College of Plant Protection, Shenyang Agricultural University, Shenyang, 110866, China.
Planta. 2022 Jul 22;256(3):46. doi: 10.1007/s00425-022-03963-7.
ΔClnps6 induced iron redistribution in maize B73 leaf cells and resulted in reactive oxygen species (ROS) burst to enhance plant resistance against Curvularia lunata. Iron is an indispensable co-factor of various crucial enzymes that are involved in cellular metabolic processes and energy metabolism in eukaryotes. For this reason, plants and pathogens compete for iron to maintain their iron homeostasis, respectively. In our previous study, ΔClnps6, the extracellular siderophore biosynthesis deletion mutant of Curvularia lunata, was sensitive to exogenous hydrogen peroxide and virulence reduction. However, the mechanism was not studied. Here, we report that maize B73 displayed highly resistance to ΔClnps6. The plants recruited more iron at cell wall appositions (CWAs) to cause ROS bursts. Intracellular iron deficiency induced by iron redistribution originated form up-regulated expression of genes involved in intracellular iron consumption in leaves and absorption in roots. The RNA-sequencing data also showed that the expression of respiratory burst oxidase homologue (ZmRBOH4) and NADP-dependent malic enzyme 4 (ZmNADP-ME4) involved in ROS production was up-regulated in maize B73 after ΔClnps6 infection. Simultaneously, jasmonic acid (JA) biosynthesis genes lipoxygenase (ZmLOX), allene oxide synthase (ZmAOS), GA degradation gene gibberellin 2-beta-dioxygenase (ZmGA2OX6) and ABA degradation genes abscisic acid hydroxylase (ZmABH1, ZmABH2) involved in iron homeostasis were up-regulated expression. Ferritin1 (ZmFER1) positive regulated maize resistance against C. lunata via ROS burst under Fe-limiting conditions. Overall, our results showed that iron played vital roles in activating maize resistance in B73-C. lunata interaction.
ΔClnps6 诱导玉米 B73 叶片细胞中铁的重新分布,导致活性氧(ROS)爆发,从而增强植物对旋孢腔菌的抗性。铁是真核生物中参与细胞代谢过程和能量代谢的各种关键酶的必需辅助因子。因此,植物和病原体分别为维持铁稳态而竞争铁。在我们之前的研究中,旋孢腔菌的细胞外铁载体生物合成缺失突变体ΔClnps6 对过氧化氢敏感,毒性降低。然而,其机制尚未研究。在这里,我们报告玉米 B73 对ΔClnps6 表现出高度抗性。植物在细胞壁附着处(CWAs)募集更多的铁,导致 ROS 爆发。铁重新分配导致细胞内铁缺乏,这是由叶片中参与细胞内铁消耗和根吸收的基因上调表达引起的。RNA-seq 数据还表明,在ΔClnps6 感染后,与 ROS 产生相关的呼吸爆发氧化酶同源物(ZmRBOH4)和 NADP 依赖性苹果酸酶 4(ZmNADP-ME4)的表达上调。同时,茉莉酸(JA)生物合成基因脂氧合酶(ZmLOX)、丙烯氧合酶(ZmAOS)、赤霉素降解基因赤霉素 2-β-双加氧酶(ZmGA2OX6)和脱落酸降解基因脱落酸羟化酶(ZmABH1、ZmABH2)参与铁稳态的基因表达上调。在缺铁条件下,铁蛋白 1(ZmFER1)通过 ROS 爆发正向调控玉米对旋孢腔菌的抗性。总的来说,我们的结果表明,铁在激活玉米 B73-旋孢腔菌互作中的抗性方面发挥了重要作用。