Ectopic Expression of ScALDH21 From a Desert Moss Enhances Cotton Resistance to Verticillium Wilt via the Modulation of Jasmonates and Phenylpropanoid Pathways

IF 10.5 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Honglan Yang, Xiaoshuang Li, Tohir A. Bozorov, Jianwei Zhang, Aerguli Jiamahate, Dawei Zhang, Jiancheng Wang, Qilin Yang, Zongrang Liu, Dina Mahesati, Haijiang Xu, Shuangxia Jin, Daoyuan Zhang, Yongqiang Dai
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Abstract

Biotic stresses, particularly Verticillium wilt (VW), lead to a global decline in cotton yields. Here, we demonstrate that ectopic expression of ScALDH21 , a gene from the desiccation‐tolerant moss Syntrichia caninervis Mitt. and absent in angiosperms, enhances cotton's resistance to VW. Multi‐year, multiple location field evaluations showed that transgenic cotton lines consistently exhibited two major advantages: markedly improved resistance to VW, and significantly reduced yield loss, with an approximate 23.8% yield increase relative to non‐transgenic counterparts under pathogen infection conditions. This disease resistance is associated with enhanced capacity of the transgenic lines to scavenge reactive oxygen species (ROS), induced by pathogen infection. This finding aligns with the ScALDH21 ‐conferred detoxification function. Transcriptome analyses revealed a significant alteration in expression pattern of those genes that regulate phenylpropanoid and jasmonic acid (JA) pathways. Correspondingly, the accumulation of lignin and defence‐related metabolites (e.g., rutin, cyanidin and jasmonates) significantly increased, suggesting that ScALDH21 ‐mediated activation of the phenylpropanoid and JA pathways contributes to enhanced resistance. Analyses of ScALDH21 binding activity using CUT&Tag and EMSA assays showed that it can bind to specific gene promoters within the cotton genome, highlighting that ScALDH21 not only catalyses the detoxification of aldehydes but also gains transcriptional regulatory roles. In summary, we demonstrate that expression of the heterologous ScALDH21 in cotton leads to enhancement of resistance to VW and elucidated the mechanism. Our findings further demonstrate a promising strategy to improve biotic resistance in crops by utilizing unique functional genes from evolutionarily distant species in extreme environments.
荒漠苔藓异位表达ScALDH21通过茉莉酸盐和苯丙素途径增强棉花对黄萎病的抗性
生物胁迫,特别是黄萎病(VW),导致全球棉花产量下降。在这里,我们证明了ScALDH21基因的异位表达,这是一个来自耐干燥苔藓蟹嘴藓的基因。在被子植物中不存在,增强了棉花对VW的抵抗力。多年、多地点的田间评价表明,转基因棉系始终表现出两大优势:一是显著提高对VW的抗性,二是显著降低产量损失,在病原体感染条件下,与非转基因棉系相比,转基因棉系的产量提高了约23.8%。这种抗病性与转基因品系清除病原体感染诱导的活性氧(ROS)的能力增强有关。这一发现与ScALDH21赋予的解毒功能一致。转录组分析显示,调节苯丙酸和茉莉酸(JA)途径的基因表达模式发生了显著变化。相应地,木质素和防御相关代谢物(如芦丁、花青素和茉莉酸盐)的积累显著增加,表明ScALDH21介导的苯丙素和茉莉酸途径的激活有助于增强抗性。利用CUT&;Tag和EMSA分析ScALDH21的结合活性发现,它可以结合棉花基因组中特定的基因启动子,这表明ScALDH21不仅可以催化醛解毒,还可以获得转录调控作用。综上所述,我们证明了异源ScALDH21在棉花中的表达可以增强棉花对VW的抗性,并阐明了其机制。我们的研究结果进一步证明了在极端环境中利用进化距离较远物种的独特功能基因来提高作物生物抗性的一种有希望的策略。
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来源期刊
Plant Biotechnology Journal
Plant Biotechnology Journal 生物-生物工程与应用微生物
CiteScore
20.50
自引率
2.90%
发文量
201
审稿时长
1 months
期刊介绍: Plant Biotechnology Journal aspires to publish original research and insightful reviews of high impact, authored by prominent researchers in applied plant science. The journal places a special emphasis on molecular plant sciences and their practical applications through plant biotechnology. Our goal is to establish a platform for showcasing significant advances in the field, encompassing curiosity-driven studies with potential applications, strategic research in plant biotechnology, scientific analysis of crucial issues for the beneficial utilization of plant sciences, and assessments of the performance of plant biotechnology products in practical applications.
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