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Nemo-like 激酶通过干扰 Notch 活性转录复合物的形成来抑制 Notch 信号通路。

Nemo-like kinase suppresses Notch signalling by interfering with formation of the Notch active transcriptional complex.

机构信息

Unit on Nervous Development Systems, Nagoya 464-8602, Japan.

出版信息

Nat Cell Biol. 2010 Mar;12(3):278-85. doi: 10.1038/ncb2028. Epub 2010 Jan 31.

Abstract

The Notch signalling pathway has a crucial function in determining cell fates in multiple tissues within metazoan organisms. On binding to ligands, the Notch receptor is cleaved proteolytically and releases its intracellular domain (NotchICD). The NotchICD enters the nucleus and acts cooperatively with other factors to stimulate the transcription of target genes. High levels of Notch-mediated transcriptional activation require the formation of a ternary complex consisting of NotchICD, CSL (CBF-1, suppressor of hairless, LAG-1) and a Mastermind family member. However, it is still not clear how the formation of the ternary complex is regulated. Here we show that Nemo-like kinase (NLK) negatively regulates Notch-dependent transcriptional activation by decreasing the formation of this ternary complex. Using a biochemical screen, we identified Notch as a new substrate of NLK. NLK-phosphorylated Notch1ICD is impaired in its ability to form a transcriptionally active ternary complex. Furthermore, knockdown of NLK leads to hyperactivation of Notch signalling and consequently decreases neurogenesis in zebrafish. Our results both define a new function for NLK and reveal a previously unidentified mode of regulation in the Notch signalling pathway.

摘要

Notch 信号通路在多细胞生物的多种组织中决定细胞命运方面具有关键作用。Notch 受体在与配体结合后被蛋白水解切割,释放其细胞内结构域(NotchICD)。NotchICD 进入细胞核并与其他因子协同作用,刺激靶基因的转录。高水平的 Notch 介导的转录激活需要形成由 NotchICD、CSL(CBF-1、无发毛抑制因子、LAG-1)和 Mastermind 家族成员组成的三元复合物。然而,三元复合物的形成如何受到调节仍不清楚。在这里,我们表明 Nemo 样激酶(NLK)通过降低三元复合物的形成来负调控 Notch 依赖性转录激活。通过生化筛选,我们鉴定出 Notch 是 NLK 的一个新底物。NLK 磷酸化的 Notch1ICD 形成转录活性三元复合物的能力受损。此外,NLK 的敲低导致 Notch 信号的过度激活,从而减少斑马鱼中的神经发生。我们的研究结果既定义了 NLK 的新功能,又揭示了 Notch 信号通路中以前未识别的调节模式。

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