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首页> 外文期刊>Environmental and experimental botany >Genome-wide mRNA and small RNA transcriptome profiles uncover cultivar- and tissue-specific changes induced by cadmium in Brassica parachinensis
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Genome-wide mRNA and small RNA transcriptome profiles uncover cultivar- and tissue-specific changes induced by cadmium in Brassica parachinensis

机译:基因组 - 宽的mRNA和小RNA转录组谱揭示叔镉诱导的芸苔诱导的品种和组织特异性变化

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摘要

One of the main pathways for cadmium (Cd) transfer from the environment to the humans is through the consumption of leafy vegetables, and Brassica leafy crops tend to be Cd hyper-accumulators. To investigate Brassica response strategies to Cd, two cultivars with different Cd tolerance were used to perform transcriptomic studies under Cd treatments. Genes related to vacuolar sequestration (such as ABCCs and YSL family genes) and detoxification (such as GST, SAT and APS) were up-regulated in both cultivars but exhibited different temporal expression profiles in leaves of the two cultivars, which may underlie their different Cd tolerance. Analyses of microRNAs (miRNAs) and their target genes by small RNA and degradome sequencing not only revealed Cd-induced changes in miRNAs but also implicated the existence of a regulatory cascade involving two miRNAs, bra-miR156 and bra-miR397, and their corresponding targets, SPLs and LACs, in Cd stress responses. This cascade down-regulates the expression of several LACs particularly in roots under Cd stress, and it is proposed to be a mechanism to maintain root growth under Cd stress through regulating cell wall lignification. In addition, Cd induced a drastic reduction of a 22-nt small RNA, the footprint of a pentatricopeptide repeat (PPR) protein on the chloroplast ndhB transcript and the concomitant down-regulation of the ndhB transcript. A global reduction in the expression of PPR genes was found, revealing previously unknown effects of Cd on organellar gene expression. The present findings help uncover the impact of Cd stress on the transcriptome of B. parachinensis and reveal the strategies used by B. parachinensis in dealing with Cd stress. It also provides candidate genes and miRNAs for further investigation.
机译:镉(CD)从环境转移到人类的主要途径之一是通过叶蔬菜的消耗,芸苔叶作物往往是CD超蓄能器。为了研究CD的芸苔响应策略,使用具有不同CD耐受性的两种品种在CD处理下进行转录组研究。与真空螯合(如ABCC和YSL家族基因)相关的基因和解毒(例如GST,SAT和AP)在两种品种上调节,但在两种品种的叶子中表现出不同的时间表达曲线,这可能会置于它们的不同CD耐受性。小RNA和降低测量测序的微小RNA(miRNA)及其靶基因不仅揭示了MIRNA的CD诱导的变化,而且还涉及涉及两个MIRNA,BRA-MIR156和BRA-MIR397的调节级联的存在性和它们的相应靶标,CD应激反应中的SPL和LAC。这种级联降低了几种Lacs的表达,特别是在Cd胁迫下的根部,并且建议是通过调节细胞壁瘫痪来维持CD胁迫下的根生长的机制。此外,CD诱导22-NT小RNA的急剧减少,叶绿体NDHB转录物对叶绿体NDHB转录物上的五氢肽重复(PPR)蛋白质的占地面积以及NDHB转录物的伴随下调。发现了PPR基因表达的全局还原,揭示了CD对细胞细胞基因表达的先前未知效果。本研究结果有助于揭示CD胁迫对B.Garachinensis的转录组的影响,并揭示了B.Garachinensis在处理CD胁迫方面使用的策略。它还提供候选基因和miRNA,以进一步调查。

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  • 作者单位

    Shenzhen Univ Coll Life Sci &

    Oceanog Longhua Inst Innovat Biotechnol Shenzhen Key Lab Guangdong Prov Key Lab Plant Epigenet Shenzhen 518060 Guangdong Peoples R China;

    Shenzhen Univ Coll Life Sci &

    Oceanog Longhua Inst Innovat Biotechnol Shenzhen Key Lab Guangdong Prov Key Lab Plant Epigenet Shenzhen 518060 Guangdong Peoples R China;

    Shenzhen Univ Coll Life Sci &

    Oceanog Longhua Inst Innovat Biotechnol Shenzhen Key Lab Guangdong Prov Key Lab Plant Epigenet Shenzhen 518060 Guangdong Peoples R China;

    Shenzhen Univ Coll Life Sci &

    Oceanog Longhua Inst Innovat Biotechnol Shenzhen Key Lab Guangdong Prov Key Lab Plant Epigenet Shenzhen 518060 Guangdong Peoples R China;

    Shenzhen Univ Coll Life Sci &

    Oceanog Longhua Inst Innovat Biotechnol Shenzhen Key Lab Guangdong Prov Key Lab Plant Epigenet Shenzhen 518060 Guangdong Peoples R China;

    Shenzhen Univ Coll Life Sci &

    Oceanog Longhua Inst Innovat Biotechnol Shenzhen Key Lab Guangdong Prov Key Lab Plant Epigenet Shenzhen 518060 Guangdong Peoples R China;

    Univ Calif Riverside Dept Bot &

    Plant Sci Inst Integrat Genome Biol Riverside CA 92521 USA;

    Shenzhen Univ Coll Life Sci &

    Oceanog Longhua Inst Innovat Biotechnol Shenzhen Key Lab Guangdong Prov Key Lab Plant Epigenet Shenzhen 518060 Guangdong Peoples R China;

    Shenzhen Univ Coll Life Sci &

    Oceanog Longhua Inst Innovat Biotechnol Shenzhen Key Lab Guangdong Prov Key Lab Plant Epigenet Shenzhen 518060 Guangdong Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 植物学;
  • 关键词

    Brassica; Cadmium; Chloroplast; microRNA; Transcriptome; Ion transporter;

    机译:芸苔;镉;叶绿体;microRNA;转录组;离子转运蛋白;

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