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宿主蛋白 BSL1 与疫霉属 RXLR 效应子 AVR2 和茄属免疫受体 R2 相互作用,介导抗病性。

Host protein BSL1 associates with Phytophthora infestans RXLR effector AVR2 and the Solanum demissum Immune receptor R2 to mediate disease resistance.

机构信息

The Sainsbury Laboratory, Norwich Research Park, Norwich NR4 7UH, United Kingdom.

出版信息

Plant Cell. 2012 Aug;24(8):3420-34. doi: 10.1105/tpc.112.099861. Epub 2012 Aug 10.

Abstract

Plant pathogens secrete effector proteins to modulate plant immunity and promote host colonization. Plant nucleotide binding leucine-rich repeat (NB-LRR) immunoreceptors recognize specific pathogen effectors directly or indirectly. Little is known about how NB-LRR proteins recognize effectors of filamentous plant pathogens, such as Phytophthora infestans. AVR2 belongs to a family of 13 sequence-divergent P. infestans RXLR effectors that are differentially recognized by members of the R2 NB-LRR family in Solanum demissum. We report that the putative plant phosphatase BSU-LIKE PROTEIN1 (BSL1) is required for R2-mediated perception of AVR2 and resistance to P. infestans. AVR2 associates with BSL1 and mediates the interaction of BSL1 with R2 in planta, possibly through the formation of a ternary complex. Strains of P. infestans that are virulent on R2 potatoes express an unrecognized form, Avr2-like (referred to as A2l). A2L can still interact with BSL1 but does not promote the association of BSL1 with R2. Our findings show that recognition of the P. infestans AVR2 effector by the NB-LRR protein R2 requires the putative phosphatase BSL1. This reveals that, similar to effectors of phytopathogenic bacteria, recognition of filamentous pathogen effectors can be mediated via a host protein that interacts with both the effector and the NB-LRR immunoreceptor.

摘要

植物病原体分泌效应蛋白来调节植物免疫并促进宿主定殖。植物核苷酸结合亮氨酸重复(NB-LRR)免疫受体直接或间接地识别特定的病原体效应蛋白。对于 NB-LRR 蛋白如何识别丝状植物病原体(如致病疫霉)的效应蛋白,我们知之甚少。AVR2 属于 13 个序列不同的 P. infestans RXLR 效应蛋白家族的一员,这些效应蛋白被 Solanum demissum 中的 R2 NB-LRR 家族成员特异性识别。我们报告称,假定的植物磷酸酶 BSU-LIKE PROTEIN1(BSL1)是 R2 介导的 AVR2 识别和对致病疫霉抗性所必需的。AVR2 与 BSL1 结合,并介导 BSL1 在植物体内与 R2 的相互作用,可能通过形成三元复合物。在 R2 马铃薯上具有毒力的致病疫霉菌株表达一种未被识别的形式,Avr2-like(称为 A2l)。A2L 仍可以与 BSL1 相互作用,但不促进 BSL1 与 R2 的关联。我们的研究结果表明,NB-LRR 蛋白 R2 对致病疫霉 AVR2 效应蛋白的识别需要假定的磷酸酶 BSL1。这表明,与植物病原菌的效应蛋白类似,丝状病原体效应蛋白的识别可以通过与效应蛋白和 NB-LRR 免疫受体都相互作用的宿主蛋白来介导。

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