低温胁迫下两种黑麦的转录组比较分析。

IF 2.8 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Haonan Li, Jiahuan Zhao, Weiyong Zhang, Ting He, Dexu Meng, Yue Lu, Shuge Zhou, Xiaoping Wang, Haibin Zhao
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引用次数: 0

摘要

小麦是一种重要的粮食作物,低温胁迫会严重破坏其生长发育,最终导致小麦产量大幅下降。了解小麦抗寒基因及其作用途径,对于揭示小麦的抗寒机制,提高小麦在低温环境下的产量和品质,保障全球粮食安全具有重要意义。另一方面,与其他一些作物相比,黑麦具有优良的抗寒性。通过在转录组水平上研究不同黑麦品种对低温胁迫的差异反应,旨在确定与耐冷性相关的关键基因和调控机制。这不仅可以加深我们对黑麦抗寒性分子基础的认识,而且可以为通过遗传育种策略提高其他作物的抗寒性提供有价值的见解。本研究以“冬季”黑麦和“胜利”黑麦两个黑麦品种的幼叶为试验材料。两种类型的叶片分别在4°C下处理0、6、24和72 h,然后进行rna测序。共重组了144,371个Unigenes。在NR、GO、KEGG和KOG数据库中注释的Unigenes分别占79.39%、55.98%、59.90%和56.28%。共有3013个Unigenes被注释为转录因子(tf),主要属于MYB家族和bHLH家族。共有122065个差异表达基因(deg)在GO通路和KEGG通路中被鉴定和注释。对于DEG分析,0 h 4°C处理的样品作为对照。通过严格的标准(p < 0.05, fold-change > 2或2(fold-change)| > 1),在GO和KEGG通路中鉴定并注释了122,065个deg。其中,低温处理的“冬季”黑麦组和“胜利”黑麦组的“叶绿体类囊体膜”和“叶绿体”途径均有富集,但富集程度不同。与“胜利”黑麦相比,“冬季”黑麦有更多的“氢分解代谢过程”等注释途径。虽然更多途径的存在并不能直接证明更广泛的抗寒机制,但这些途径可能与耐寒性有关。我们随后分析了这些途径中的基因表达模式,以及它们与已知抗寒相关基因的关系,表明它们在“冬季”黑麦对低温胁迫的反应中起重要作用。例如,“氢分解代谢过程”途径中的基因可能参与调节细胞氧化还原平衡,这对于在冷应激下维持细胞功能至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparative Transcriptome Analysis of Two Types of Rye Under Low-Temperature Stress.

Wheat is a crucial food crop, and low-temperature stress can severely disrupt its growth and development, ultimately leading to a substantial reduction in wheat yield. Understanding the cold-resistant genes of wheat and their action pathways is essential for revealing the cold-resistance mechanism of wheat, enhancing its yield and quality in low-temperature environments, and ensuring global food security. Rye (Secale cereale L.), on the other hand, has excellent cold resistance in comparison to some other crops. By studying the differential responses of different rye varieties to low-temperature stress at the transcriptome level, we aim to identify key genes and regulatory mechanisms related to cold tolerance. This knowledge can not only deepen our understanding of the molecular basis of rye's cold resistance but also provide valuable insights for improving the cold tolerance of other crops through genetic breeding strategies. In this study, young leaves of two rye varieties, namely "winter" rye and "victory" rye, were used as experimental materials. Leaf samples of both types were treated at 4 °C for 0, 6, 24, and 72 h and then underwent RNA-sequencing. A total of 144,371 Unigenes were reconstituted. The Unigenes annotated in the NR, GO, KEGG, and KOG databases accounted for 79.39%, 55.98%, 59.90%, and 56.28%, respectively. A total of 3013 Unigenes were annotated as transcription factors (TFs), mainly belonging to the MYB family and the bHLH family. A total of 122,065 differentially expressed genes (DEGs) were identified and annotated in the GO pathways and KEGG pathways. For DEG analysis, 0 h 4 °C treated samples were controls. With strict criteria (p < 0.05, fold-change > 2 or <0.5, |log2(fold-change)| > 1), 122,065 DEGs were identified and annotated in GO and KEGG pathways. Among them, the "Chloroplast thylakoid membrane" and "Chloroplast" pathways were enriched in both the "winter" rye and "victory" rye groups treated with low temperatures, but the degrees of significance were different. Compared with "victory" rye, "winter" rye has more annotated pathways such as the "hydrogen catabolic process". Although the presence of more pathways does not directly prove a more extensive cold-resistant mechanism, these pathways are likely associated with cold tolerance. Our subsequent analysis of gene expression patterns within these pathways, as well as their relationships with known cold-resistance-related genes, suggests that they play important roles in "winter" rye's response to low-temperature stress. For example, genes in the "hydrogen catabolic process" pathway may be involved in regulating cellular redox balance, which is crucial for maintaining cell function under cold stress.

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来源期刊
Current Issues in Molecular Biology
Current Issues in Molecular Biology 生物-生化研究方法
CiteScore
2.90
自引率
3.20%
发文量
380
审稿时长
>12 weeks
期刊介绍: Current Issues in Molecular Biology (CIMB) is a peer-reviewed journal publishing review articles and minireviews in all areas of molecular biology and microbiology. Submitted articles are subject to an Article Processing Charge (APC) and are open access immediately upon publication. All manuscripts undergo a peer-review process.
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