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但携带对西瓜花叶病毒抗性的甜瓜中的无毒决定子并非如此,尽管它们含有一个共同的遗传决定子。

but not is the avirulence determinant in melon carrying the resistance against watermelon mosaic virus, although they contain a common genetic determinant.

作者信息

Sun Zhen, Wu Yu-Xuan, Liu Ling-Zhi, Tian Yan-Ping, Li Xiang-Dong, Geng Chao

机构信息

Department of Plant Pathology, Shandong Provincial Key Laboratory of Agricultural Microbiology, College of Plant Protection, Shandong Agricultural University, Tai'an, Shandong, China.

Institute of Plant Protection, Shandong Academy of Agricultural Sciences, Ji'nan, Shandong, China.

出版信息

J Virol. 2024 Jun 13;98(6):e0050724. doi: 10.1128/jvi.00507-24. Epub 2024 May 22.

Abstract

Viruses employ a series of diverse translational strategies to expand their coding capacity, which produces viral proteins with common domains and entangles virus-host interactions. P3N-PIPO, which is a transcriptional slippage product from the cistron, is a potyviral protein dedicated to intercellular movement. Here, we show that P3N-PIPO from watermelon mosaic virus (WMV) triggers cell death when transiently expressed in accession PI 414723 carrying the resistance gene. Surprisingly, expression of the P3N domain, shared by both P3N-PIPO and P3, can alone induce cell death, whereas expression of P3 fails to activate cell death in PI 414723. Confocal microscopy analysis revealed that P3N-PIPO targets plasmodesmata (PD) and P3N associates with PD, while P3 localizes in endoplasmic reticulum in melon cells. We also found that mutations in residues L35, L38, P41, and I43 of the P3N domain individually disrupt the cell death induced by P3N-PIPO, but do not affect the PD localization of P3N-PIPO. Furthermore, WMV mutants with L35A or I43A can systemically infect PI 414723 plants. These key residues guide us to discover some WMV isolates potentially breaking the resistance. Through searching the NCBI database, we discovered some WMV isolates with variations in these key sites, and one naturally occurring I43V variation enables WMV to systemically infect PI 414723 plants. Taken together, these results demonstrate that P3N-PIPO, but not P3, is the avirulence determinant recognized by Wmr, although the shared N terminal P3N domain can alone trigger cell death.IMPORTANCEThis work reveals a novel viral avirulence (Avr) gene recognized by a resistance (R) gene. This novel viral Avr gene is special because it is a transcriptional slippage product from another virus gene, which means that their encoding proteins share the common N-terminal domain but have distinct C-terminal domains. Amazingly, we found that it is the common N-terminal domain that determines the Avr-R recognition, but only one of the viral proteins can be recognized by the R protein to induce cell death. Next, we found that these two viral proteins target different subcellular compartments. In addition, we discovered some virus isolates with variations in the common N-terminal domain and one naturally occurring variation that enables the virus to overcome the resistance. These results show how viral proteins with common domains interact with a host resistance protein and provide new evidence for the arms race between plants and viruses.

摘要

病毒采用一系列多样的翻译策略来扩展其编码能力,这会产生具有共同结构域的病毒蛋白,并使病毒与宿主的相互作用变得复杂。P3N-PIPO是顺反子的转录滑移产物,是一种专门用于细胞间移动的马铃薯Y病毒属蛋白。在这里,我们表明,西瓜花叶病毒(WMV)的P3N-PIPO在携带抗性基因的PI 414723品种中瞬时表达时会引发细胞死亡。令人惊讶的是,P3N-PIPO和P3共有的P3N结构域单独表达就能诱导细胞死亡,而P3的表达在PI 414723中却无法激活细胞死亡。共聚焦显微镜分析显示,P3N-PIPO定位于胞间连丝(PD),P3N与PD相关联,而P3定位于甜瓜细胞的内质网中。我们还发现,P3N结构域中L35、L38、P41和I43位点的突变分别破坏了P3N-PIPO诱导的细胞死亡,但不影响P3N-PIPO在PD处的定位。此外,具有L35A或I43A突变的WMV突变体能够系统感染PI 414723植株。这些关键位点引导我们发现了一些可能突破该抗性的WMV分离株。通过搜索NCBI数据库,我们发现了一些在这些关键位点存在变异的WMV分离株,其中一个自然发生的I43V变异使WMV能够系统感染PI 414723植株。综上所述,这些结果表明,P3N-PIPO而非P3是被Wmr识别的无毒决定子,尽管共有的N端P3N结构域单独就能触发细胞死亡。

重要性

这项工作揭示了一个被抗性(R)基因识别的新型病毒无毒(Avr)基因。这个新型病毒Avr基因很特别,因为它是另一个病毒基因的转录滑移产物,这意味着它们编码的蛋白质具有共同的N端结构域,但C端结构域不同。令人惊讶的是,我们发现正是这个共同的N端结构域决定了Avr-R识别,但只有一种病毒蛋白能被R蛋白识别以诱导细胞死亡。接下来,我们发现这两种病毒蛋白靶向不同的亚细胞区室。此外,我们发现了一些在共同N端结构域存在变异的病毒分离株,以及一个能使病毒克服抗性的自然发生变异。这些结果展示了具有共同结构域的病毒蛋白如何与宿主抗性蛋白相互作用,并为植物与病毒之间的军备竞赛提供了新证据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/67f4/11237411/619191ccab8c/jvi.00507-24.f001.jpg

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