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    盖小雷, 刘艳华, 姚志敏, 杜咏梅, 闫宁, 张洪博, 戴培刚. 烟草茄尼醇积累与萜类关键酶基因表达的相关性[J]. 中国烟草科学, 2017, 38(1): 8-14. DOI: 10.13496/j.issn.1007-5119.2017.01.002
    引用本文: 盖小雷, 刘艳华, 姚志敏, 杜咏梅, 闫宁, 张洪博, 戴培刚. 烟草茄尼醇积累与萜类关键酶基因表达的相关性[J]. 中国烟草科学, 2017, 38(1): 8-14. DOI: 10.13496/j.issn.1007-5119.2017.01.002
    GE Xiaolei, LIU Yanhua, YAO Zhimin, DU Yongmei, YAN Ning, ZHANG Hongbo, DAI Peigang. Study on the Correlation between Solanesol Accumulation and Expression of Gene Encoding Terpenoid Synthetic Enzymes in Tobacco[J]. CHINESE TOBACCO SCIENCE, 2017, 38(1): 8-14. DOI: 10.13496/j.issn.1007-5119.2017.01.002
    Citation: GE Xiaolei, LIU Yanhua, YAO Zhimin, DU Yongmei, YAN Ning, ZHANG Hongbo, DAI Peigang. Study on the Correlation between Solanesol Accumulation and Expression of Gene Encoding Terpenoid Synthetic Enzymes in Tobacco[J]. CHINESE TOBACCO SCIENCE, 2017, 38(1): 8-14. DOI: 10.13496/j.issn.1007-5119.2017.01.002

    烟草茄尼醇积累与萜类关键酶基因表达的相关性

    Study on the Correlation between Solanesol Accumulation and Expression of Gene Encoding Terpenoid Synthetic Enzymes in Tobacco

    • 摘要: 为阐明萜类关键酶基因对烟草茄尼醇合成的影响,利用超高效液相色谱和实时定量荧光PCR,测定了茄尼醇含量差异显著的烟草品种红花大金元(含量高)和中烟90(含量低)6个发育时期根、茎、叶中茄尼醇含量以及萜类代谢关键酶基因的表达,并分析了其相关性。结果表明,红花大金元和中烟906个时期的茄尼醇含量均为叶 > 茎 > 根。在两品种中,萜类关键酶基因FPSDXRIPISPSGGPPS从苗期至开花期表达量逐渐上升,在根中现蕾期表达量最高,在茎、叶中开花期最高,随后迅速下降。相关性分析表明,DXSGGPPS与茄尼醇含量呈负相关,而FPSDXRSPS以及IPI基因的表达量与茄尼醇含量呈显著和极显著正相关,其在红花大金元中的高水平表达可能是造成两品种茄尼醇含量差异的主要原因。另外,根、茎中IPI基因与DXSFPSSPS基因的表达呈显著和极显著正相关;叶片中SPSFPSIPI基因的表达呈显著正相关,而与DXS基因的表达呈显著负相关,HMGRIPI基因表达呈极显著正相关。这些基因可能通过协同作用共同调控茄尼醇的合成与积累。

       

      Abstract: To reveal the impact of the genes encoding key enzymes in solanesol synthesis in tobacco, the UPLC (Ultra-performance Liquid Chromatography) was used to determine the solanesol contents of root, stem, and leaf, and real-time PCR assay was carried out to analyze the expression levels of genes encoding terpenoid synthetic enzymes at different development stages in tobacco cultivars Honghuadajinyuan and Zhongyan 90, whose solanesol contents are significantly different from each other. The correlations between the solanesol contents and the expression levels of these genes were also analyzed. The results showed that the trends of solanesol accumulation were consistent at different development stages in different organs of these cultivars i.e., the solanesol content of leaf was the highest while that of root was the lowest. The expression patterns of different terpenoid synthetic enzyme genes were not completely identical in these two cultivars. The expression levels of FPS, DXR, IPI, SPS, GGPPS increased gradually from the seeding stage to the flowering stage. The expression levels were the highest at the budding period in root, at the flowering period in stem and leaf, and then declined rapidly. The correlation analysis showed that the expression levels of DXS and GGPPS were negatively correlated with solanesol contents, but FPS, DXR, SPS and IPI exhibited extremely significant positive correlation with solanesol contents. The higher solanesol contents in Honghuadajinyuan may be caused by the higher expression levels of the genes. In addition, the expression level of IPI showed extremely significant positive correlation with that of DXS, FPS and SPS in tobacco root. The expression level of SPS has significantly positive correlation with FPS and IPI, but has significantly negative correlation with DXS in leaf. The expression level of IPI showed extremely significant positive correlation with HMGR in leaf. Which suggested these genes co-regulated the biosynthesis and accumulation of solanesol.

       

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