锌指转录因子FgMsn2调控小麦赤霉病菌(Fusarium graminearum)的胁迫反应、致病性和代谢。

IF 5.8
Daiyuan Sun, Chengliang Li, Liangyuan Zhao, Jinling Yang, Haijuan Li, Kaili Duan, Chenfang Wang, Guanghui Wang
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引用次数: 0

摘要

环境胁迫适应对植物真菌病原菌的生存和致病性至关重要。在这项研究中,我们在小麦镰刀菌中发现了一个转录因子FgMsn2,它是出芽酵母中Msn2的同源物。结构分析表明,C2H2锌指结构域在真菌中高度保守,而其他区域保守程度较低,提示FgMsn2可能具有种特异性功能。随后,我们发现FgMsn2对营养生长和分生机制至关重要。FgMSN2的缺失严重降低了脱氧雪腐烯醇(DON)的产生和致病性,同时增强了对氧化、渗透、细胞壁和膜胁迫的耐受性。此外,我们的RNA-seq分析显示,FgMsn2调控了参与能量代谢、脂质代谢和应激反应的基因,强调了其在维持代谢平衡和应激适应中的作用。值得注意的是,FgMsn2影响线粒体形态,因为FgMsn2突变体表现出线粒体结构破坏和ATP产生减少。Fgmsn2突变体也表现出脂滴积累增加,表明Fgmsn2在脂质代谢中的作用。综上所述,FgMsn2在真菌发育、植物感染、胁迫反应和代谢中起关键调节作用。我们的研究为真菌逆境适应和致病性的分子机制提供了有价值的见解,为开发更有效的杀菌剂和疾病管理策略提供了潜在的目标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
FgMsn2, a zinc finger transcription factor, regulates stress responses, pathogenicity and metabolism in wheat scab fungus Fusarium graminearum.

Environmental stress adaptation is crucial for the survival and pathogenicity of plant fungal pathogens. In this study, we identified a transcription factor FgMsn2 in Fusarium graminearum, an ortholog of Msn2 in budding yeast. Structural analysis showed that the C2H2 zinc-finger domain is highly conserved across fungi, while other regions are less conserved, suggesting that FgMsn2 may have species-specific functions. Subsequently, we revealed that FgMsn2 is critical for vegetative growth, and conidiogenesis. Deletion of FgMSN2 severely reduced the deoxynivalenol (DON) production and pathogenicity, while enhancing tolerance to oxidative, osmotic, cell wall and membrane stresses. Furthermore, our RNA-seq analysis revealed that FgMsn2 regulates genes involved in energy metabolism, lipid metabolism and stress responses, emphasizing its role in maintaining metabolic balance and stress adaptability. Notably, FgMsn2 influences mitochondrial morphology, as the Fgmsn2 mutant exhibited disrupted mitochondrial structures and reduced ATP production. The Fgmsn2 mutant also showed increased lipid droplet accumulation, indicating the FgMsn2's role in lipid metabolism. Taken together, the FgMsn2 serves as a key regulator in fungal development, plant infection, stress responses, and metabolism. Our study provides valuable insights into the molecular mechanisms of fungal stress adaptation and pathogenicity, suggesting a potential target for the development of more effective fungicides and disease management strategies.

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