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首页> 外文期刊>Microbiological Research >Diverse strategies conferring extreme cadmium (Cd) tolerance in the dark septate endophyte (DSE), Exophiala pisciphila: Evidence from RNA-seq data
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Diverse strategies conferring extreme cadmium (Cd) tolerance in the dark septate endophyte (DSE), Exophiala pisciphila: Evidence from RNA-seq data

机译:赋予暗隔内生植物(DSE)细小费肉鱼极高的镉(Cd)耐受性的多样策略:来自RNA-seq数据的证据

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摘要

Dark septate endophytes (DSE) ubiquitously colonize the roots of plants growing in extreme heavy metals (HMs)-contaminated soils. Little is known about the overall molecular response of DSE to excessive HMs. Therefore, RNA-seq was performed through Illumina Hiseq 2000 sequencing based on two cDNA libraries of the DSE strain Exophiala pisciphila, cultured under cadmium (Cd)-free and Cd-stressed conditions, and 21,376 unigenes were generated. In total, 575 differentially expressed genes (DEGs) were obtained. Approximately 40% of the DEGs (228 unigenes) were involved in 10 well-known HMs-tolerant pathways, conferring the extreme cadmium (Cd) tolerance of E. pisciphila, including metal ion binding and transportation, organic acid metabolism and transportation, reactive oxygen species (ROS) scavenging, redox homeostasis, transcription factors production, sulfate assimilation, DNA repair and cell wall integrity maintenance, etc. Our results indicate that integral tactics associated with the collaboration of extracellular and intracellular mechanisms contribute to the enhanced HMs tolerance of this fungus. This study represents the first investigation of the transcriptome of DSE under Cd stress, and our results provide valuable information for future molecular studies of HMs tolerance in fungi. (C) 2014 Elsevier GmbH. All rights reserved.
机译:黑暗的分隔内生菌(DSE)遍地生长在受重金属(HMs)污染的土壤中的植物根部。关于DSE对过量HM的整体分子反应知之甚少。因此,基于Iselumina Hiseq 2000测序,基于DSE菌株Exophiala pisphilphila的两个cDNA文库进行RNA-seq,该文库在无镉(Cd)和Cd胁迫条件下培养,并产生21,376个单基因。总共获得了575个差异表达基因(DEG)。大约40%的DEG(228个单基因)参与了10个著名的HMs耐受途径,赋予了大肠杆菌的极高的镉(Cd)耐受性,包括金属离子结合和转运,有机酸代谢和转运,活性氧种(ROS)清除,氧化还原稳态,转录因子产生,硫酸盐同化,DNA修复和细胞壁完整性维持等。我们的结果表明,与细胞外和细胞内机制协同作用的整体策略有助于增强这种真菌对HMs的耐受性。这项研究代表了对Cd胁迫下DSE转录组的首次研究,我们的结果为真菌对HMs耐受性的未来分子研究提供了有价值的信息。 (C)2014 Elsevier GmbH。版权所有。

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