N6-Methyladenosine (m6A) Sequencing Reveals Heterodera glycines-Induced Dynamic Methylation Promoting Soybean Defense.

IF 2.6 2区 农林科学 Q2 PLANT SCIENCES
Phytopathology Pub Date : 2024-07-01 Epub Date: 2024-07-03 DOI:10.1094/PHYTO-12-23-0474-R
Ruifeng Qin, Minghui Huang, Ye Jiang, Dan Jiang, Doudou Chang, Yifan Xie, Yuewen Dou, Lili Wu, Liuli Wei, Mingze Wang, Zhongyan Tian, Chunjie Li, Congli Wang
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引用次数: 0

Abstract

Unraveling the intricacies of soybean cyst nematode (Heterodera glycines) race 4 resistance and susceptibility in soybean breeding lines-11-452 (highly resistant) and Dongsheng1 (DS1, highly susceptible)-was the focal point of this study. Employing cutting-edge N6-methyladenosine (m6A) and RNA sequencing techniques, we delved into the impact of m6A modification on gene expression and plant defense responses. Through the evaluation of nematode development in both resistant and susceptible roots, a pivotal time point (3 days postinoculation) for m6A methylation sequencing was identified. Our sequencing data exhibited robust statistics, successful soybean genome mapping, and prevalent m6A peak distributions, primarily in the 3' untranslated region and stop codon regions. Analysis of differential methylation peaks and differentially expressed genes revealed distinctive patterns between resistant and susceptible genotypes. In the highly resistant line (11-452), key resistance and defense-associated genes displayed increased expression coupled with inhibited methylation, encompassing crucial players such as R genes, receptor kinases, and transcription factors. Conversely, the highly susceptible DS1 line exhibited heightened expression correlated with decreased methylation in genes linked to susceptibility pathways, including Mildew Locus O-like proteins and regulatory elements affecting defense mechanisms. Genome-wide assessments, Gene Ontology and Kyoto Encyclopedia of Genes and Genomes analyses, and differential methylation peak/differentially expressed gene overlap emphasized the intricate interplay of m6A modifications, alternative splicing, microRNA, and gene regulation in plant defense. Protein-protein interaction networks illuminated defense-pivotal genes, delineating divergent mechanisms in resistant and susceptible responses. This study sheds light on the dynamic correlation between methylation, splicing, and gene expression, providing profound insights into plant responses to nematode infection.

N6-甲基腺苷(m6A)测序揭示了 Heterodera glycines 诱导的促进大豆防御的动态甲基化。
本研究的重点是揭示大豆育种品系--11-452(高抗性)和东盛1号(DS1,高感性)的大豆胞囊线虫(Heterodera glycines)第4种族抗性和感病性的复杂性。我们采用前沿的 N6-甲基腺苷(m6A)-序列和 RNA-seq 技术,深入研究了 m6A 修饰对基因表达和植物防御反应的影响。通过评估线虫在抗性根系和易感根系中的发展情况,我们确定了进行 m6A 甲基化测序的关键时间点(接种后 3 天)。我们的测序数据显示了强大的统计数据、成功的大豆基因组映射和普遍的 m6A 峰值分布,主要分布在 3'UTR(非翻译区)和终止密码子区域。对差异表达的 m6A 峰(DMPs)和表达基因(DEGs)的分析表明,抗性基因型和易感基因型之间存在不同的模式。在高抗性品系(11-452)中,关键的抗性和防御相关基因的表达增加,同时甲基化受到抑制,其中包括 R 基因、受体激酶和转录因子等关键角色。相反,高度易感的 DS1 株系则表现出与易感性途径相关的基因(包括类似霉病基因座 O(MLO)的蛋白和影响防御机制的调控元件)的表达增加和甲基化降低。全基因组评估、GO/KEGG 分析和 DMP/DEG 重叠强调了 m6A 修饰、替代剪接、microRNA 和基因调控在植物防御中错综复杂的相互作用。蛋白-蛋白相互作用网络揭示了防御关键基因,划分了抗性和易感性反应的不同机制。这项研究揭示了甲基化、剪接和基因表达之间的动态相关性,为植物对线虫感染的反应提供了深刻的见解。
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来源期刊
Phytopathology
Phytopathology 生物-植物科学
CiteScore
5.90
自引率
9.40%
发文量
505
审稿时长
4-8 weeks
期刊介绍: Phytopathology publishes articles on fundamental research that advances understanding of the nature of plant diseases, the agents that cause them, their spread, the losses they cause, and measures that can be used to control them. Phytopathology considers manuscripts covering all aspects of plant diseases including bacteriology, host-parasite biochemistry and cell biology, biological control, disease control and pest management, description of new pathogen species description of new pathogen species, ecology and population biology, epidemiology, disease etiology, host genetics and resistance, mycology, nematology, plant stress and abiotic disorders, postharvest pathology and mycotoxins, and virology. Papers dealing mainly with taxonomy, such as descriptions of new plant pathogen taxa are acceptable if they include plant disease research results such as pathogenicity, host range, etc. Taxonomic papers that focus on classification, identification, and nomenclature below the subspecies level may also be submitted to Phytopathology.
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