Agrobacterium-mediated genetic transformation not only represents a technology of choice to genetically manipulate plants, but it also serves as a model system to study mechanisms employed by invading pathogens to counter the myriad defenses mounted against them by the host cell. Here, we uncover a new layer of plant defenses that is targeted by A. tumefaciens to facilitate infection. We show that the Agrobacterium F-box effector VirF, which is exported into the host cell, recognizes an Arabidopsis transcription factor VFP4 and targets it for proteasomal degradation. We hypothesize that VFP4 resists Agrobacterium infection and that the bacterium utilizes its VirF effector to degrade VFP4 and thereby mitigate the VFP4-based defense. Indeed, loss-of-function mutations in VFP4 resulted in differential expression of numerous biotic stress-response genes, suggesting that one of the functions of VFP4 is to control a spectrum of plant defenses, including those against Agrobacterium tumefaciens. We identified one such gene, ATL31, known to mediate resistance to bacterial pathogens. ATL31 was transcriptionally repressed in VFP4 loss-of-function plants and activated in VFP4 gain-of-function plants. Gain-of-function lines of VFP4 and ATL31 exhibited recalcitrance to Agrobacterium tumorigenicity, suggesting that A. tumefaciens may utilize the host ubiquitin/proteasome system to destabilize transcriptional regulators of the host disease response machinery.

译文

农杆菌介导的遗传转化不仅代表了一种遗传操纵植物的选择技术,而且还作为一个模型系统来研究入侵病原体所采用的机制,以对抗宿主细胞对其进行的无数防御。在这里,我们发现了一种新的植物防御层,该防御层是由a.tumefaciens靶向的,以促进感染。我们表明,输出到宿主细胞中的农杆菌F-box效应子病毒可识别拟南芥转录因子VFP4,并将其靶向蛋白酶体降解。我们假设VFP4抵抗农杆菌感染,并且该细菌利用其VirF效应物降解VFP4,从而减轻VFP4-based防御。实际上,VFP4中的功能丧失突变导致许多生物胁迫反应基因的差异表达,这表明VFP4的功能之一是控制一系列植物防御,包括针对根癌农杆菌的防御。我们鉴定了一个这样的基因,ATL31,已知介导对细菌病原体的抗性。ATL31在VFP4功能丧失植物中被转录抑制,在VFP4功能获得植物中被激活。VFP4和ATL31的功能获得系表现出对农杆菌致瘤性的顽抗性,这表明根癌A可能利用宿主泛素/蛋白酶体系统来破坏宿主疾病反应机制的转录调节剂。

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