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用核盘菌弱病毒2自然发生的种间重组体的体外转录本转染核盘菌,可显著降低该真菌的毒力。

Transfection of Sclerotinia sclerotiorum with in vitro transcripts of a naturally occurring interspecific recombinant of Sclerotinia sclerotiorum hypovirus 2 significantly reduces virulence of the fungus.

作者信息

Marzano Shin-Yi Lee, Hobbs Houston A, Nelson Berlin D, Hartman Glen L, Eastburn Darin M, McCoppin Nancy K, Domier Leslie L

机构信息

Department of Crop Sciences, University of Illinois, Urbana, Illinois, USA.

Department of Plant Pathology, North Dakota State University, Fargo, North Dakota, USA.

出版信息

J Virol. 2015 May;89(9):5060-71. doi: 10.1128/JVI.03199-14. Epub 2015 Feb 18.

Abstract

UNLABELLED

A recombinant strain of Sclerotinia sclerotiorum hypovirus 2 (SsHV2) was identified from a North American Sclerotinia sclerotiorum isolate (328) from lettuce (Lactuca sativa L.) by high-throughput sequencing of total RNA. The 5'- and 3'-terminal regions of the genome were determined by rapid amplification of cDNA ends. The assembled nucleotide sequence was up to 92% identical to two recently reported SsHV2 strains but contained a deletion near its 5' terminus of more than 1.2 kb relative to the other SsHV2 strains and an insertion of 524 nucleotides (nt) that was distantly related to Valsa ceratosperma hypovirus 1. This suggests that the new isolate is a heterologous recombinant of SsHV2 with a yet-uncharacterized hypovirus. We named the new strain Sclerotinia sclerotiorum hypovirus 2 Lactuca (SsHV2L) and deposited the sequence in GenBank with accession number KF898354. Sclerotinia sclerotiorum isolate 328 was coinfected with a strain of Sclerotinia sclerotiorum endornavirus 1 and was debilitated compared to cultures of the same isolate that had been cured of virus infection by cycloheximide treatment and hyphal tipping. To determine whether SsHV2L alone could induce hypovirulence in S. sclerotiorum, a full-length cDNA of the 14,538-nt viral genome was cloned. Transcripts corresponding to the viral RNA were synthesized in vitro and transfected into a virus-free isolate of S. sclerotiorum, DK3. Isolate DK3 transfected with SsHV2L was hypovirulent on soybean and lettuce and exhibited delayed maturation of sclerotia relative to virus-free DK3, completing Koch's postulates for the association of hypovirulence with SsHV2L.

IMPORTANCE

A cosmopolitan fungus, Sclerotinia sclerotiorum infects more than 400 plant species and causes a plant disease known as white mold that produces significant yield losses in major crops annually. Mycoviruses have been used successfully to reduce losses caused by fungal plant pathogens, but definitive relationships between hypovirus infections and hypovirulence in S. sclerotiorum were lacking. By establishing a cause-and-effect relationship between Sclerotinia sclerotiorum hypovirus Lactuca (SsHV2L) infection and the reduction in host virulence, we showed direct evidence that hypoviruses have the potential to reduce the severity of white mold disease. In addition to intraspecific recombination, this study showed that recent interspecific recombination is an important factor shaping viral genomes. The construction of an infectious clone of SsHV2L allows future exploration of the interactions between SsHV2L and S. sclerotiorum, a widespread fungal pathogen of plants.

摘要

未标记

通过对总RNA进行高通量测序,从一株来自生菜(Lactuca sativa L.)的北美核盘菌(Sclerotinia sclerotiorum)分离株(328)中鉴定出一种核盘菌坏死病毒2(SsHV2)的重组菌株。通过cDNA末端快速扩增确定了基因组的5'和3'末端区域。组装后的核苷酸序列与最近报道的两株SsHV2菌株的序列一致性高达92%,但相对于其他SsHV2菌株,其5'末端附近有一个超过1.2 kb的缺失,以及一个与苹果腐烂病菌坏死病毒1远缘相关的524个核苷酸(nt)的插入。这表明该新分离株是SsHV2与一种尚未鉴定的坏死病毒的异源重组体。我们将新菌株命名为核盘菌坏死病毒2莴苣株(SsHV2L),并将该序列保存在GenBank中,登录号为KF898354。核盘菌分离株328与一株核盘菌内源病毒1共同感染,与经环己酰亚胺处理和菌丝尖端切除治愈病毒感染的同一分离株培养物相比,其活力减弱。为了确定单独的SsHV2L是否能在核盘菌中诱导低毒力,克隆了14538 nt病毒基因组的全长cDNA。在体外合成了与病毒RNA对应的转录本,并将其转染到无病毒的核盘菌分离株DK3中。用SsHV2L转染的分离株DK3在大豆和生菜上表现出低毒力,并且相对于无病毒的DK3,其菌核成熟延迟,完成了低毒力与SsHV2L关联的柯赫氏法则。

重要性

核盘菌是一种世界性真菌,可感染400多种植物,引起一种称为白霉病的植物病害,每年在主要作物上造成重大产量损失。真菌病毒已成功用于减少由植物真菌病原体引起的损失,但核盘菌中坏死病毒感染与低毒力之间的确切关系尚不清楚。通过建立核盘菌坏死病毒莴苣株(SsHV2L)感染与宿主毒力降低之间的因果关系,我们提供了直接证据表明坏死病毒具有降低白霉病严重程度的潜力。除了种内重组外,本研究表明近期的种间重组是塑造病毒基因组的一个重要因素。SsHV2L感染性克隆的构建使得未来能够探索SsHV2L与核盘菌(一种广泛存在的植物真菌病原体)之间的相互作用。

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