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一种用于筛选影响果蝇光感受器分化的 X 连锁突变的筛选方法,确定酪蛋白激酶 1α 是 Wingless 信号的必需负调控因子。

A screen for X-linked mutations affecting Drosophila photoreceptor differentiation identifies Casein kinase 1α as an essential negative regulator of wingless signaling.

机构信息

Kimmel Center for Biology and Medicine of the Skirball Institute and Department of Cell Biology, New York University School of Medicine, New York, New York 10016, USA.

出版信息

Genetics. 2012 Feb;190(2):601-16. doi: 10.1534/genetics.111.133827. Epub 2011 Nov 17.

DOI:10.1534/genetics.111.133827
PMID:22095083
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3276650/
Abstract

The Wnt and Hedgehog signaling pathways are essential for normal development and are misregulated in cancer. The casein kinase family of serine/threonine kinases regulates both pathways at multiple levels. However, it has been difficult to determine whether individual members of this family have distinct functions in vivo, due to their overlapping substrate specificities. In Drosophila melanogaster, photoreceptor differentiation is induced by Hedgehog and inhibited by Wingless, providing a sensitive system in which to identify regulators of each pathway. We used a mosaic genetic screen in the Drosophila eye to identify mutations in genes on the X chromosome required for signal transduction. We recovered mutations affecting the transcriptional regulator CREB binding protein, the small GTPase dynamin, the cytoskeletal regulator Actin-related protein 2, and the protein kinase Casein kinase 1α. Consistent with its reported function in the β-Catenin degradation complex, Casein Kinase 1α mutant cells accumulate β-Catenin and ectopically induce Wingless target genes. In contrast to previous studies based on RNA interference, we could not detect any effect of the same Casein Kinase 1α mutation on Hedgehog signaling. We thus propose that Casein kinase 1α is essential to allow β-Catenin degradation and prevent inappropriate Wingless signaling, but its effects on the Hedgehog pathway are redundant with other Casein kinase 1 family members.

摘要

Wnt 和 Hedgehog 信号通路对于正常发育至关重要,并且在癌症中失调。丝氨酸/苏氨酸激酶家族的酪蛋白激酶在多个水平上调节这两条通路。然而,由于它们的底物特异性重叠,很难确定该家族的各个成员在体内是否具有独特的功能。在黑腹果蝇中,Hedgehog 诱导光感受器分化,而 Wingless 抑制其分化,为鉴定每条通路的调节剂提供了一个敏感的系统。我们在果蝇眼中使用镶嵌遗传筛选来鉴定 X 染色体上信号转导所需的基因中的突变。我们恢复了影响转录调节剂 CREB 结合蛋白、小 GTP 酶 dynamin、细胞骨架调节剂 Actin-related protein 2 和蛋白激酶 Casein kinase 1α 的突变。与它在 β-Catenin 降解复合物中的报道功能一致,Casein Kinase 1α 突变细胞积累 β-Catenin 并异位诱导 Wingless 靶基因。与基于 RNA 干扰的先前研究不同,我们无法检测到相同的 Casein Kinase 1α 突变对 Hedgehog 信号的任何影响。因此,我们提出 Casein kinase 1α 对于允许 β-Catenin 降解和防止不适当的 Wingless 信号传导是必需的,但其对 Hedgehog 途径的影响与其他 Casein kinase 1 家族成员冗余。

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本文引用的文献

1
Yan, an ETS-domain transcription factor, negatively modulates the Wingless pathway in the Drosophila eye.燕,一个 ETS 结构域转录因子,负调控果蝇眼的 Wingless 信号通路。
EMBO Rep. 2011 Sep 30;12(10):1047-54. doi: 10.1038/embor.2011.159.
2
Sonic Hedgehog dependent phosphorylation by CK1α and GRK2 is required for ciliary accumulation and activation of smoothened.Sonic Hedgehog 依赖性磷酸化由 CK1α 和 GRK2 介导,对于纤毛积累和平滑蛋白的激活是必需的。
PLoS Biol. 2011 Jun;9(6):e1001083. doi: 10.1371/journal.pbio.1001083. Epub 2011 Jun 14.
3
Hedgehog activates fused through phosphorylation to elicit a full spectrum of pathway responses.Hedgehog 通过磷酸化激活融合蛋白,引发途径反应的全谱。
Dev Cell. 2011 Jun 14;20(6):802-14. doi: 10.1016/j.devcel.2011.04.020.
4
Coordinated action of CK1 isoforms in canonical Wnt signaling.CK1 同工型在经典 Wnt 信号通路中的协调作用。
Mol Cell Biol. 2011 Jul;31(14):2877-88. doi: 10.1128/MCB.01466-10. Epub 2011 May 23.
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Dynamic acetylation of all lysine-4 trimethylated histone H3 is evolutionarily conserved and mediated by p300/CBP.组蛋白 H3 赖氨酸-4 三甲基化所有赖氨酸的动态乙酰化在进化上是保守的,由 p300/CBP 介导。
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