Department of Plant Pathology and Microbiology, Hebrew University, Rehovot, 7610001, Israel.
Department of Biochemistry and Molecular Biology, University of Massachusetts, Amherst, MA 01003, USA.
Fungal Biol. 2019 May;123(5):408-422. doi: 10.1016/j.funbio.2019.03.007. Epub 2019 Apr 6.
DNA damage can cause mutations that in fungal plant pathogens lead to hypervirulence and resistance to pesticides. Almost nothing is known about the response of these fungi to DNA damage. We performed transcriptomic and phosphoproteomic analyses of Fusarium oxysporum exposed to methyl methanesulfonate (MMS). At the RNA level we observe massive induction of DNA repair pathways including the global genome nucleotide excision. Cul3, Cul4, several Ubiquitin-like ligases and components of the proteasome are significantly induced. In agreement, we observed drug synergism between a proteasome inhibitor and MMS. While our data suggest that Yap1 and Xbp1 networks are similarly activated in response to damage in yeast and F. oxysporum we were able to observe modules that were MMS-responsive in F. oxysporum and not in yeast. These include transcription/splicing modules that are upregulated and respiration that is down-regulated. In agreement, MMS treated cells are much more sensitive to a respiration inhibitor. At the phosphoproteomic level, Adenylate cyclase, which generates cAMP, is phosphorylated in response to MMS and forms a network of phosphorylated proteins that include cell cycle regulators and several MAPKs. Our analysis provides a starting point in understanding how genomic changes in response to DNA damage occur in Fusarium species.
DNA 损伤可导致突变,使真菌植物病原体变得更加毒力,并对农药产生抗性。我们对这些真菌如何应对 DNA 损伤几乎一无所知。我们对暴露于甲磺酸甲酯 (MMS) 的尖孢镰刀菌进行了转录组和磷酸化蛋白质组分析。在 RNA 水平上,我们观察到大量诱导 DNA 修复途径,包括全基因组核苷酸切除。Cul3、Cul4、几种泛素样连接酶和蛋白酶体的成分显著诱导。一致地,我们观察到蛋白酶体抑制剂和 MMS 之间存在药物协同作用。虽然我们的数据表明,Yap1 和 Xbp1 网络在酵母和 F.oxysporum 中对损伤的反应类似,但我们能够观察到在 F.oxysporum 中对 MMS 有反应而在酵母中没有反应的模块。这些模块包括转录/剪接模块上调和呼吸作用下调。一致地,用 MMS 处理的细胞对呼吸抑制剂更敏感。在磷酸化蛋白质组水平上,生成 cAMP 的腺苷酸环化酶对 MMS 有反应并形成一个磷酸化蛋白质网络,包括细胞周期调节剂和几种 MAPK。我们的分析为理解真菌物种如何响应 DNA 损伤发生基因组变化提供了一个起点。