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DYRK1A and Glycogen Synthase Kinase 3β a Dual-Kinase Mechanism Directing Proteasomal Degradation of CRY2 for Circadian Timekeeping

机译:DYRK1A和糖原合酶激酶3β一种双激酶机制指导CRY2的蛋白酶体降解用于昼夜节律计时

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摘要

Circadian molecular oscillation is generated by a transcription/translation-based feedback loop in which CRY proteins play critical roles as potent inhibitors for E-box-dependent clock gene expression. Although CRY2 undergoes rhythmic phosphorylation in its C-terminal tail, structurally distinct from the CRY1 tail, little is understood about how protein kinase(s) controls the CRY2-specific phosphorylation and contributes to the molecular clockwork. Here we found that Ser557 in the C-terminal tail of CRY2 is phosphorylated by DYRK1A as a priming kinase for subsequent GSK-3β (glycogen synthase kinase 3β)-mediated phosphorylation of Ser553, which leads to proteasomal degradation of CRY2. In the mouse liver, DYRK1A kinase activity toward Ser557 of CRY2 showed circadian variation, with its peak in the accumulating phase of CRY2 protein. Knockdown of Dyrk1a caused abnormal accumulation of cytosolic CRY2, advancing the timing of a nuclear increase of CRY2, and shortened the period length of the cellular circadian rhythm. Expression of an S557A/S553A mutant of CRY2 phenocopied the effect of Dyrk1a knockdown in terms of the circadian period length of the cellular clock. DYRK1A is a novel clock component cooperating with GSK-3β and governs the Ser557 phosphorylation-triggered degradation of CRY2.
机译:昼夜节律性分子振荡是由基于转录/翻译的反馈环产生的,其中CRY蛋白作为E-box依赖的时钟基因表达的有效抑制剂发挥着关键作用。尽管CRY2在其C末端尾部经历了有节奏的磷酸化,在结构上不同于CRY1尾部,但对蛋白激酶如何控制CRY2特异性磷酸化并促进分子发条的了解甚少。在这里,我们发现CRY2 C末端尾部的Ser557被DYRK1A磷酸化,作为随后GSK-3β(糖原合酶激酶3β)介导的Ser553磷酸化的引发激酶,导致蛋白酶体降解CRY2。在小鼠肝脏中,DYRK1A激酶对CRY2的Ser557的活性呈昼夜节律性变化,其峰值在CRY2蛋白的积累阶段。抑制Dyrk1a引起胞质CRY2异常积聚,加快CRY2核增加的时间,并缩短了细胞昼夜节律的周期。就细胞时钟的昼夜周期长度而言,CRY2的S557A / S553A突变体的表达表彰了Dyrk1a敲低的效应。 DYRK1A是与GSK-3β合作的新型时钟组件,可控制Ser557磷酸化触发的CRY2降解。

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