Genome-wide analysis of KCS family in Medicago reveals MsKCS5's crucial role in abiotic stress adaptation.

IF 4.5 2区 生物学 Q1 PLANT SCIENCES
Yuwei Li, Xiaohan Chen, Huantao Wang, Xiaoyu Wang
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引用次数: 0

Abstract

Key message: Bioinformatics analysis identified 46 KCS genes in two Medicago species, linking their function to abiotic stresses with MsKCS5 enhancing yeast stress viability. The β-ketoacyl-CoA synthase (KCS) family, encoding pivotal rate-limiting enzymes for very-long-chain fatty acid biosynthesis, plays an indispensable role in plant cuticular wax formation. These hydrophobic layers constitute vital physical barriers that prevent water loss and pathogen penetration while simultaneously participating in stress signal transduction. Through comprehensive genome-wide analysis, 46 KCS genes were identified and characterized from two Medicago species: 19 in Medicago sativa and 27 in Medicago truncatula. Collinearity analysis further delineated the evolutionary trajectory of KCS genes, identifying tandem duplication events as a key driver of family diversification. Conserved motif architecture and exon-intron organization analyses demonstrated significant structural conservation within phylogenetic subgroups, suggesting functional coherence among paralogs. Promoter cis-element profiling uncovered an enrichment of stress-responsive and developmental regulatory motifs, aligning with the dual physiological roles of KCS genes. Transcriptomic analysis combined with RT-qPCR validation revealed differential expression patterns of alfalfa KCS members under drought, salinity, and cold stress, implicating their roles in abiotic stress adaptation. Subcellular localization assays via tobacco transient expression systems confirmed the plasma membrane targeting of MsKCS5, consistent with its putative function in extracellular wax deposition. Functional complementation assays in yeast heterologous expression systems revealed that MsKCS5 rescued stress-sensitive phenotypes, thereby verifying its conserved function in abiotic stress response mechanisms. This multi-omics framework elucidates the evolutionary dynamics and stress-responsive regulatory networks of KCS genes while identifying high-priority candidates for targeted genetic engineering to improve cuticular wax-mediated stress resilience in legume crops.

苜蓿KCS家族的全基因组分析揭示了MsKCS5在非生物胁迫适应中的重要作用。
关键信息:生物信息学分析鉴定了两种紫花苜蓿的46个KCS基因,将它们的功能与非生物胁迫联系起来,其中MsKCS5增强了酵母胁迫活力。β-酮酰基辅酶a合成酶(KCS)家族编码极长链脂肪酸生物合成的关键限速酶,在植物角质层蜡的形成中起着不可或缺的作用。这些疏水层构成了重要的物理屏障,防止水分流失和病原体渗透,同时参与胁迫信号转导。通过全基因组分析,从苜蓿(Medicago sativa)和苜蓿(Medicago truncatula)中分别鉴定了19个和27个KCS基因。共线性分析进一步描绘了KCS基因的进化轨迹,确定串联重复事件是家族多样化的关键驱动因素。保守的基序结构和外显子-内含子组织分析表明,在系统发育亚群中存在显著的结构保守性,表明类似物之间存在功能一致性。启动子顺式元件分析揭示了丰富的应激反应和发育调节基序,与KCS基因的双重生理作用一致。转录组学分析结合RT-qPCR验证揭示了苜蓿KCS成员在干旱、盐度和寒冷胁迫下的差异表达模式,暗示其在非生物胁迫适应中的作用。通过烟草瞬时表达系统进行的亚细胞定位实验证实了MsKCS5在质膜上的靶向性,这与它在细胞外蜡沉积中的假设功能一致。酵母异种表达系统的功能互补实验显示,MsKCS5挽救了胁迫敏感表型,从而验证了其在非生物胁迫应答机制中的保守功能。该多组学框架阐明了KCS基因的进化动力学和应激响应调控网络,同时确定了靶向基因工程的高优先级候选基因,以提高豆科作物表皮蜡介导的应激恢复能力。
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来源期刊
Plant Cell Reports
Plant Cell Reports 生物-植物科学
CiteScore
10.80
自引率
1.60%
发文量
135
审稿时长
3.2 months
期刊介绍: Plant Cell Reports publishes original, peer-reviewed articles on new advances in all aspects of plant cell science, plant genetics and molecular biology. Papers selected for publication contribute significant new advances to clearly identified technological problems and/or biological questions. The articles will prove relevant beyond the narrow topic of interest to a readership with broad scientific background. The coverage includes such topics as: - genomics and genetics - metabolism - cell biology - abiotic and biotic stress - phytopathology - gene transfer and expression - molecular pharming - systems biology - nanobiotechnology - genome editing - phenomics and synthetic biology The journal also publishes opinion papers, review and focus articles on the latest developments and new advances in research and technology in plant molecular biology and biotechnology.
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