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水杨酸调控小麦对赤霉病的基础抗性。

Salicylic acid regulates basal resistance to Fusarium head blight in wheat.

机构信息

Department of Biological Sciences, University of North Texas, Denton 76230, USA.

出版信息

Mol Plant Microbe Interact. 2012 Mar;25(3):431-9. doi: 10.1094/MPMI-09-11-0232.

Abstract

Fusarium head blight (FHB) is a destructive disease of cereal crops such as wheat and barley. Previously, expression in wheat of the Arabidopsis NPR1 gene (AtNPR1), which encodes a key regulator of salicylic acid (SA) signaling, was shown to reduce severity of FHB caused by Fusarium graminearum. It was hypothesized that SA signaling contributes to wheat defense against F. graminearum. Here, we show that increased accumulation of SA in fungus-infected spikes correlated with elevated expression of the SA-inducible pathogenesis-related 1 (PR1) gene and FHB resistance. In addition, FHB severity and mycotoxin accumulation were curtailed in wheat plants treated with SA and in AtNPR1 wheat, which is hyper-responsive to SA. In support of a critical role for SA in basal resistance to FHB, disease severity was higher in wheat expressing the NahG-encoded salicylate hydroxylase, which metabolizes SA. The FHB-promoting effect of NahG was overcome by application of benzo (1,2,3), thiadiazole-7 carbothioic acid S-methyl ester, a synthetic functional analog of SA, thus confirming an important role for SA signaling in basal resistance to FHB. We further demonstrate that jasmonate signaling has a dichotomous role in wheat interaction with F. graminearum, constraining activation of SA signaling during early stages of infection and promoting resistance during the later stages of infection.

摘要

镰刀菌穗腐病(FHB)是一种破坏性的谷类作物疾病,如小麦和大麦。此前,拟南芥 NPR1 基因(AtNPR1)在小麦中的表达被证明可以降低禾谷镰刀菌引起的 FHB 的严重程度,AtNPR1 基因编码水杨酸(SA)信号的关键调节剂。据推测,SA 信号通路有助于小麦抵御禾谷镰刀菌。在这里,我们表明,在真菌感染的穗中 SA 的积累增加与水杨酸诱导的病程相关蛋白 1(PR1)基因的表达升高和 FHB 抗性相关。此外,在用 SA 处理的小麦植株和对 SA 超敏的 AtNPR1 小麦中,FHB 严重程度和真菌毒素积累受到抑制。支持 SA 在基础抗 FHB 中的关键作用,在表达编码水杨酸羟化酶的 NahG 的小麦中,SA 被代谢,疾病严重程度更高。用苯并(1,2,3)噻二唑-7 羧酸 S-甲酯,一种水杨酸的合成功能类似物,克服了 NahG 的 FHB 促进作用,从而证实了 SA 信号通路在基础抗 FHB 中的重要作用。我们进一步证明茉莉酸信号在小麦与禾谷镰刀菌的相互作用中具有双重作用,在感染的早期阶段限制 SA 信号的激活,并在感染的后期阶段促进抗性。

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