Phosphorylation, disorder, and phase separation govern the behavior of Frequency in the fungal circadian clock

Daniyal Tariq1, Nicole Maurici2, Bradley M Bartholomai3

  • 1Department of Chemistry & Chemical Biology, Cornell University, Ithaca, United States.

Elife
|March 25, 2024
PubMed

Insights

The Frequency (FRQ) protein in Neurospora crassa forms a complex that regulates gene expression. This intrinsically disordered protein undergoes liquid-liquid phase separation, a process potentially conserved in eukaryotic clocks.

Area of Science:

  • Molecular Biology
  • Biophysics
  • Chronobiology

Background:

  • Circadian clocks regulate gene expression via transcription-translation feedback loops.
  • In Neurospora crassa, the Frequency (FRQ) protein, FRQ-interacting RNA helicase (FRH), and Casein-Kinase I (CK1) form the FFC complex, repressing genes activated by the white-collar complex (WCC).

Purpose of the Study:

  • To investigate the structure and dynamics of the intrinsically disordered FRQ protein and the FFC complex.
  • To understand the role of liquid-liquid phase separation (LLPS) in the function of the circadian clock.

Main Methods:

  • Spin labeling and pulse-dipolar electron spin resonance spectroscopy were used to study FRQ and the FFC complex.
  • Live imaging of Neurospora hyphae was performed to observe FRQ localization.

Main Results:

  • FRQ contains a compact core organizing FRH and CK1 for WCC repression.
  • FRQ phosphorylation alters its structure and dynamics, promoting LLPS.
  • FRQ undergoes LLPS to sequester FRH and CK1, influencing CK1 activity and forming foci near the nuclear periphery.
  • LLPS negatively feedbacks to reduce FRQ phosphorylation by CK1 at higher temperatures.

Conclusions:

  • Condensate formation via LLPS may be a conserved mechanism for eukaryotic circadian clocks, despite low sequence homology.
  • The intrinsically disordered nature of FRQ is crucial for its function in organizing the FFC complex and regulating circadian rhythms.

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