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园艺学报 ›› 2024, Vol. 51 ›› Issue (6): 1216-1226.doi: 10.16420/j.issn.0513-353x.2023-0571

• 遗传育种·种质资源·分子生物学 • 上一篇    下一篇

桑树中miR408-MnBBP模块调节花青苷生物合成的机制

孙志超1, 郭新淼2, 王晖1, 谢岩1, 高妍夏1, 李季生1, 高玉军1,*()   

  1. 1 承德医学院蚕业研究所,河北承德 067000
    2 承德应用技术职业学院,河北承德 067000
  • 收稿日期:2023-09-20 修回日期:2024-04-02 出版日期:2024-12-18 发布日期:2024-06-21
  • 通讯作者:
    * E-mail:
  • 基金资助:
    河北省‘三三三人才工程’项目(A202101051); 河北省教育厅一般项目(QN2020236); 承德市基础研究专项(202205B069); 河北省自然科学基金项目(C2019406113); 承德医学院校级课题(202214); 河北省科技厅“技术创新引导专项—科技工作会商”项目

Mechanism of miR408-MnBBP Module Regulating Anthocyanin Biosynthesis in Mulberry

SUN Zhichao1, GUO Xinmiao2, WANG Hui1, XIE Yan1, GAO Yanxia1, LI Jisheng1, GAO Yujun1,*()   

  1. 1 Institute of Sericulture,Chengde Medical University,Chengde,Hebei 067000,China
    2 Chengde College of Applied Technology,Chengde,Hebei 067000,China
  • Received:2023-09-20 Revised:2024-04-02 Published:2024-12-18 Online:2024-06-21

摘要:

为探究桑树(Morus alba L.)miR408靶向MnBBP基因调控花青苷合成的分子机制,利用荧光定量PCR技术(qRT-PCR)、生物信息技术、5′-RACE及转基因技术分析了桑树miR408对桑葚花青苷的生物代谢途径的影响。序列比对发现桑树miR408序列与双子叶植物序列完全一致,与单子叶植物序列在第1个核苷酸位置存在单核苷酸多态性;qRT-PCR分析发现miR408在桑树不同组织差异表达,在叶片和果实表达水平最高;使用在线网站Omicstudio预测分析,发现桑树蓝铜结合蛋白基因MnBBP是miR408的靶基因,降解组测序结果也发现MnBBP能够被miR408靶向切割,利用5'-RACE技术进一步验证切割位点位于与miR408互补序列的第9至第10位碱基之间;拟南芥超表达miR408发现,转入桑树miR408提高了拟南芥叶片中花青苷水平;运用转录组测序技术分析转基因和野生型植株基因差异表达,发现差异表达基因富集在花青苷合成途径上,其中5个基因在超表达miR408植株上调得到了qRT-PCR验证。研究结果确定了MnBBP为桑树miR408的靶基因,miR408通过抑制MnBBP表达促进桑葚花青苷的积累。

关键词: 桑, 果实, miR408, MnBBP, 转基因, 花青苷

Abstract:

To elucidate the molecular mechanisms by which mulberry miR408 targets the MnBBP gene to modulate anthocyanin biosynthesis,the effect of mulberry miR408 on anthocyanin metabolism was analyzed by quantitative real-time PCR(qRT-PCR),bioinformatics analysis,5′-rapid amplification of cDNA ends(5′-RACE),and transgenic methodologies. Sequence alignment revealed that the miR408 sequence is identical to that of dicotyledonous plants,while featuring a single nucleotide polymorphism (SNP)at the first nucleotide position in monocotyledons. Expression profiling via qRT-PCR demonstrated differential expression patterns of miR408 across various mulberry tissues,with high expression levels observed in leaves and fruits. Through predictive analysis using the Omicstudio online platform,the mulberry blue-copper binding protein gene(MnBBP)was identified as a target gene of miR408. Degradome sequencing further corroborated that MnBBR is subject to specific cleavage by miR408. 5′-RACE analysis pinpointed the cleavage site between the 9th and 10th bases of the sequence complementary to miR408. Overexpression of mulberry miR408 in Arabidopsis thaliana led to elevated anthocyanin levels in the leaves. Transcriptomic analysis identified differentially expressed genes(DEGs)between the transgenic and wild-type plants,with a notable enrichment of DEGs in the anthocyanin biosynthetic pathway. The up-regulation of five key genes within this pathway was subsequently validated by qRT-PCR. Collectively,this study not only identifies MnBBP as a target gene of miR408 in mulberry,but also elucidates the regulatory roles of miR408 and MnBBP in anthocyanin biosynthesis.

Key words: mulberry, fruit, miR408, MnBBP, transgenic, anthocyanin