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Published on: December 27, 2016
Ser-557-phosphorylated mCRY2 is degraded upon synergistic phosphorylation by glycogen synthase kinase-3 beta
Yuko Harada1, Mihoko Sakai, Nobuhiro Kurabayashi
1Department of Biophysics and Biochemistry, Graduate School of Science, The University of Tokyo, Hongo 7-3-1, Bunkyo-Ku, Tokyo 113-0033, Japan.
Abstract:
Cryptochrome 1 and 2 act as essential components of the central and peripheral circadian clocks for generation of circadian rhythms in mammals. Here we show that mouse cryptochrome 2 (mCRY2) is phosphorylated at Ser-557 in the liver, a well characterized peripheral clock tissue. The Ser-557-phosphorylated form accumulates in the liver during the night in parallel with mCRY2 protein, and the phosphorylated form reaches its maximal level at late night, preceding the peak-time of the protein abundance by approximately 4 h in both light-dark cycle and constant dark conditions. The Ser-557-phosphorylated form of mCRY2 is localized in the nucleus, whereas mCRY2 protein is located in both the cytoplasm and nucleus. Importantly, phosphorylation of mCRY2 at Ser-557 allows subsequent phosphorylation at Ser-553 by glycogen synthase kinase-3beta (GSK-3beta), resulting in efficient degradation of mCRY2 by a proteasome pathway. As assessed by phosphorylation of GSK-3beta at Ser-9, which negatively regulates the kinase activity, GSK-3beta exhibits a circadian rhythm in its activity with a peak from late night to early morning when Ser-557 of mCRY2 is highly phosphorylated. Altogether, the present study demonstrates an important role of sequential phosphorylation at Ser-557/Ser-553 for destabilization of mCRY2 and illustrates a model that the circadian regulation of mCRY2 phosphorylation contributes to rhythmic degradation of mCRY2 protein.
Insights
Mouse cryptochrome 2 (mCRY2) phosphorylation at Ser-557 and Ser-553 regulates its degradation. This sequential phosphorylation by GSK-3beta is key to the circadian regulation of mCRY2 protein levels in peripheral clocks.
Area of Science:
- Chronobiology
- Molecular Biology
- Biochemistry
Background:
- Cryptochrome 1 and 2 (CRY1/2) are crucial for mammalian circadian rhythms.
- CRY proteins are key components of both central and peripheral circadian clocks.
Purpose of the Study:
- To investigate the post-translational modification of mouse cryptochrome 2 (mCRY2) in peripheral tissues.
- To elucidate the role of mCRY2 phosphorylation in regulating its protein stability and circadian function.
Main Methods:
- Western blotting to detect phosphorylated mCRY2.
- Immunofluorescence to determine subcellular localization.
- Analysis of glycogen synthase kinase-3beta (GSK-3beta) activity rhythms.
Main Results:
- mCRY2 is phosphorylated at Ser-557 in the liver, accumulating during the night.
- Ser-557 phosphorylation precedes Ser-553 phosphorylation by GSK-3beta, targeting mCRY2 for proteasomal degradation.
- GSK-3beta activity peaks during the late night/early morning, coinciding with high mCRY2 phosphorylation.
Conclusions:
- Sequential phosphorylation of mCRY2 at Ser-557 and Ser-553 is essential for its destabilization.
- Circadian regulation of mCRY2 phosphorylation drives rhythmic degradation of mCRY2 protein.
- This mechanism contributes to the precise timing of peripheral circadian clocks.
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