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Circadian Amplitude Regulation via FBXW7-Targeted REV-ERBα Degradation
Xuan Zhao1, Tsuyoshi Hirota2, Xuemei Han3
1Gene Expression Laboratory, Howard Hughes Medical Institute, The Salk Institute for Biological Studies, La Jolla, CA 92037, USA.
Abstract:
Defects in circadian rhythm influence physiology and behavior with implications for the treatment of sleep disorders, metabolic disease, and cancer. Although core regulatory components of clock rhythmicity have been defined, insight into the mechanisms underpinning amplitude is limited. Here, we show that REV-ERBα, a core inhibitory component of clock transcription, is targeted for ubiquitination and subsequent degradation by the F-box protein FBXW7. By relieving REV-ERBα-dependent repression, FBXW7 provides an unrecognized mechanism for enhancing the amplitude of clock gene transcription. Cyclin-dependent kinase 1 (CDK1)-mediated phosphorylation of REV-ERBα is necessary for FBXW7 recognition. Moreover, targeted hepatic disruption of FBXW7 alters circadian expression of core clock genes and perturbs whole-body lipid and glucose levels. This CDK1-FBXW7 pathway controlling REV-ERBα repression defines an unexpected molecular mechanism for re-engaging the positive transcriptional arm of the clock, as well as a potential route to manipulate clock amplitude via small molecule CDK1 inhibition.
Insights
The F-box protein FBXW7 targets REV-ERBα for degradation, enhancing circadian clock gene transcription amplitude. This pathway, involving cyclin-dependent kinase 1 (CDK1), impacts metabolism and offers therapeutic targets.
Area of Science:
- Chronobiology
- Molecular Biology
- Metabolic Regulation
Background:
- Circadian rhythm defects affect sleep, metabolism, and cancer.
- Mechanisms regulating circadian clock amplitude remain incompletely understood.
- REV-ERBα is a core component of the circadian clock's inhibitory arm.
Purpose of the Study:
- To elucidate the regulatory mechanisms controlling the amplitude of circadian gene transcription.
- To identify novel factors involved in the post-translational modification and degradation of REV-ERBα.
- To explore the physiological consequences of disrupting the identified regulatory pathway.
Main Methods:
- Ubiquitination and degradation assays to study REV-ERBα stability.
- Western blotting and immunoprecipitation to detect protein interactions.
- Pharmacological inhibition and genetic disruption of FBXW7 and CDK1 in vivo.
- Analysis of circadian gene expression and metabolic parameters in liver-specific FBXW7 knockout mice.
Main Results:
- FBXW7 targets REV-ERBα for ubiquitination and degradation.
- CDK1-mediated phosphorylation of REV-ERBα is essential for FBXW7 recognition.
- FBXW7 relieves REV-ERBα-mediated repression, enhancing clock gene transcription amplitude.
- Hepatic FBXW7 disruption alters core clock gene expression and perturbs glucose and lipid metabolism.
Conclusions:
- The CDK1-FBXW7 pathway represents a novel mechanism for regulating circadian clock amplitude by controlling REV-ERBα stability.
- This pathway provides a link between cell cycle regulation and circadian transcription.
- Targeting CDK1 offers a potential strategy for manipulating circadian amplitude and metabolic homeostasis.
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