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首页> 外文期刊>BMC Plant Biology >The Arabidopsis ELP3 / ELO3 and ELP4 / ELO1 genes enhance disease resistance in Fragaria vesca L.
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The Arabidopsis ELP3 / ELO3 and ELP4 / ELO1 genes enhance disease resistance in Fragaria vesca L.

机译:拟南芥ELP3 / ELO3和ELP4 / ELO1基因增强草莓的抗病性。

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Plant immune response is associated with a large-scale transcriptional reprogramming, which is regulated by numerous transcription regulators such as the Elongator complex. Elongator is a multitasking protein complex involved in diverse cellular processes, including histone modification, DNA methylation, and tRNA modification. In recent years, Elongator is emerging as a key regulator of plant immune responses. However, characterization of Elongator’s function in plant immunity has been conducted only in the model plant Arabidopsis thaliana. It is thus unclear whether Elongator’s role in plant immunity is conserved in higher plants. The objective of this study is to characterize transgenic woodland strawberry (Fragaria vesca L.) overexpressing the Arabidopsis Elongator (AtELP) genes, AtELP3 and AtELP4, and to determine whether F. vesca carries a functional Elongator complex. Transgenic F. vesca and Arabidopsis plants were produced via Agrobacterium-mediated genetic transformation and characterized by morphology, PCR, real-time quantitative PCR, and disease resistance test. The Student’s t test was used to analyze the data. Overexpression of AtELP3 and AtELP4 in F. vesca impacts plant growth and development and confers enhanced resistance to anthracnose crown rot, powdery mildew, and angular leaf spot, which are caused by the hemibiotrophic fungal pathogen Colletotrichum gloeosporioides, the obligate biotrophic fungal pathogen Podosphaera aphanis, and the hemibiotrophic bacterial pathogen Xanthomonas fragariae, respectively. Moreover, the F. vesca genome encodes all six Elongator subunits by single-copy genes with the exception of FvELP4, which is encoded by two homologous genes, FvELP4–1 and FvELP4–2. We show that FvELP4–1 complemented the Arabidopsis Atelp4/elo1–1 mutant, indicating that FvELP4 is biologically functional. This is the first report on overexpression of Elongator genes in plants. Our results indicate that the function of Elongator in plant immunity is most likely conserved in F. vesca and suggest that Elongator genes may hold potential for helping mitigate disease severity and reduce the use of fungicides in strawberry industry.
机译:植物免疫应答与大规模的转录重编程有关,该转录重编程受到众多转录调节剂(例如Elongator复合物)的调节。 Elongator是一种多任务蛋白复合物,涉及多种细胞过程,包括组蛋白修饰,DNA甲基化和tRNA修饰。近年来,Elongator逐渐成为植物免疫反应的关键调节剂。但是,仅在模型植物拟南芥中进行了Elongator在植物免疫中的功能表征。因此,尚不清楚Elongator在植物免疫中的作用在高等植物中是否得以保留。这项研究的目的是鉴定过表达拟南芥Elongator(AtELP)基因AtELP3和AtELP4的转基因林地草莓(Fragaria vesca L.),并确定F. vesca是否带有功能性Elongator复合物。转基因无花果和拟南芥是通过农杆菌介导的遗传转化产生的,并通过形态学,PCR,实时定量PCR和抗病性测试进行了表征。学生的t检验用于分析数据。 At。ELP3和AtELP4在大叶念珠菌中的过表达影响植物的生长和发育,并赋予对炭疽病冠腐病,白粉病和角状叶斑病的增强抵抗力,这是由半生营养真菌病原体炭疽菌,专性生养真菌病原体Podosphaeraphanis引起的。和半营养性细菌病原体草莓黄单胞菌。此外,除了由两个同源基因FvELP4-1和FvELP4-2编码的FvELP4外,vesca基因组通过单拷贝基因编码所有六个Elongator亚基。我们显示FvELP4-1补充了拟南芥Atelp4 / elo1-1突变体,表明FvELP4具有生物学功能。这是有关植物中Elongator基因过度表达的第一份报告。我们的结果表明,延伸剂在植物免疫中的功能最有可能在F. vesca中得到保留,并表明延伸剂基因可能具有帮助减轻疾病严重性和减少草莓工业中杀菌剂使用的潜力。

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