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首页> 外文期刊>Phycologia >Comparative transcriptome analysis reveals that photosynthesis contributes to drought tolerance of Nostoc flagelliforme (Nostocales, Cyanobacteria)
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Comparative transcriptome analysis reveals that photosynthesis contributes to drought tolerance of Nostoc flagelliforme (Nostocales, Cyanobacteria)

机译:比较转录组分析表明,光合作用有助于Nostoc鞭毛状的耐旱性(Nostocales,Cyanobacteria)

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摘要

Nostoc flagelliforme, a photosynthetic cyanobacterium, is well adapted to drought. However, exploration of factors behind this important feature at a molecular level is limited because of inadequate genome data. This study used transcript sequence data of N. flagelliforme and examined its gene expression in response to drought stress on the basis of RNA-Seq. More than 1.4 G clean reads were generated for each sample using the Illumina sequencing platform. A total of 392 and 659 differentially expressed genes were identified, of which 369 and 502 were upregulated and 23 and 157 downregulated after 6- and 48-h dehydration treatments of N. flagelliforme, respectively. Functional analyses demonstrated that the genes involved in photosynthesis as well as those involved in starch and sucrose metabolism were closely related to response to drought stress. The photosynthetic products, sucrose and trehalose, played important roles as osmotic regulators, stress protectants and reactive oxygen species scavengers in response to drought stress in N. flagelliforme. Quantitative real-time reverse-transcriptase polymerase chain reaction analysis, physiological assays and cell ultrastructure observation further confirmed the results from the RNA-Seq. These findings provide novel information about the molecular mechanisms of drought tolerance in N. flagelliforme.
机译:Nostoc鞭毛状,光合肌鞭状,很适合干旱。然而,由于基因组数据不足,在分子水平下对该重要特征背后的因素的探测是有限的。本研究使用了N.Lillelliforme的转录物序列数据,并在RNA-SEQ的基础上检查其基因表达。使用Illumina测序平台为每个样品产生超过1.4g清洁读数。鉴定了总共392和659个差异表达的基因,其中较上调369和502,分别在6-8-H氟化物状治疗后下调23和157。功能分析证明,参与光合作用的基因以及参与淀粉和蔗糖代谢的基因与对干旱胁迫的反应密切相关。光合产物,蔗糖和海藻糖,发挥了重要作用作为渗透调节剂,应激保护剂和反应性氧气种类清除剂,以应对N.鞭毛状的干旱胁迫。定量实时逆转录酶聚合酶链反应分析,生理测定和细胞超微结构观察进一步证实了RNA-SEQ的结果。这些发现提供了关于N鞭状耐旱性分子机制的新颖信息。

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