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      bodiana [J]. Planta Medꎬ 77(18):2053-2056.        bustness of the flavonoid transcriptional regulatory network
   MEI WLꎬ LUO Yꎬ WANG Hꎬ et al.ꎬ 2013. Two new flavonoids  revealed by comprehensive analyses of MYB ̄bHLH ̄WDR
      from dragons blood of Dracaena cambodiana [J]. Bull Ko ̄  complexes and their targets in Arabidopsis seed [ J]. New
      rean Chem Socꎬ 34(6):1791-1794.                   Phytolꎬ 202(1):132-144.
   NAVAL MDMꎬ GIL ̄MUÑOZ Fꎬ LLORET Aꎬ et al.ꎬ 2016. A  XU Wꎬ DUBOS Cꎬ LEPINIEC Lꎬ 2015. Transcriptional control
      WD40 ̄repeat protein from persimmon interacts with the  of flavonoid biosynthesis by MYB ̄bHLH ̄WDR complexes
      regulators of proanthocyanidin biosynthesis DkMYB2 and  [J]. Trends Plant Sciꎬ 20(3):176-185.
      DkMYB4 [J]. Tree Genet Genomesꎬ 12(1):1-11.    YANG BPꎬ ZHANG SZꎬ CAI WWꎬ et al.ꎬ 2009. Induced
   PETRUSSA Eꎬ BRAIDOT Eꎬ ZANCANI Mꎬ et al.ꎬ 2013. Plant  formation of dragons blood in the process of tissue culture of
      flavonoids ̄biosynthesisꎬ transport and involvement in stress  Cambodia dragon blood ( Dracaena cambodiana Pierre ex
      responses [J]. Int J Mol Sciꎬ 14(7):14950-14973.  Gagnep) [J]. Chin J Trop Cropsꎬ 30(2):181-185. [杨本鹏ꎬ
   TOHGE Tꎬ DE LSꎬ FERNIE ARꎬ 2017. Current understanding  张树珍ꎬ 蔡文伟ꎬ 等ꎬ 2009. 海南龙血树组织培养过程中血
      of the pathways of flavonoid biosynthesis in model and crop  竭形成的诱导 [J]. 热带作物学报ꎬ 30(2):181-185.]
      plants [J]. J Exp Botꎬ 68(15):4013-4028.       YAO Pꎬ ZHAO Hꎬ LUO Xꎬ et al.ꎬ 2017. Fagopyrum tataricum
   WANG Hꎬ JIANG HMꎬ LI FXꎬ et al.ꎬ 2017. Flavonoids from  FtWD40ꎬ functions as a positive regulator of anthocyanin
      artificially induced dragons blood of Dracaena cambodiana  biosynthesis in transgenic tobacco [J]. J Plant Growth Regꎬ
      [J]. Fitoterapiaꎬ 121(1):1-5.                     36(3):1-11.
   WANG JYꎬ DAI HFꎬ LI HHꎬ et al.ꎬ 2015. Molecular and func ̄  YUAN LBꎬ PENG ZHꎬ ZHI TTꎬ et al.ꎬ 2015. Brassinosteroid
      tional characterization of the chalcone synthase gene  enhances cytokinin ̄induced anthocyanin biosynthesis in Ara ̄
      (DcCHS1) promoter in response to hormones [ J]. Plant  bidopsis seedlings [J]. Biol Plantarumꎬ 59(1):99-105.
      Omicsꎬ 8:398-404.                              ZHENG DJꎬ XIE LSꎬ WANG Yꎬ et al.ꎬ 2009. Research ad ̄
   WANG XHꎬ GONG Mꎬ TANG Lꎬ et al.ꎬ 2013. Cloningꎬ bioin ̄  vances in dragon’ s blood plants in China [J]. Chin Wild
      formatics and the enzyme activity analyses of a phenylalanine  Plant Resꎬ 28:15 - 20. [ 郑 道 君ꎬ 谢 良 商ꎬ 王 盈ꎬ 等ꎬ
      ammonia ̄lyase gene involved in dragons blood biosynthesis  2009. 中国血竭基源植物的研究与利用 [J]. 中国野生植
      in Dracaena cambodiana [J]. Mol Biol Repꎬ 40:97-107.  物资源ꎬ 28(6):15-20.]
   WANG XHꎬ ZHANG CHꎬ YANG LLꎬ et al.ꎬ 2011. Production  ZHENG QAꎬ SAITO Yꎬ MATSUO Yꎬ et al.ꎬ 2012. Flavonoid oli ̄
      of dragons blood in Dracaena cochinchinensis plants by  gomers from Chinese dragon’s bloodꎬ the red resins of Dra ̄
      inoculation of Fusarium proliferatum [ J ]. Plant Sciꎬ  caena cochinchinensis [ J]. Nat Prod Bioprospectꎬ 2 (3):
      180(2):292-299.                                   111-116.
   XIN Lꎬ LAN Zꎬ AHAMMED GJꎬ et al.ꎬ 2017. Nitric oxide me ̄  ZHU JHꎬ CAO TJꎬ DAI HFꎬ et al.ꎬ 2016. De Novo transcriptome
      diates brassinosteroid ̄induced flavonoid biosynthesis in Ca ̄  characterization of Dracaena cambodiana and analysis of genes
      mellia sinensis L. [J]. J Plant Physiolꎬ 214:145-151.  involved in flavonoid accumulation during formation of
   XU Cꎬ MIN Jꎬ 2011. Structure and function of WD40 domain  dragons blood [J]. Sci Repꎬ 6:38315.
      proteins [J]. Protein Cellꎬ 2(3):202-214.
   XU Wꎬ GRAIN Dꎬ BOBET Sꎬ et al.ꎬ 2014. Complexity and ro ̄                        (责任编辑  周翠鸣)
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