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荷花NnWRKY22基因的克隆与表达分析

王婉茹 刘莹 刘红利 贺丹 刘艺平 孔德政

王婉茹,刘莹,刘红利,等. 荷花NnWRKY22基因的克隆与表达分析 [J]. 福建农业学报,2022,37(4):486−491 doi: 10.19303/j.issn.1008-0384.2022.004.009
引用本文: 王婉茹,刘莹,刘红利,等. 荷花NnWRKY22基因的克隆与表达分析 [J]. 福建农业学报,2022,37(4):486−491 doi: 10.19303/j.issn.1008-0384.2022.004.009
WANG W R, LIU Y, LIU H L, et al. Cloning and Expression of NnWRKY22 in Lotus [J]. Fujian Journal of Agricultural Sciences,2022,37(4):486−491 doi: 10.19303/j.issn.1008-0384.2022.004.009
Citation: WANG W R, LIU Y, LIU H L, et al. Cloning and Expression of NnWRKY22 in Lotus [J]. Fujian Journal of Agricultural Sciences,2022,37(4):486−491 doi: 10.19303/j.issn.1008-0384.2022.004.009

荷花NnWRKY22基因的克隆与表达分析

doi: 10.19303/j.issn.1008-0384.2022.004.009
基金项目: 国家自然科学基金项目(31600568);河南省高等学校重点研究项目(21A220003);河南农业大学科技创新基金项目(KJCX2017C01)
详细信息
    作者简介:

    王婉茹(1998-),女,硕士,研究方向:风景园林植物资源应用(E-mail:wanruwork@163.com

    通讯作者:

    刘艺平(1977-),女,副教授,研究方向:风景园林植物资源应用(E-mail:Lyp_163@163.com

  • 中图分类号: S 682.32

Cloning and Expression of NnWRKY22 in Lotus

  • 摘要:   目的  克隆荷花(Nelumbo nucifera)NnWRKY22基因,分析该基因在荷花根、茎、叶、花中的表达模式及不同天数铜胁迫处理下的表达情况,为进一步研究该基因功能和荷花抗铜胁迫机制奠定基础。  方法  采用RT-PCR方法从荷花cDNA中克隆得到NnWRKY22基因,利用Prot Param等工具对NnWRKY22氨基酸序列进行分析,利用qRT-PCR方法分析NnWRKY22组织表达特异性以及在铜胁迫下表达量的变化。  结果  成功克隆得到荷花NnWRKY22基因,该基因ORF全长573 bp,编码190个氨基酸,含有1个保守的WRKY结构域。该蛋白理论分子量、等电点、不稳定系数和亲水性指数分别为:21.33 kDa、 9.03、71.93和−0.692,属于不稳定的亲水性蛋白。进化树分析表明荷花与洛矶山耧斗菜(Aquilegia coerulea)和博落回(Macleaya cordata)亲缘关系较近。qPCR结果表明,NnWRKY22在荷花的根、茎、叶、花中均有表达,但具有组织表达特异性,在根中表达量最高,花中表达量最低。NnWRKY22基因在铜胁迫下表达增强,胁迫7 d表达量达到最高值。  结论  克隆了荷花NnWRKY22基因,该基因在荷花中特异性表达,在根中表达量最高。NnWRKY22在铜胁迫下表达增强,推测该基因在荷花抗铜胁迫中发挥重要作用。
  • 图  1  NnWRKY22基因PCR扩增结果

    注:M:Marker DL2 000;WRKY22:目的条带。

    Figure  1.  PCR amplification of NnWRKY22 gene

    Note: M: Marker DL2 000; WRKY22: target band.

    图  2  NnWRKY22基因核苷酸序列及其推导的氨基酸序列

    注:*为终止密码子;红色框部分为 WRKYGQK 基序。

    Figure  2.  Nucleotide sequence and deduced amino acids of NnWRKY22

    Note: * indicates stop codon; sequence of WRKYGQK motif is highlighted in red.

    图  3  NnWRKY22蛋白保守结构域分析

    Figure  3.  The analysis of conserved domain for NnWRKY22 protein

    图  4  NnWRKY22磷酸化位点预测

    Figure  4.  Predicted phosphorylation site of NnWRKY22

    图  5  NnWRKY22与其他植物同源WRKY蛋白的系统进化树

    Figure  5.  Phylogenetic tree on NnWRKY22 and WRKY proteins of other plants

    图  6  NnWRKY22在荷花不同组织中的相对表达量

    注:* 与 ** 分别表示差异显著(P<0.05)或极显著(P<0.01)。

    Figure  6.  Relative expressions of NnWRKY22 in lotus tissuesThe same as Fig.7.

    Note: *and * * indicate significant difference (P < 0.05) or extremely significant difference (P < 0.01).图7同。

    图  7  铜胁迫下NnWRKY22的相对表达量

    Figure  7.  Relative expressions of NnWRKY22 under copper stress

    表  1  引物序列

    Table  1.   Primers

    引物名称
    Primer name
    引物序列(5′-3′)
    Primer sequence(5′-3′)
    NnWRKY22-FATGGAAGTCGACTGGGATCTACAA
    NnWRKY22-RCTAGAGACTAAAGACCCACCTGGGA
    qRT-NnWRKY22-FAATCGCGGACGGCTATTGAA
    qRT-NnWRKY22-RCTTCTCTTGGATCGAGGGGC
    18Sr RNA-F
    18Sr RNA-R
    CTACCTACAACTCCATCAT
    CTCATACGGTCAGCAATA
    下载: 导出CSV
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  • 收稿日期:  2021-12-07
  • 修回日期:  2022-03-08
  • 网络出版日期:  2022-04-24
  • 刊出日期:  2022-04-28

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