Transcriptomic insights into the stress signaling and drought tolerance mechanisms in sea-island cotton (Gossypium barbadense)

IF 4.5 2区 生物学 Q2 ENVIRONMENTAL SCIENCES Environmental and Experimental Botany Pub Date : 2024-12-01 DOI:10.1016/j.envexpbot.2024.106048
Tahir Mahmood , Shoupu He , De Zhu , Hongge Li , Xiaoli Geng , Baojun Chen , Xianpeng Xiong , Xuai Dai , Xiongfeng Ma , Xiongming Du , Guanjing Hu
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Abstract

Drought stress significantly impacts plant growth and agricultural productivity. Elucidating the molecular mechanisms underlying drought stress response and plant tolerance is crucial for developing resilient crops. In Gossypium barbadense (G. barbadense), the specific genetic responses to drought stress remain underexplored. To provide insights into the transcriptomic dynamics and tolerance mechanisms in G. barbadense, we screened a diverse panel of G. barbadense accessions to identify drought-tolerant genotypes and investigate drought-stress responses across root and shoot tissues at two distinct time points. Differentially expressed genes (DEGs) analysis revealed diverse drought-responsive genes across tissue types and treatment time points. Functional enrichment and predictive protein-protein interaction (PPI) network analyses elucidated intricate patterns of drought-stress signaling pathways and transcriptional regulatory mechanisms. These upregulated DEGs were enriched in functional categories such as hormone signal transduction, phosphatidylinositol signaling system, ubiquitin-mediated proteolysis, phenylpropanoid biosynthesis, glutathione metabolism, and carbon metabolism pathways. The PPI network analysis underscores the activation of key signaling genes such as plant U-box E3 ubiquitin ligases (PUBs), protein phosphatase 2 C (PP2Cs), and F-Box genes, as well as transcriptional factors (CBF/NFYA) and various effector genes. These networks revealed the activation of effector genes involved in phenylpropanoid biosynthesis (Thioredoxin like 2–1, 1-Cys), glutathione metabolism (Thioredoxin, GPX6), and carbohydrate/sugar metabolism (GBSSI, AMY1.1). Gene silencing experiments validated the regulatory roles predicted for PUBs and PP2Cs in stress signaling and NFYA transcriptional factor in modifying the plant morphology and physiology to enhance drought tolerance. This research provides critical insights into the genetic signatures of stress signaling and regulatory pathways associated with drought tolerance in G. barbadense. The identified candidate genes are valuable for targeted breeding efforts to enhance drought tolerance and crop yield.
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海岛棉(Gossypium barbadense)胁迫信号和抗旱机制的转录组学研究
干旱胁迫显著影响植物生长和农业生产力。阐明干旱胁迫响应和植物耐受性的分子机制对培育抗旱性作物至关重要。在巴巴多斯棉(G. barbadense)中,对干旱胁迫的特定遗传反应尚未得到充分的研究。为了深入了解巴巴多斯(G. barbadense)的转录组动力学和耐旱机制,我们筛选了不同种类的巴巴多斯(G. barbadense)材料,以鉴定耐旱基因型,并研究了两个不同时间点根系和茎部组织对干旱胁迫的响应。差异表达基因(DEGs)分析显示,不同组织类型和处理时间点的干旱响应基因存在差异。功能富集和预测蛋白-蛋白相互作用(PPI)网络分析揭示了干旱胁迫信号通路的复杂模式和转录调控机制。这些上调的deg在激素信号转导、磷脂酰肌醇信号系统、泛素介导的蛋白质水解、苯丙素生物合成、谷胱甘肽代谢和碳代谢途径等功能类别中富集。PPI网络分析强调了关键信号基因的激活,如植物U-box E3泛素连接酶(pub)、蛋白磷酸酶2 C (pp2c)和F-Box基因,以及转录因子(CBF/NFYA)和各种效应基因。这些网络揭示了参与苯丙素生物合成(Thioredoxin like 2 - 1,1 - cys)、谷胱甘肽代谢(Thioredoxin, GPX6)和碳水化合物/糖代谢(GBSSI, AMY1.1)的效应基因的激活。基因沉默实验验证了预测的pub和pp2c在胁迫信号中的调控作用以及NFYA转录因子在改变植物形态和生理以增强耐旱性方面的调控作用。这项研究为巴贝登斯干旱耐受性相关的胁迫信号和调控途径的遗传特征提供了重要的见解。所鉴定的候选基因对提高作物抗旱性和产量的有针对性育种工作具有重要价值。
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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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