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酵母Mpk1丝裂原活化蛋白激酶通过一种需要上游信号的非催化机制,经由Swi4/Swi6激活转录。

Yeast Mpk1 mitogen-activated protein kinase activates transcription through Swi4/Swi6 by a noncatalytic mechanism that requires upstream signal.

作者信息

Kim Ki-Young, Truman Andrew W, Levin David E

机构信息

Department of Biochemistry and Molecular Biology, Bloomberg School of Public Health, E8135, The Johns Hopkins University, Baltimore, MD 21205, USA.

出版信息

Mol Cell Biol. 2008 Apr;28(8):2579-89. doi: 10.1128/MCB.01795-07. Epub 2008 Feb 11.

Abstract

The cell wall integrity mitogen-activated protein kinase (MAPK) cascade of Saccharomyces cerevisiae drives changes in gene expression in response to cell wall stress. We show that the MAPK of this pathway (Mpk1) and its pseudokinase paralog (Mlp1) use a noncatalytic mechanism to activate transcription of the FKS2 gene. Transcriptional activation of FKS2 was dependent on the Swi4/Swi6 (SBF) transcription factor and on an activating signal to Mpk1 but not on protein kinase activity. Activated (phosphorylated) Mpk1 and Mlp1 were detected in a complex with Swi4 and Swi6 at the FKS2 promoter. Mpk1 association with Swi4 in vivo required phosphorylation of Mpk1. Promoter association of Mpk1 and the Swi4 DNA-binding subunit of SBF were codependent but did not require Swi6, indicating that the MAPK confers DNA-binding ability to Swi4. Based on these data, we propose a model in which phosphorylated Mpk1 or Mlp1 forms a dimeric complex with Swi4 that is competent to associate with the FKS2 promoter. This complex then recruits Swi6 to activate transcription. Finally, we show that human ERK5, a functional ortholog of Mpk1, is similarly capable of driving FKS2 expression in the absence of protein kinase activity, suggesting that this mammalian MAPK may also have a noncatalytic function in vivo.

摘要

酿酒酵母的细胞壁完整性丝裂原活化蛋白激酶(MAPK)级联反应可驱动基因表达变化以应对细胞壁应激。我们发现该信号通路的MAPK(Mpk1)及其假激酶旁系同源物(Mlp1)利用非催化机制激活FKS2基因的转录。FKS2的转录激活依赖于Swi4/Swi6(SBF)转录因子以及对Mpk1的激活信号,但不依赖于蛋白激酶活性。在FKS2启动子处检测到活化的(磷酸化的)Mpk1和Mlp1与Swi4和Swi6形成复合物。Mpk1在体内与Swi4的结合需要Mpk1的磷酸化。Mpk1与SBF的Swi4 DNA结合亚基的启动子结合是相互依赖的,但不需要Swi6,这表明MAPK赋予Swi4 DNA结合能力。基于这些数据,我们提出一个模型,其中磷酸化的Mpk1或Mlp1与Swi4形成二聚体复合物,该复合物能够与FKS2启动子结合。然后该复合物招募Swi6以激活转录。最后,我们发现人类ERK5是Mpk1的功能直系同源物,同样能够在缺乏蛋白激酶活性的情况下驱动FKS2表达,这表明这种哺乳动物MAPK在体内可能也具有非催化功能。

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