甲基化相关基因在小麦与小麦赤霉病菌相互作用中的作用。

IF 2.6 4区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY 3 Biotech Pub Date : 2025-01-01 Epub Date: 2024-12-16 DOI:10.1007/s13205-024-04179-0
Lalit L Kharbikar, Arti S Shanware, Shweta K Nandanwar, Mahender S Saharan, Sarmistha Nayak, Sushma Rani Martha, Ashish Marathe, Anil Dixit, Neeti Sanan Mishra, Simon G Edwards
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引用次数: 0

摘要

小麦(Triticum aestivum L.)是一种重要的谷类作物,提供了人类饮食中总热量和蛋白质的20%以上。然而,导致赤霉病(Fusarium head blight, FHB)的病原菌镰刀菌(Fusarium graminearum)通过用有害的真菌毒素污染谷物,对小麦生产构成重大威胁。虽然镰刀菌头疫病目前在印度是一种小疾病,但它有可能造成重大的产量和质量损失,特别是如果在花期中期下雨。表观遗传机制,包括DNA甲基化和sRNA积累,是调控基因表达和使植物适应环境胁迫的关键。以前的研究通过对不同2DL FHB抗性qtl的品系进行转录组分析来研究小麦对F. graminearum的反应,但没有充分探索甲基化相关基因的作用。为了解决这一空白,我们重新分析了RNA-Seq数据,以揭示甲基化相关基因对病原体感染的反应。我们的分析显示,16个甲基化相关基因在易感品系2-2890中下调,基因本体(GO)分析将这些基因与甲基硫腺苷提取的l -蛋氨酸(GO:0019509)、s -腺苷蛋氨酸代谢(GO:0033353)和类固醇生物合成(GO:0006694)联系起来(p值= 0.001)。共表达分析发现,蛋氨酸s -甲基转移酶(MSM;trescs1a02g013800)和3-羟基-3-甲基-戊二酰辅酶A还原酶(HMGCR;TraesCS5A02G269300)。HMGCR还与编码致病相关、解毒蛋白和木聚糖酶抑制剂的基因呈负相关(-1.00),氧化石墨烯将这些基因与甲硫氨酸s-甲基转移酶活性相关(p值= 0.001)。在病原体接种的样品中,HMGCR的表达升高(Log2 3.25-4.00)和MSM的抑制(Log2 1.25-3.25)表明在应激反应和易感性中起双重作用,可能与DNA甲基化和类异戊二烯生物合成途径的破坏有关。此外,miR9678下调的43个基因与生物刺激反应和葡聚糖内-1,4- β -葡聚糖酶活性相关,突出了小麦防御F. graminearum的复杂调控网络。本研究揭示了甲基化相关基因在小麦易感品系2-2890中的作用,为甲基化相关基因对病原菌反应和植物易感性的潜在影响提供了新的见解。补充资料:在线版本提供补充资料,网址为10.1007/s13205-024-04179-0。
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An in - silico perspective on the role of methylation-related genes in wheat - Fusarium graminearum interaction.

Wheat (Triticum aestivum L.), a vital cereal crop, provides over 20% of the total calories and protein in the human diet. However, Fusarium graminearum, the pathogen responsible for Fusarium head blight (FHB), poses a significant threat to wheat production by contaminating grains with harmful mycotoxins. Although Fusarium head blight is currently a minor disease in India, it has the potential to cause substantial yield and quality losses, especially if rain occurs during mid-anthesis. Epigenetic mechanisms, including DNA methylation and sRNA accumulation, are crucial in regulating gene expression and enabling plants to adapt to environmental stresses. Previous studies investigating wheat's response to F. graminearum through transcriptome analysis of lines differing in 2DL FHB resistance QTLs did not fully explore the role of methylation-related genes. To address this gap, we re-analyzed RNA-Seq data to uncover the response of methylation-related genes to pathogen infection. Our analysis revealed that 16 methylation-related genes were down-regulated in the susceptible line 2-2890, with Gene Ontology (GO) analysis linking these genes to L-methionine salvage from methylthioadenosine (GO:0019509), S-adenosylmethionine metabolism (GO:0033353), and steroid biosynthesis (GO:0006694) (p-value = 0.001). Co-expression analysis identified a negative correlation (-0.82) between methionine S-methyl-transferase (MSM; TraesCS1A02G013800) and 3-hydroxy-3-methyl-glutaryl coenzyme A reductase (HMGCR; TraesCS5A02G269300). HMGCR also showed negative correlations (-1.00) with genes encoding pathogenesis-related, detoxification proteins, and xylanase inhibitors, with GO associating these genes with methionine S-methyl transferase activity (p-value = 0.001). In pathogen-inoculated samples, the elevated expression of HMGCR (Log2 3.25-4.00) and the suppression of MSM (Log2 1.25-3.25) suggest a dual role in stress response and susceptibility, potentially linked to disrupted DNA methylation and isoprenoid biosynthesis pathways. Furthermore, 43 genes down-regulated by miR9678 were associated with biotic stimulus responses and glucan endo-1,4-beta-glucanase activity, highlighting the complex regulatory networks involved in wheat's defense against F. graminearum. This study reveals the roles of methylation-related genes in susceptible wheat lines 2-2890, providing new insights into their potential impact on pathogen response and plant susceptibility.

Supplementary information: The online version contains supplementary material available at 10.1007/s13205-024-04179-0.

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来源期刊
3 Biotech
3 Biotech Agricultural and Biological Sciences-Agricultural and Biological Sciences (miscellaneous)
CiteScore
6.00
自引率
0.00%
发文量
314
期刊介绍: 3 Biotech publishes the results of the latest research related to the study and application of biotechnology to: - Medicine and Biomedical Sciences - Agriculture - The Environment The focus on these three technology sectors recognizes that complete Biotechnology applications often require a combination of techniques. 3 Biotech not only presents the latest developments in biotechnology but also addresses the problems and benefits of integrating a variety of techniques for a particular application. 3 Biotech will appeal to scientists and engineers in both academia and industry focused on the safe and efficient application of Biotechnology to Medicine, Agriculture and the Environment.
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