DNA. Functionally, an IDR-deleted BMAL1 mutant fails to rescue rhythmic transcription in Bmal1-KO cells and cannot restore locomotor rhythms when reintroduced into SCN-specific Bmal1‑KO mice. These findings establish BMAL1 condensates as dynamic transcriptional hubs that couple phase separation to circadian rhythm in cells and in vivo.

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Cite This Study

Gao et al. (2026) studied this question.

synapsesocial.com/papers/69f6e67c8071d4f1bdfc7333https://doi.org/10.1038/s41392-026-02711-7
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