数字农科院2.0

棉花调控色素腺体发育和植物抗毒素合成的新分子机制

文献类型: 中文期刊

作者: 张晓林;徐洁森;闫建斌

作者机构:

关键词: (1-1-1)

期刊名称:中国科学:生命科学

ISSN: 1674-7232

年卷期: 2024 年

页码:

收录情况: 北大核心(2023版) ; ; CSCD(2023-2024年度) ; ; 科技核心(2024版)

摘要: 棉花是世界范围广泛种植的重要经济作物,其棉纤维是纺织工业的重要原料.棉花色素腺体是棉属植物特有的合成和贮存次生代谢物的特殊结构,广泛分布在棉花的各个组织中[1].这些色素腺体合成和贮存大量的非挥发性棉酚型萜类,以及挥发性单萜和倍半萜类等,在棉花抵抗病虫害中发挥重要的作用[2].在前期工作中,研究人员通过单细胞测序技术构建了棉花叶片转录组图谱,发现了大量萜类合成相关基因在棉花色素腺体中特异性表达[3,4].这些腺体的形成受到多个基因调控,包括gl1,gl2,gl3,gl4,gl5和gl6,每个基因同时又存在多个复等位基因.其中,gl2和gl3在色素腺体形成中发挥了主要作用,控制棉花子叶、叶片、茎、叶柄、心皮壁腺体的形成[5].2016年,张天真教授和陈晓亚研究员团队[6]首次克隆得到了Gl2的等位基因Gl2e(GoPGF),该基因被证明是控制棉花腺体形成的关键基因,属于bHLH-MYC转录因子家族,在棉花腺体形成以及棉酚型萜类物质含量的调控中具有重要正调控作用.然而,对于棉花负反馈调控色素腺体发育及相关萜类生物合成的分子机制一直不清楚.

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