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生物钟在粗糙脉孢菌中直接转录调控 p38MAPK 途径。

Direct transcriptional control of a p38 MAPK pathway by the circadian clock in Neurospora crassa.

机构信息

Program for the Biology of Filamentous Fungi, Interdisciplinary Program in Genetics, Department of Biology, Center for Biological Clocks Research, Texas A&M University, College Station, Texas, United States of America.

出版信息

PLoS One. 2011;6(11):e27149. doi: 10.1371/journal.pone.0027149. Epub 2011 Nov 7.

Abstract

MAPK signal transduction pathways are important regulators of stress responses, cellular growth, and differentiation. In Neurospora, the circadian clock controls rhythms in phosphorylation of the p38-like MAPK (OS-2); however, the mechanism for this regulation is not known. We show that the WCC, a transcription factor and clock component, binds to the os-4 MAPKKK promoter in response to light and rhythmically in constant darkness, peaking in the subjective morning. Deletion of the WCC binding sites in the os-4 promoter disrupts both os-4 mRNA and OS-2 phosphorylation rhythms. The clock also indirectly regulates rhythmic expression of the histidyl-phosphotransferase gene, hpt-1, which peaks in the evening. Anti-phase expression of positive (OS-4) and negative (HPT-1) MAPK pathway regulators likely coordinate to enhance rhythmic MAPK activation to prepare cells to respond to osmotic stress during the day in the natural environment. Consistent with this idea, we show that wild type cells have a clock-dependent morning kinetic advantage in glycerol accumulation after salt stress as compared to evening treatment. Thus, circadian transcriptional control of MAPK pathway components leads to striking time-of-day-specific effects on the signaling status and physiological response of the pathway.

摘要

MAPK 信号转导途径是应激反应、细胞生长和分化的重要调节剂。在 Neurospora 中,生物钟控制着 p38 样 MAPK(OS-2)的磷酸化节律;然而,这种调节的机制尚不清楚。我们表明,WCC,一种转录因子和时钟成分,在光响应和持续黑暗中周期性地与 os-4 MAPKKK 启动子结合,在主观早晨达到峰值。os-4 启动子中 WCC 结合位点的缺失破坏了 os-4 mRNA 和 OS-2 磷酸化节律。生物钟还间接调节组氨酸磷酸转移酶基因 hpt-1 的节律表达,该基因在晚上达到峰值。正(OS-4)和负(HPT-1)MAPK 途径调节剂的反相表达可能协调以增强节律性 MAPK 激活,为细胞在自然环境中白天应对渗透胁迫做好准备。与这一观点一致,我们表明,与晚上处理相比,野生型细胞在盐胁迫后甘油积累方面具有生物钟依赖性的早晨动力学优势。因此,MAPK 途径成分的昼夜转录控制导致途径的信号状态和生理反应具有显著的时间特异性效应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/92bd/3210137/e6519482a203/pone.0027149.g001.jpg

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