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SrkA激酶是SakA丝裂原活化蛋白激酶相互作用组的一部分,并调节构巢曲霉的应激反应和发育。

The SrkA Kinase Is Part of the SakA Mitogen-Activated Protein Kinase Interactome and Regulates Stress Responses and Development in Aspergillus nidulans.

作者信息

Jaimes-Arroyo Rafael, Lara-Rojas Fernando, Bayram Özgür, Valerius Oliver, Braus Gerhard H, Aguirre Jesús

机构信息

Departamento de Biología Celular y Desarrollo, Instituto de Fisiología Celular, Universidad Nacional Autónoma de México, Mexico City, Mexico.

Department of Biology, Maynooth University, National University of Ireland, Maynooth, County Kildare, Ireland.

出版信息

Eukaryot Cell. 2015 May;14(5):495-510. doi: 10.1128/EC.00277-14. Epub 2015 Mar 27.

Abstract

Fungi and many other eukaryotes use specialized mitogen-activated protein kinases (MAPK) of the Hog1/p38 family to transduce environmental stress signals. In Aspergillus nidulans, the MAPK SakA and the transcription factor AtfA are components of a central multiple stress-signaling pathway that also regulates development. Here we characterize SrkA, a putative MAPK-activated protein kinase, as a novel component of this pathway. ΔsrkA and ΔsakA mutants share a derepressed sexual development phenotype. However, ΔsrkA mutants are not sensitive to oxidative stress, and in fact, srkA inactivation partially suppresses the sensitivity of ΔsakA mutant conidia to H2O2, tert-butyl-hydroperoxide (t-BOOH), and menadione. In the absence of stress, SrkA shows physical interaction with nonphosphorylated SakA in the cytosol. We show that H2O2 induces a drastic change in mitochondrial morphology consistent with a fission process and the relocalization of SrkA to nuclei and mitochondria, depending on the presence of SakA. SakA-SrkA nuclear interaction is also observed during normal asexual development in dormant spores. Using SakA and SrkA S-tag pulldown and purification studies coupled to mass spectrometry, we found that SakA interacts with SrkA, the stress MAPK MpkC, the PPT1-type phosphatase AN6892, and other proteins involved in cell cycle regulation, DNA damage response, mRNA stability and protein synthesis, mitochondrial function, and other stress-related responses. We propose that oxidative stress induces DNA damage and mitochondrial fission and that SakA and SrkA mediate cell cycle arrest and regulate mitochondrial function during stress. Our results provide new insights into the mechanisms by which SakA and SrkA regulate the remodelling of cell physiology during oxidative stress and development.

摘要

真菌和许多其他真核生物利用Hog1/p38家族的特异性丝裂原活化蛋白激酶(MAPK)来转导环境应激信号。在构巢曲霉中,MAPK SakA和转录因子AtfA是一条核心多重应激信号通路的组成部分,该通路也调控发育。在此,我们将一种假定的MAPK激活蛋白激酶SrkA鉴定为该通路的一个新组分。ΔsrkA和ΔsakA突变体具有共同的性发育去抑制表型。然而,ΔsrkA突变体对氧化应激不敏感,事实上,srkA失活部分抑制了ΔsakA突变体分生孢子对H2O2、叔丁基过氧化氢(t-BOOH)和甲萘醌的敏感性。在无应激条件下,SrkA在细胞质中与未磷酸化的SakA发生物理相互作用。我们发现,H2O2诱导线粒体形态发生剧烈变化,这与裂变过程一致,并且取决于SakA的存在,SrkA会重新定位到细胞核和线粒体。在休眠孢子的正常无性发育过程中也观察到SakA-SrkA核相互作用。通过将SakA和SrkA的S标签下拉及纯化研究与质谱分析相结合,我们发现SakA与SrkA、应激MAPK MpkC、PPT1型磷酸酶AN6892以及其他参与细胞周期调控、DNA损伤应答、mRNA稳定性和蛋白质合成、线粒体功能及其他应激相关应答的蛋白质相互作用。我们提出,氧化应激诱导DNA损伤和线粒体裂变,并且SakA和SrkA在应激期间介导细胞周期停滞并调节线粒体功能。我们的结果为SakA和SrkA在氧化应激和发育过程中调节细胞生理重塑的机制提供了新见解。

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本文引用的文献

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Fungal responses to reactive oxygen species.真菌对活性氧的反应。
Med Mycol. 2006 Sep 1;44(Supplement_1):S101-S107. doi: 10.1080/13693780600900080.
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