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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.
Abstract:
Circadian clocks are composed of transcription-translation negative feedback loops that pace rhythms of gene expression to the diurnal cycle. In the filamentous fungus Neurospora crassa, the proteins Frequency (FRQ), the FRQ-interacting RNA helicase (FRH), and Casein-Kinase I (CK1) form the FFC complex that represses expression of genes activated by the white-collar complex (WCC). FRQ orchestrates key molecular interactions of the clock despite containing little predicted tertiary structure. Spin labeling and pulse-dipolar electron spin resonance spectroscopy provide domain-specific structural insights into the 989-residue intrinsically disordered FRQ and the FFC. FRQ contains a compact core that associates and organizes FRH and CK1 to coordinate their roles in WCC repression. FRQ phosphorylation increases conformational flexibility and alters oligomeric state, but the changes in structure and dynamics are non-uniform. Full-length FRQ undergoes liquid-liquid phase separation (LLPS) to sequester FRH and CK1 and influence CK1 enzymatic activity. Although FRQ phosphorylation favors LLPS, LLPS feeds back to reduce FRQ phosphorylation by CK1 at higher temperatures. Live imaging of Neurospora hyphae reveals FRQ foci characteristic of condensates near the nuclear periphery. Analogous clock repressor proteins in higher organisms share little position-specific sequence identity with FRQ; yet, they contain amino acid compositions that promote LLPS. Hence, condensate formation may be a conserved feature of eukaryotic clocks.
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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