转录组和表观遗传学反应揭示了大豆对 Phytophthora sansomeana 的抗性。

IF 3.9 2区 生物学 Q1 GENETICS & HEREDITY
Plant Genome Pub Date : 2024-07-12 DOI:10.1002/tpg2.20487
Gwonjin Lee, Charlotte N DiBiase, Beibei Liu, Tong Li, Austin G McCoy, Martin I Chilvers, Lianjun Sun, Dechun Wang, Feng Lin, Meixia Zhao
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引用次数: 0

摘要

疫霉根腐病是由疫霉属的卵菌病原体引起的,对大豆的产量构成严重威胁。虽然对大豆的疫霉抗性机制进行了广泛研究,但大豆疫霉免疫反应的分子基础仍不清楚。在本研究中,我们调查了两种抗性大豆品系(Colfax 和 NE2701)和两种易感性大豆品系(Williams 82 和 Senaki)在接种 P. sansomeana 后四个时间点(接种后 2、4、8 和 16 h[hpi])的转录组和表观遗传学反应。转录组比较分析表明,抗性品系在接种病原体后,特别是在接种后 8 和 16 小时,有更多的差异表达基因(DEGs)。这些 DEGs 主要与防御反应、乙烯和活性氧介导的防御途径有关。此外,DE 转座子在接种后主要上调,而且与其他大豆品系相比,更多的 DE 转座子富集在 Colfax 的基因附近。值得注意的是,我们在抗性基因的映射区域内发现了一种长非编码 RNA(lncRNA),该 RNA 在接种后的抗性品系中表现出独特的上调,可能调控两个侧翼的 LURP-one 相关基因。此外,DNA 甲基化分析表明,接种后 lncRNA 中的 CHH(H = A、T 或 C)甲基化水平升高,与威廉姆斯 82 相比,科尔法克斯的反应延迟。总之,我们的研究结果全面揭示了大豆对 P. sansomeana 的反应,突出了 lncRNAs 和表观遗传调控在植物防御中的潜在作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Transcriptomic and epigenetic responses shed light on soybean resistance to Phytophthora sansomeana.

Phytophthora root rot, caused by oomycete pathogens in the Phytophthora genus, poses a significant threat to soybean productivity. While resistance mechanisms against Phytophthora sojae have been extensively studied in soybean, the molecular basis underlying immune responses to Phytophthora sansomeana remains unclear. In this study, we investigated transcriptomic and epigenetic responses of two resistant (Colfax and NE2701) and two susceptible (Williams 82 and Senaki) soybean lines at four time points (2, 4, 8, and 16 h post inoculation [hpi]) after P. sansomeana inoculation. Comparative transcriptomic analyses revealed a greater number of differentially expressed genes (DEGs) upon pathogen inoculation in resistant lines, particularly at 8 and 16 hpi. These DEGs were predominantly associated with defense response, ethylene, and reactive oxygen species-mediated defense pathways. Moreover, DE transposons were predominantly upregulated after inoculation, and more of them were enriched near genes in Colfax than other soybean lines. Notably, we identified a long non-coding RNA (lncRNA) within the mapped region of the resistance gene that exhibited exclusive upregulation in the resistant lines after inoculation, potentially regulating two flanking LURP-one-related genes. Furthermore, DNA methylation analysis revealed increased CHH (where H = A, T, or C) methylation levels in lncRNAs after inoculation, with delayed responses in Colfax compared to Williams 82. Overall, our results provide comprehensive insights into soybean responses to P. sansomeana, highlighting potential roles of lncRNAs and epigenetic regulation in plant defense.

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来源期刊
Plant Genome
Plant Genome PLANT SCIENCES-GENETICS & HEREDITY
CiteScore
6.00
自引率
4.80%
发文量
93
审稿时长
>12 weeks
期刊介绍: The Plant Genome publishes original research investigating all aspects of plant genomics. Technical breakthroughs reporting improvements in the efficiency and speed of acquiring and interpreting plant genomics data are welcome. The editorial board gives preference to novel reports that use innovative genomic applications that advance our understanding of plant biology that may have applications to crop improvement. The journal also publishes invited review articles and perspectives that offer insight and commentary on recent advances in genomics and their potential for agronomic improvement.
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