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昼夜节律。使昼夜节律钟蛋白周转与昼夜节律周期测定脱钩。

Circadian rhythms. Decoupling circadian clock protein turnover from circadian period determination.

作者信息

Larrondo Luis F, Olivares-Yañez Consuelo, Baker Christopher L, Loros Jennifer J, Dunlap Jay C

机构信息

Millennium Nucleus for Fungal Integrative and Synthetic Biology, Departamento de Genética Molecular y Microbiología, Facultad de Ciencias Biológicas, Pontificia Universidad Católica de Chile, Casilla 114-D, Santiago, Chile. Department of Genetics, Geisel School of Medicine at Dartmouth, Hanover, NH 03755, USA.

Millennium Nucleus for Fungal Integrative and Synthetic Biology, Departamento de Genética Molecular y Microbiología, Facultad de Ciencias Biológicas, Pontificia Universidad Católica de Chile, Casilla 114-D, Santiago, Chile.

出版信息

Science. 2015 Jan 30;347(6221):1257277. doi: 10.1126/science.1257277.

Abstract

The mechanistic basis of eukaryotic circadian oscillators in model systems as diverse as Neurospora, Drosophila, and mammalian cells is thought to be a transcription-and-translation-based negative feedback loop, wherein progressive and controlled phosphorylation of one or more negative elements ultimately elicits their own proteasome-mediated degradation, thereby releasing negative feedback and determining circadian period length. The Neurospora crassa circadian negative element FREQUENCY (FRQ) exemplifies such proteins; it is progressively phosphorylated at more than 100 sites, and strains bearing alleles of frq with anomalous phosphorylation display abnormal stability of FRQ that is well correlated with altered periods or apparent arrhythmicity. Unexpectedly, we unveiled normal circadian oscillations that reflect the allelic state of frq but that persist in the absence of typical degradation of FRQ. This manifest uncoupling of negative element turnover from circadian period length determination is not consistent with the consensus eukaryotic circadian model.

摘要

在诸如粗糙脉孢菌、果蝇和哺乳动物细胞等多种模型系统中,真核生物钟振荡器的机制基础被认为是基于转录和翻译的负反馈回路,其中一个或多个负调控元件的逐步且可控的磷酸化最终引发其自身蛋白酶体介导的降解,从而解除负反馈并决定昼夜节律周期长度。粗糙脉孢菌的昼夜节律负调控元件频率(FRQ)就是这类蛋白质的典型例子;它在100多个位点上逐步磷酸化,携带FRQ磷酸化异常等位基因的菌株表现出FRQ异常的稳定性,这与周期改变或明显的无节律性密切相关。出乎意料的是,我们发现了正常的昼夜节律振荡,它反映了FRQ的等位基因状态,但在没有典型的FRQ降解的情况下仍然持续存在。这种负调控元件周转与昼夜节律周期长度决定之间明显的解偶联与普遍认可的真核生物钟模型不一致。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8662/4432837/a2a2aaa1638c/nihms687366f1.jpg

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