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Role of virus genes in seed and aphid transmission and development of a virus-induced gene silencing system to study seed development in soybean.

机译:病毒基因在种子和蚜虫传播中的作用以及研究大豆种子发育的病毒诱导基因沉默系统的开发。

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摘要

Soybean mosaic virus (SMV) and Tobacco streak virus (TSV) are two important seed transmitted virus that infect soybean. SMV is a member of the family Potyviridae genus Potyvirus, and is transmitted by seed and aphids in soybean. The symptoms of SMV infection on soybean typically include mosaic and curling of leaves, reduced pod set and seed coat mottling. Although, the virus genes responsible for transmission by aphids have been studied extensively there has not been much research in understanding virus genes responsible for seed transmission. In this study I investigated the role of SMV genes in seed and aphid transmission, by designing recombinants between SMV isolates, SMV 413 (highly seed and aphid transmitted) and SMV G2 (lacking seed or aphid transmission). The SMV genes encoding the proteins P1, helper component protease (HC-Pro), and coat protein (CP) were the major determinants of seed transmission. The single amino acid mutation of G12 to D in the DAG motif of the CP and the amino acid Q264 to P in the C-terminus of the CP affected seed transmission of SMV. The aphid transmission study validated previous research and demonstrated that the amino acid motif DAG in the CP region and HC-Pro were important in aphid transmission. The severity of foliar symptoms was influenced by HC-Pro and seed coat mottling was determined by a single amino acid Q264 in the C-terminus of the CP. The seed transmitted virus TSV (genus Ilarvirus and family Bromoviridae) was utilized for construction of a DNA-based virus induced gene silencing (VIGS) vector for investigating genes expressed in the soybean seed. VIGS are reverse genetics tools comprised of virus vectors with a partial plant transcript insertion that can silence expression of the plant gene. TSV has a tripartite genome, and causes early symptoms such as leaf puckering and necrosis that are often followed by symptom recovery possibly induced by virus RNA silencing. Multicloning sites were inserted into all the three RNAs of TSV to facilitate the insertion of plant gene fragments for the development of a VIGS vector. TSV RNA2-based VIGS vector was the most stable and the integrity of plant gene inserts up to the size of 175 nucleotides were maintained in the vector. The small RNA (21-24 nucleotide size) deep sequencing of TSV-infected soybean plants with symptom recovery revealed that virus derived small interfering (vsi)RNA originated from hot spots within the TSV genome as indicated by the number of mapped sequences. The vsiRNA hot spots were not correlated to the presence of RNA secondary structure in the TSV genome and exhibited a bias for the sense strand. Most hot spots were located in the TSV RNA3 especially in the movement protein coding region. To further understand the effects of virus infection on micro (mi)RNA accumulation and function in plants showing symptom recovery, small RNAs and mRNAs were sequenced from three soybean cultivars either mock-inoculated or infected with TSV or Bean pod mottle virus (BPMV). BPMV (genus Comovirus and family Comoviridae) also causes severe symptoms initially followed by symptom recovery in soybean as observed in TSV. The soybean miRNA, gma-miRNA159a, that targets transcripts of a glutathione S-transferase (GST) and a MYB family transcription factor, and gma-miR166 that targets a HD-Zip transcription factor were down-regulated in virus-infected soybean exhibiting symptom recovery as indicated by the number of mapped sequences to the reported gma-miRNA transcript sequence. The GST, MYB factor and HD-Zip factor proteins may all be involved in programmed cell death that is associated with plant disease resistance. The mRNA-Seq analysis revealed that the accumulation of mRNAs encoding pathogenesis-related proteins, components of the salicylic acid mediated defense response and plant RNA virus infection associated proteins were up-regulated in virus-infected plants with symptom recovery. The transcripts for GST and lactoylglutathione lyase protein, involved in detoxification, were down-regulated. Changes in the accumulation of transcripts from other defense- and photosynthesis- related genes were cultivar dependent, as determined from the number of sequences that mapped to soybean transcripts.
机译:大豆花叶病毒(SMV)和烟草条纹病毒(TSV)是感染大豆的两种重要的种子传播病毒。 SMV是马铃薯痘苗病毒(Potyviridae Potyvirus)的成员,并通过种子和蚜虫在大豆中传播。大豆上SMV感染的症状通常包括叶子的花叶和卷曲,荚果减少和种皮斑点。尽管已经对蚜虫传播的病毒基因进行了广泛的研究,但在了解导致种子传播的病毒基因方面还没有进行很多研究。在这项研究中,我通过设计SMV分离株,SMV 413(高度传播种子和蚜虫)和SMV G2(缺乏种子或蚜虫传播)之间的重组体,研究了SMV基因在种子和蚜虫传播中的作用。编码蛋白质P1,辅助成分蛋白酶(HC-Pro)和外壳蛋白(CP)的SMV基因是种子传播的主要决定因素。 CP的DAG基序中的G12至D的单个氨基酸突变以及CP的C端中的Q264至P的氨基酸突变影响了SMV的种子传播。蚜虫传播研究证实了先前的研究,并证明了CP区的氨基酸基序DAG和HC-Pro在蚜虫传播中很重要。叶症状的严重程度受HC-Pro的影响,种皮斑点的形成取决于CP C端的单个氨基酸Q264。种子传播的病毒TSV(伊拉病毒属和Bromoviridae属)用于构建基于DNA的病毒诱导基因沉默(VIGS)载体,用于研究在大豆种子中表达的基因。 VIGS是反向遗传学工具,由带有部分植物转录本插入的病毒载体组成,可以使植物基因的表达沉默。 TSV具有三重基因组,可引起早期症状,例如皱褶和坏死,随后通常是病毒RNA沉默诱导的症状恢复。将多克隆位点插入TSV的所有三个RNA中,以促进植物基因片段的插入,以开发VIGS载体。基于TSV RNA2的VIGS载体是最稳定的,并且载体中插入的植物基因插入片段的完整性一直保持到175个核苷酸的大小。经症状恢复的经TSV感染的大豆植物的小RNA(21-24核苷酸大小)深度测序显示,病毒来源的小干扰(vsi)RNA来自TSV基因组内的热点,如定位序列的数量所示。 vsiRNA热点与TSV基因组中RNA二级结构的存在无关,并且对有义链表现出偏倚。大多数热点位于TSV RNA3中,尤其是在运动蛋白编码区中。为了进一步了解病毒感染对表现出症状恢复的植物中微小(mi)RNA积累和功能的影响,从模拟接种或感染了TSV或豆荚斑驳病毒(BPMV)的三个大豆品种中测序了小RNA和mRNA。如在TSV中观察到的那样,BPMV(弓形病毒属和弓形病毒科)最初也会引起严重的症状,随后大豆的症状恢复。在具有症状的病毒感染大豆中,针对谷胱甘肽S-转移酶(GST)和MYB家族转录因子的转录本的大豆miRNA,gma-miRNA159a和针对HD-Zip转录因子的gma-miR166被下调。如所报道的gma-miRNA转录物序列的定位序列的数目所指示的那样恢复。 GST,MYB因子和HD-Zip因子蛋白都可能参与与植物抗病性相关的程序性细胞死亡。 mRNA-Seq分析显示,在感染症状恢复的植物中,编码与病程相关蛋白,水杨酸介导的防御反应的成分和植物RNA病毒感染相关蛋白的mRNA的积累被上调。下调了与排毒有关的GST和乳酰谷胱甘肽裂解酶蛋白的转录物。从其他防御和光合作用相关基因的转录本积累的变化取决于栽培品种,这取决于映射到大豆转录本的序列数。

著录项

  • 作者

    Jossey, Sushma.;

  • 作者单位

    University of Illinois at Urbana-Champaign.;

  • 授予单位 University of Illinois at Urbana-Champaign.;
  • 学科 Agriculture Plant Pathology.;Biology Virology.;Biology Molecular.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 173 p.
  • 总页数 173
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:43:05

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