Understanding the molecular mechanisms of drought tolerance in wild soybean (Glycine soja) through multi-omics-based alternative splicing predictions

IF 4.5 2区 生物学 Q2 ENVIRONMENTAL SCIENCES
Taekyeom Kim , Heeyoun Hwang , Geul Bang , Jungmin Ha , Yong-Jin Park , Jae Yoon Kim
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引用次数: 0

Abstract

The absence of adequate moisture resulting from drought poses a significant threat to both the viability and productivity of soybean cultivation. Genetic variation in common soybeans has been noticeably reduced through continuous breeding, and wild relatives with wider genetic diversity are one of the best tools in the search for new tolerance genes. In this study, we selected 139 genes co-expressed at transcript and protein levels in response to drought in Glycine soja through a multi-omics analysis. Drought stress induced co-expression of transcripts and proteins involved in dopamine synthesis within tyrosine metabolism. Polyphenol oxidase, involved in the dopamine synthesis process, was uniquely identified in both DEGs and DEPs, with its protein abundance increased. Co-expression of 9-lipoxygenase during linoleic acid metabolism was confirmed, along with consistent protein accumulation. The co-expression profiling of transcripts and proteins suggests that they may influence their regulatory feedback loops or unknown regulatory mechanisms. Additionally, we predicted the regulation of alternative splicing (AS) in response to drought. AS was predicted for 139 co-expressed genes, and four drought-tolerance-related gene candidate groups were selected. The expression levels of four genes, FT1, CCR1L, RPL18, and uncharacterized LOC114422617, varied depending on their transcript isoforms under drought stress. The occurrence of AS under drought stress may play a role in eliminating susceptibility genes or inducing tolerance genes to adapt to drought stress. Overall, this study reveals a novel mechanism of drought adaptation in wild soybean by predicting the regulation of metabolic pathways and AS events at the transcriptome and proteome levels and presents potential targets for soybean breeding.

通过基于多组学的替代剪接预测了解野生大豆(Glycine soja)耐旱性的分子机制
干旱造成的水分不足对大豆种植的生存能力和产量都构成了重大威胁。通过连续育种,普通大豆的遗传变异已明显减少,而具有更广泛遗传多样性的野生近缘种是寻找新耐旱基因的最佳工具之一。在本研究中,我们通过多组学分析筛选出了 139 个在转录本和蛋白质水平上共同表达的大豆抗旱基因。干旱胁迫诱导了涉及酪氨酸代谢中多巴胺合成的转录本和蛋白质的共表达。参与多巴胺合成过程的多酚氧化酶在 DEGs 和 DEPs 中都被唯一鉴定出来,其蛋白质丰度也有所增加。亚油酸代谢过程中 9-脂氧化酶的共表达也得到了证实,同时其蛋白质也得到了一致的积累。转录本和蛋白质的共表达分析表明,它们可能会影响其调控反馈回路或未知的调控机制。此外,我们还预测了替代剪接(AS)对干旱的调控作用。对 139 个共表达基因的 AS 进行了预测,并选出了四个与耐旱相关的候选基因组。在干旱胁迫下,FT1、CCR1L、RPL18和未定性的LOC114422617这四个基因的表达水平随其转录本异构体的不同而变化。干旱胁迫下AS的发生可能起到消除易感基因或诱导耐受基因以适应干旱胁迫的作用。总之,本研究通过预测转录组和蛋白质组水平的代谢途径和AS事件的调控,揭示了野生大豆适应干旱的新机制,并为大豆育种提出了潜在的目标。
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来源期刊
Environmental and Experimental Botany
Environmental and Experimental Botany 环境科学-环境科学
CiteScore
9.30
自引率
5.30%
发文量
342
审稿时长
26 days
期刊介绍: Environmental and Experimental Botany (EEB) publishes research papers on the physical, chemical, biological, molecular mechanisms and processes involved in the responses of plants to their environment. In addition to research papers, the journal includes review articles. Submission is in agreement with the Editors-in-Chief. The Journal also publishes special issues which are built by invited guest editors and are related to the main themes of EEB. The areas covered by the Journal include: (1) Responses of plants to heavy metals and pollutants (2) Plant/water interactions (salinity, drought, flooding) (3) Responses of plants to radiations ranging from UV-B to infrared (4) Plant/atmosphere relations (ozone, CO2 , temperature) (5) Global change impacts on plant ecophysiology (6) Biotic interactions involving environmental factors.
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