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广西师范大学学报(自然科学版) ›› 2023, Vol. 41 ›› Issue (4): 189-199.doi: 10.16088/j.issn.1001-6600.2022080108
谢道龙1,2#, 邹肖肖1,2#, 李美玲1,2, 游昌乔1,2, 周苹1,2, 肖文君1,2, 郭新红1,2*
XIE Daolong1,2#, ZOU Xiaoxiao1,2#, LI Meiling1,2, YOU Changqiao1,2, ZHOU Ping1,2, XIAO Wenjun1,2, GUO Xinhong1,2*
摘要: 在拟南芥Arabidopsis thaliana中, 凝集素类受体激酶(lectin receptor-like kinases,LecRKs)包含86个成员,在植物对生物及非生物胁迫反应中起关键作用。AtLecRKIII.2作为LecRKs家族的一员,其具体功能未见报道。本文通过实时定量PCR和三引物法鉴别AtLecRKIII.2基因的过表达植株及纯合缺失突变体。启动子顺式作用元件分析发现,AtLecRKIII.2基因有多种与调控胁迫、激素等反应相关的功能元件。组织表达模式分析表明,AtLecRKIII.2基因于果荚中具有较高的转录水平,茎中的转录水平次之。逆境及激素响应模式分析表明,AtLecRKIII.2基因对外源生长素(3-indoleacetic acid,IAA)、油菜素内酯(brassinolide,BL)、赤霉素(gibberellins,GAs)、PEG8000、高温和低温均具有不同程度的响应。萌发率及根长实验结果表明,NaCl或Mannitol处理后,LecRKIII.2-OE的种子萌发率高于野生型,而lecrkiii.2的种子萌发率低于野生型。用生长素处理后,LecRKIII.2-OE根的伸长被显著抑制,且其体内与生长素应答和运输相关基因的转录水平显著变化。上述研究结果表明,AtLecRKIII.2基因正调控拟南芥对盐胁迫、渗透胁迫的耐受性和涉及根的生长发育。研究结果为进一步深入研究AtLecRKIII.2基因在植物非生物胁迫及激素信号转导中的生理功能提供参考数据。
中图分类号: Q943.3
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