Michael Smith Laboratories, University of British Columbia, Vancouver, BC, V6T 1Z4, Canada.
Department of Microbiology and Immunology, University of British Columbia, Vancouver, BC, V6T 1Z4, Canada.
Mol Plant Pathol. 2017 Dec;18(9):1222-1237. doi: 10.1111/mpp.12486. Epub 2016 Nov 14.
The ability of biotrophic fungi to metabolically adapt to the host environment is a critical factor in fungal diseases of crop plants. In this study, we analysed the transcriptome of maize tumours induced by Ustilago maydis to identify key features underlying metabolic shifts during disease. Among other metabolic changes, this analysis highlighted modifications during infection in the transcriptional regulation of carbohydrate allocation and starch metabolism. We confirmed the relevance of these changes by establishing that symptom development was altered in an id1 (indeterminate1) mutant that showed increased accumulation of sucrose as well as being defective in the vegetative to reproductive transition. We further established the relevance of specific metabolic functions related to carbohydrate allocation by assaying disease in su1 (sugary1) mutant plants with altered starch metabolism and in plants treated with glucose, sucrose and silver nitrate during infection. We propose that specific regulatory and metabolic changes influence the balance between susceptibility and resistance by altering carbon allocation to promote fungal growth or to influence plant defence. Taken together, these studies reveal key aspects of metabolism that are critical for biotrophic adaptation during the maize-U. maydis interaction.
生物寄生真菌适应宿主环境的能力是作物真菌病害的一个关键因素。在这项研究中,我们分析了玉米瘤由 Ustilago maydis 诱导的转录组,以鉴定在疾病过程中代谢转变的关键特征。在其他代谢变化中,这一分析强调了在侵染过程中碳水化合物分配和淀粉代谢的转录调控的变化。我们通过建立症状发展在表现出蔗糖积累增加并且在营养生长到生殖生长的转变中缺陷的 id1(不定型 1)突变体中发生改变,证实了这些变化的相关性。我们通过在具有改变的淀粉代谢的 su1(甜 1)突变体植物和在侵染过程中用葡萄糖、蔗糖和硝酸银处理的植物中进行疾病测定,进一步确定了与碳水化合物分配相关的特定代谢功能的相关性。我们提出,特定的调节和代谢变化通过改变碳分配来促进真菌生长或影响植物防御,从而影响易感性和抗性之间的平衡。总之,这些研究揭示了在玉米与 U. maydis 相互作用过程中生物寄生适应的关键代谢方面。