VPg α1-α2环路中天然存在的氨基酸取代使VPg能够重新劫持西瓜中的另一种eIF4E异构体eIF(iso)4E,从而打破了eIF4E介导的对PRSV的抗性。

IF 4.8 1区 农林科学 Q1 PLANT SCIENCES Molecular plant pathology Pub Date : 2024-11-01 DOI:10.1111/mpp.70033
Ling-Xi Zhou, Xiao Yin, Zhi-Yong Yan, Jun Jiang, Yan-Ping Tian, Rui Gao, Chao Geng, Xiang-Dong Li
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引用次数: 0

摘要

植物抗性作为一种选择性压力,会影响病毒种群的适应性,从而导致抗性打破病毒株系的出现。对 potyviruses 的大多数隐性抗性都与真核翻译起始因子 4E(eIF4E)或其异构体的突变有关,这些突变破坏了它们与病毒基因组连接蛋白(VPg)的相互作用。我们在这项研究中发现,VPg α1-α2环是木瓜环斑病毒(PRSV)VPg中可变性最大的结构域,它是结合eIF4E的必要条件。此外,携带这些突变的 PRSV 能打破 eIF4E 介导的西瓜 PI 244019 对 PRSV 的抗性。我们进一步发现,西瓜 eIF(iso)4E 的帽子结合口袋中的氨基酸由 DNQS 替换为 GAAA 后,不能与天然氨基酸替换为 K105Q 或 E108G 的 PRSV VPg 相互作用。因此,我们的发现为培育抗PRSV抗性分离株的西瓜种质提供了一个精确的目标。
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The Naturally Occurring Amino Acid Substitution in the VPg α1-α2 Loop Breaks eIF4E-Mediated Resistance to PRSV by Enabling VPg to Re-Hijack Another eIF4E Isoform eIF(iso)4E in Watermelon.

Plant resistance, which acts as a selective pressure that affects viral population fitness, leads to the emergence of resistance-breaking virus strains. Most recessive resistance to potyviruses is related to the mutation of eukaryotic translation initiation factor 4E (eIF4E) or its isoforms that break their interactions with the viral genome-linked protein (VPg). In this study, we found that the VPg α1-α2 loop, which is essential for binding eIF4E, is the most variable domain of papaya ringspot virus (PRSV) VPg. PRSV VPg with the naturally occurring amino acid substitution of K105Q or E108G in the α1-α2 loop fails to interact with watermelon (Citrullus lanatus) eIF4E but interacts with watermelon eIF(iso)4E instead. Moreover, PRSV carrying these mutations can break the eIF4E-mediated resistance to PRSV in watermelon accession PI 244019. We further revealed that watermelon eIF(iso)4E with the amino acid substitutions of DNQS to GAAA in the cap-binding pocket could not interact with PRSV VPg with natural amino acid substitution of K105Q or E108G. Therefore, our finding provides a precise target for engineering watermelon germplasm resistant to resistance-breaking PRSV isolates.

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来源期刊
Molecular plant pathology
Molecular plant pathology 生物-植物科学
CiteScore
9.40
自引率
4.10%
发文量
120
审稿时长
6-12 weeks
期刊介绍: Molecular Plant Pathology is now an open access journal. Authors pay an article processing charge to publish in the journal and all articles will be freely available to anyone. BSPP members will be granted a 20% discount on article charges. The Editorial focus and policy of the journal has not be changed and the editorial team will continue to apply the same rigorous standards of peer review and acceptance criteria.
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