Institute of Biotechnology, Zhejiang University, Hangzhou 310058, China; Department of Plant Pathology, University of California, Davis 95616, CA USA.
Collaborative Innovation Center of Sustainable Forestry in Southern China, College of Forestry, Nanjing Forestry University, Nanjing 210037, China.
Microbiol Res. 2019 Feb;219:94-109. doi: 10.1016/j.micres.2018.11.007. Epub 2018 Nov 23.
The tangerine pathotype of A. alternata, which produces a unique host-selective ACT toxin causes brown spots on citrus leaves and fruits. In this study, we report a methionine biosynthesis regulator (MetR), which belong to bZIP transcription factor, is required for methionine metabolism, oxidative stress tolerance and pathogenicity. We generated two ΔAaMetR mutants in the tangerine pathotype of Alternaria alternata and investigated the resulting mutant phenotypes. The ΔAaMetR disruption mutant grew poorly in the absence of methionine and unable to produce conidia. Furthermore, pathogenicity tests have shown that ΔAaMetR mutant on their tangerine host can neither penetrate nor cause disease. These ΔAaMetR mutants exhibit an increased sensitivity to exogenous HO and many ROS generating oxidants. To elucidate the transcription network of AaMetR, we performed RNA-Seq experiments on wild-type and ΔAaMetR mutant and identified genes that were differentially expressed between the two genotypes. Transcriptome data demonstrated that AaMetR contributes in many other biological processes including ROS detoxification, sulfur transfer, and amino acid metabolism. Comparative transcriptome analysis indicated that the ΔAaMetR mutant up-regulated several genes involved in cysteine and methionine metabolism. In conclusion, our results highlight the global regulatory role of AaMetR in cysteine and methionine metabolism and provide new insights into the crucial role of ROS detoxification, sporulation and pathogenicity in the tangerine pathotype of A. alternata.
轮枝镰孢的蜜橘专化型会产生一种独特的寄主选择性 ACT 毒素,导致柑橘叶片和果实出现褐斑。在这项研究中,我们报告了一个蛋氨酸生物合成调节剂(MetR),它属于 bZIP 转录因子,是蛋氨酸代谢、氧化应激耐受和致病性所必需的。我们在轮枝镰孢的蜜橘专化型中生成了两个ΔAaMetR 突变体,并研究了由此产生的突变体表型。ΔAaMetR 缺失突变体在缺乏蛋氨酸的情况下生长不良,无法产生分生孢子。此外,致病性测试表明,ΔAaMetR 突变体在其蜜橘寄主上既不能穿透也不能致病。这些ΔAaMetR 突变体对外源 HO 和许多产生 ROS 的氧化剂表现出更高的敏感性。为了阐明 AaMetR 的转录网络,我们对野生型和ΔAaMetR 突变体进行了 RNA-Seq 实验,鉴定了两种基因型之间差异表达的基因。转录组数据表明,AaMetR 参与了许多其他生物学过程,包括 ROS 解毒、硫转移和氨基酸代谢。比较转录组分析表明,ΔAaMetR 突变体上调了几个参与半胱氨酸和蛋氨酸代谢的基因。总之,我们的结果强调了 AaMetR 在半胱氨酸和蛋氨酸代谢中的全局调控作用,并为 ROS 解毒、产孢和致病性在轮枝镰孢的蜜橘专化型中的关键作用提供了新的见解。