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An Avirulent Strain of Soybean Mosaic Virus Reverses the Defensive Effect of Abscisic Acid in a Susceptible Soybean Cultivar

机译:大豆花叶病毒无毒株逆转脱落酸在易感大豆品种中的防御作用

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摘要

In soybean cultivar L29, the Rsv3 gene is responsible for extreme resistance (ER) against the soybean mosaic virus avirulent strain G5H, but is ineffective against the virulent strain G7H. Part of this ER is attributed to the rapid increase in abscisic acid (ABA) and callose, and to the rapid induction of several genes in the RNA-silencing pathway. Whether these two defense mechanisms are correlated or separated in the ER is unknown. Here, we found that ABA treatment of L29 plants increased the expression of several antiviral RNA-silencing genes as well as the PP2C3a gene, which was previously shown to increase callose accumulation; as a consequence, ABA increased the resistance of L29 plants to G7H. The effect of ABA treatment on these genes was weaker in the rsv3-null cultivar (Somyungkong) than in L29. Besides, G5H-infection of Somyungkong plants subverted the effect of ABA leading to reduced callose accumulation and decreased expression of several RNA-silencing genes, which resulted in increased susceptibility to G5H infection. ABA treatment, however, still induced some resistance to G7H in Somyungkong, but only AGO7b was significantly induced. Our data suggest that Rsv3 modulates the effect of ABA on these two resistance mechanisms, i.e., callose accumulation and the antiviral RNA-silencing pathway, and that in the absence of Rsv3, some strains can reverse the effect of ABA and thereby facilitate their replication and spread.
机译:在大豆L29品种中,Rsv3基因对大豆花叶病毒无毒力G5H菌株具有极强的抗性(ER),但对有毒力的G7H菌株无效。该ER的一部分归因于脱落酸(ABA)和call的迅速增加,以及RNA沉默途径中几个基因的快速诱导。这两种防御机制在ER中是相关还是分开是未知的。在这里,我们发现ABA处理L29植物增加了一些抗病毒RNA沉默基因以及PP2C3a基因的表达,而PP2C3a基因以前被证明会增加call的积累。结果,ABA增加了L29植物对G7H的抗性。 rsv3无效品种(Somyungkong)中ABA处理对这些基因的影响要弱于L29。此外,Somyungkong植物的G5H感染颠覆了ABA的作用,导致降低了call的积累并降低了几种RNA沉默基因的表达,从而导致对G5H感染的敏感性增加。然而,ABA处理仍在小模空诱导了对G7H的抗药性,但只有AGO7b被显着诱导。我们的数据表明Rsv3调节ABA对这两个抗性机制的作用,即call质积累和抗病毒RNA沉默途径,并且在没有Rsv3的情况下,某些菌株可以逆转ABA的作用,从而促进它们的复制和传播。

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