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从经历遗传瓶颈的选择群体中分离得到的马铃薯 S 病毒 cDNA 克隆的构建与鉴定。

Construction and characterization of an infectious cDNA clone of potato virus S developed from selected populations that survived genetic bottlenecks.

机构信息

Laboratory of Pathogen-Plant Interactions, Graduate School of Agriculture, Hokkaido University, Sapporo, 060-8589, Japan.

Laboratory of Pathogen-Plant Interactions, Research Faculty of Agriculture, Hokkaido University, Sapporo, 060-8589, Japan.

出版信息

Virol J. 2019 Feb 6;16(1):18. doi: 10.1186/s12985-019-1124-x.

Abstract

BACKGROUND

Infectious cDNA clones are a powerful tool for studies on RNA viruses using reverse genetics. Potato virus S (PVS) is a carlavirus with a worldwide distribution. Although the complete genome sequences of many PVS isolates have been reported, the construction of an infectious cDNA clone of PVS is yet to be reported. The aim of this study is the development and molecular characterization of an infectious cDNA clone of PVS.

METHODS

A full-length cDNA clone pPVS-H-FL-AB was constructed by connecting eight cDNA clones of PVS isolate H95. Capped RNA transcripts from pPVS-H-FL-AB and a modified clone pPVS-H-FL-H, containing the consensus genome sequence of PVS-H95, proved to be non-infectious. Therefore, a full-length cDNA clone pPVS-H-FL-β was reconstructed from PVS-H00, isolated from PVS-H95 populations by repeating a single local lesion isolation in Chenopodium quinoa three times; PVS-H00 appeared to be a selected variant that survived genetic bottlenecks. The sequence of cDNA clone pPVS-H-FL-β was determined as the genome sequence of PVS-H00 and compared with the consensus sequence of PVS-H95 genome.

RESULTS

All Nicotiana occidentalis plants inoculated with ≥0.2 μg capped RNA transcripts from pPVS-H-FL-β developed symptoms on upper leaves, as observed with PVS-H00 inoculation. Similar levels of viral genomic and subgenomic RNAs and coat protein were detected in systemically infected leaves. Sequence comparison of PVS-H95 and PVS-H00 revealed 370 nucleotide polymorphisms (4.4% of the entire genome sequence), causing 91 amino acid substitutions in six open reading frames (ORFs). The infectivity of chimeric RNAs derived from recombinants between the two cDNA clones revealed that the lack of infectivity of pPVS-H-FL-H transcripts was due to ORF1, which encodes replicase and harbors 80 amino acid substitutions compared with pPVS-H-FL-β. Approximately 71.3% amino acid substitutions in replicase were located within the variable region of unknown function between the putative methyltransferase and ovarian tumor-like protease domains.

CONCLUSIONS

This is the first report of the development of an infectious cDNA clone of PVS. Our analyses suggest that PVS population within a plant exists as quasispecies and the replicase sequence diversity of PVS obstruct the construction of a full-length infectious cDNA clone.

摘要

背景

感染性 cDNA 克隆是使用反向遗传学研究 RNA 病毒的有力工具。马铃薯 Y 病毒(PVS)是一种分布广泛的 Carlavirus。尽管已经报道了许多 PVS 分离株的完整基因组序列,但 PVS 的感染性 cDNA 克隆的构建尚未报道。本研究旨在构建 PVS 的感染性 cDNA 克隆并对其进行分子特征分析。

方法

通过连接 PVS 分离株 H95 的 8 个 cDNA 克隆,构建了全长 cDNA 克隆 pPVS-H-FL-AB。来自 pPVS-H-FL-AB 和包含 PVS-H95 共识基因组序列的修饰克隆 pPVS-H-FL-H 的加帽 RNA 转录本被证明是无传染性的。因此,从 PVS-H00 中重建了全长 cDNA 克隆 pPVS-H-FL-β,该克隆是通过在藜科植物藜中重复进行三次局部病变分离从 PVS-H95 群体中分离出来的;PVS-H00 似乎是一种在遗传瓶颈中幸存下来的选择变体。确定 cDNA 克隆 pPVS-H-FL-β的序列作为 PVS-H00 的基因组序列,并与 PVS-H95 基因组的共识序列进行比较。

结果

用≥0.2μg 的加帽 RNA 转录本 pPVS-H-FL-β 接种的所有烟草均在上叶上表现出症状,与 PVS-H00 接种时观察到的症状相同。系统感染叶片中检测到类似水平的病毒基因组和亚基因组 RNA 和外壳蛋白。PVS-H95 和 PVS-H00 的序列比较显示 370 个核苷酸多态性(整个基因组序列的 4.4%),导致 6 个开放阅读框(ORF)中的 91 个氨基酸取代。来自两个 cDNA 克隆之间重组体的嵌合 RNA 的感染性揭示,pPVS-H-FL-H 转录本缺乏感染性是由于 ORF1 所致,该 ORF 编码复制酶,并与 pPVS-H-FL-β 相比具有 80 个氨基酸取代。复制酶中的大约 71.3%的氨基酸取代位于推定的甲基转移酶和卵巢肿瘤样蛋白酶结构域之间的未知功能的可变区中。

结论

这是首例关于 PVS 感染性 cDNA 克隆的开发报告。我们的分析表明,植物内的 PVS 种群以准种形式存在,并且 PVS 的复制酶序列多样性阻碍了全长感染性 cDNA 克隆的构建。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cbd6/6364481/70bfe7bc6603/12985_2019_1124_Fig1_HTML.jpg

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