野生大麦干旱胁迫下的 UGT 基因家族鉴定和 HvUGT1 功能分析

IF 3.4 3区 生物学 Q1 PLANT SCIENCES Physiology and Molecular Biology of Plants Pub Date : 2024-07-30 DOI:10.1007/s12298-024-01487-w
Zhenbao Feng, Tayachew Admas, Bingyun Cheng, Yutong Meng, Rui Pan, Wenying Zhang
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摘要

干旱胁迫对全球农业构成重大威胁,因此迫切需要阐明植物耐旱性的分子机制。UDP-糖基转移酶(UGT)基因家族在植物的多种生物过程中发挥着至关重要的作用。本研究对野生大麦 EC_S1 中的 UGT 基因家族进行了全面分析,重点关注基因特征、亚细胞定位、系统发育关系和蛋白质结构。共鉴定出 175 个 UGT 基因家族成员,它们在蛋白质长度、分子量、等电点、亲水性和亚细胞定位方面表现出不同的模式。大多数基因位于染色体末端。系统进化分析将 UGT 基因分为七个群,其中 E 群为大麦特异群。大麦各组织的表达分析表明,根和衰老叶的表达上调,这意味着大麦的作用多种多样。在干旱胁迫下,表达模式各不相同,耐旱品种比敏感品种的变化更小。聚类分析揭示了不同的表达模式,暗示了大麦干旱响应中的调控功能。作为一个案例,HvUGT1 被克隆出来。在拟南芥中过表达 HvUGT1 可增强耐旱性,增加保水性,减少细胞损伤,提高类黄酮水平。相反,在野生大麦中沉默 HvUGT1 会降低耐旱性,同时降低抗氧化酶活性和类黄酮含量。这些结果凸显了HvUGT1在增强植物耐旱性方面的重要性,可能是通过类黄酮介导的ROS清除作用。这项研究为通过有针对性的遗传操作策略开发抗旱作物提供了基因资源和有价值的见解。
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UGT gene family identification and functional analysis of HvUGT1 under drought stress in wild barley

Drought stress poses a significant threat to global agriculture, highlighting the urgent need to elucidate the molecular mechanisms underlying plant drought tolerance. The UDP-glycosyltransferase (UGT) gene family plays crucial roles in diverse biological processes in plants. In this study, we conducted a comprehensive analysis of the UGT gene family in wild barley EC_S1, focusing on gene characteristics, subcellular localization, phylogenetic relationships, and protein structure. A total of 175 UGT gene family members were identified, exhibiting diverse patterns in protein length, molecular weight, isoelectric point, hydrophilicity, and subcellular localization. Most genes are located at chromosome ends. Phylogenetic analysis grouped the UGT genes into seven clusters, with barley-specific group E. Expression analysis across barley tissues showed upregulation in roots and senescent leaves, implying diverse roles. Under drought stress, expression patterns varied, with drought-tolerant varieties showing fewer changes than sensitive ones. Clustering analysis revealed distinct expression patterns, suggesting regulatory functions in barley's drought response. As a case, the HvUGT1 was cloned. Overexpression of HvUGT1 in Arabidopsis enhanced drought tolerance, with increased water retention, reduced cell damage, and elevated flavonoid levels. Conversely, HvUGT1 silencing in wild barley decreased drought tolerance, accompanied by reduced antioxidant enzyme activity and flavonoid content. These results highlight HvUGT1’s importance in enhancing plant drought tolerance, possibly through flavonoid-mediated ROS clearance. The research provides gene resources and valuable insights for the development of drought-resistant crops through targeted genetic manipulation strategies.

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来源期刊
CiteScore
7.10
自引率
0.00%
发文量
126
期刊介绍: Founded in 1995, Physiology and Molecular Biology of Plants (PMBP) is a peer reviewed monthly journal co-published by Springer Nature. It contains research and review articles, short communications, commentaries, book reviews etc., in all areas of functional plant biology including, but not limited to plant physiology, biochemistry, molecular genetics, molecular pathology, biophysics, cell and molecular biology, genetics, genomics and bioinformatics. Its integrated and interdisciplinary approach reflects the global growth trajectories in functional plant biology, attracting authors/editors/reviewers from over 98 countries.
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