Department of Plant Physiology, RWTH Aachen University, 52056 Aachen, Germany.
BMC Plant Biol. 2014 Jan 14;14:26. doi: 10.1186/1471-2229-14-26.
Head blast caused by the fungal plant pathogen Magnaporthe oryzae is an upcoming threat for wheat and barley cultivation. We investigated the nonhost response of barley to an isolate of the Magnaporthe species complex which is pathogenic on Pennisetum spp. as a potential source for novel resistance traits.
Array experiments identified a barley gene encoding a putative cytochrome P450 monooxygenase whose transcripts accumulate to a higher concentration in the nonhost as compared to the host interaction. The gene clusters within the CYP96 clade of the P450 plant gene family and is designated as CYP96B22. Expression of CYP96B22 was triggered during the ectoparasitic growth of the pathogen on the outside of the leaf. Usage of a fungicidal treatment and a Magnaporthe mutant confirmed that penetration was not necessary for this early activation of CYP96B22. Transcriptional silencing of CYP96B22 using Barley stripe mosaic virus led to a decrease in penetration resistance of barley plants to Magnaporthe host and nonhost isolates. This phenotype seems to be specific for the barley-Magnaporthe interaction, since penetration of the adapted barley powdery mildew fungus was not altered in similarly treated plants.
Taken together our results suggest a cross-talk between barley and Magnaporthe isolates across the plant surface. Since members of the plant CYP96 family are known to be involved in synthesis of epicuticular waxes, these substances or their derivatives might act as signal components. We propose a functional overlap of CYP96B22 in the execution of penetration resistance during basal and nonhost resistance of barley against different Magnaporthe species.
由真菌病原体稻瘟病菌引起的头部爆炸是小麦和大麦种植的一个新威胁。我们研究了大麦对一种稻瘟病菌复合体分离株的非寄主反应,该分离株对 Pennisetum spp. 具有致病性,是潜在的新型抗性特征来源。
基因芯片实验鉴定了一个编码假定细胞色素 P450 单加氧酶的大麦基因,该基因的转录物在非寄主与寄主相互作用中积累的浓度更高。该基因位于 P450 植物基因家族的 CYP96 簇内,被指定为 CYP96B22。在病原体在叶片外部的外寄生生长过程中,CYP96B22 的表达被触发。使用杀菌剂处理和稻瘟病菌突变体证实,这种早期激活 CYP96B22 不需要穿透。使用大麦条纹花叶病毒对 CYP96B22 进行转录沉默导致大麦对稻瘟病菌宿主和非宿主分离株的穿透抗性降低。这种表型似乎是大麦-稻瘟病菌相互作用所特有的,因为在同样处理的植物中,适应的大麦白粉菌的穿透没有改变。
综上所述,我们的结果表明大麦和稻瘟病菌分离株在植物表面之间存在交叉对话。由于植物 CYP96 家族的成员已知参与了角质层蜡的合成,这些物质或其衍生物可能作为信号成分发挥作用。我们提出 CYP96B22 在大麦对不同稻瘟病菌物种的基础和非寄主抗性中的穿透抗性执行中具有功能重叠。