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马铃薯Y病毒属沉默抑制子P0靶向AGO蛋白进行降解。

The Polerovirus silencing suppressor P0 targets ARGONAUTE proteins for degradation.

作者信息

Baumberger Nicolas, Tsai Ching-Hsui, Lie Miranda, Havecker Ericka, Baulcombe David C

机构信息

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

出版信息

Curr Biol. 2007 Sep 18;17(18):1609-14. doi: 10.1016/j.cub.2007.08.039.

Abstract

Plant and animal viruses encode suppressor proteins of an adaptive immunity mechanism in which viral double-stranded RNA is processed into 21-25 nt short interfering (si)RNAs. The siRNAs guide ARGONAUTE (AGO) proteins so that they target viral RNA. Most viral suppressors bind long dsRNA or siRNAs and thereby prevent production of siRNA or binding of siRNA to AGO. The one exception is the 2b suppressor of Cucumoviruses that binds to and inhibits AGO1. Here we describe a novel suppressor mechanism in which a Polerovirus-encoded F box protein (P0) targets the PAZ motif and its adjacent upstream sequence in AGO1 and mediates its degradation. F box proteins are components of E3 ubiquitin ligase complexes that add polyubiquitin tracts on selected lysine residues and thereby mark a protein for proteasome-mediated degradation. With P0, however, the targeted degradation of AGO is insensitive to inhibition of the proteasome, indicating that the proteasome is not involved. We also show that P0 does not block a mobile signal of silencing, indicating that the signal molecule does not have AGO protein components. The ability of P0 to block silencing without affecting signal movement may contribute to the phloem restriction of viruses in the Polerovirus group.

摘要

植物和动物病毒编码适应性免疫机制的抑制蛋白,在该机制中,病毒双链RNA被加工成21 - 25个核苷酸的短干扰(si)RNA。这些siRNA引导AGO(ARGONAUTE)蛋白,使其靶向病毒RNA。大多数病毒抑制因子结合长双链RNA或siRNA,从而阻止siRNA的产生或siRNA与AGO的结合。唯一的例外是黄瓜花叶病毒的2b抑制因子,它结合并抑制AGO1。在这里,我们描述了一种新的抑制机制,其中一种由马铃薯卷叶病毒编码的F盒蛋白(P0)靶向AGO1中的PAZ基序及其相邻的上游序列,并介导其降解。F盒蛋白是E3泛素连接酶复合物的组成部分,该复合物在选定的赖氨酸残基上添加多聚泛素链,从而标记一个蛋白质以便蛋白酶体介导的降解。然而,对于P0来说,AGO的靶向降解对蛋白酶体的抑制不敏感,这表明蛋白酶体不参与其中。我们还表明,P0不会阻断沉默的移动信号,这表明信号分子不具有AGO蛋白成分。P0在不影响信号移动的情况下阻断沉默的能力可能有助于马铃薯卷叶病毒组病毒在韧皮部的限制。

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