生物技术通报 ›› 2026, Vol. 42 ›› Issue (9): 210-220.doi: 10.13560/j.cnki.biotech.bull.1985.2026-0174

• 植物发育生物学专题 • 上一篇    

无患子SmHD-ZIP25SmHD-ZIP29基因在花发育中的功能研究

陈宁一, 吴文彤, 赵国春, 贾黎明, 陈仲()   

  1. 北京林业大学林学院 林木资源高效生产全国重点实验室 国家能源非粮生物质原料研发中心 省部共建森林培育与保护教育部重点实验室 北京市高等学校林学实验教学中心,北京 100083
  • 收稿日期:2026-02-04 出版日期:2026-09-26 发布日期:2026-09-16
  • 通讯作者: 陈仲zhongchen@bjfu.edu.cn
  • 基金资助:
    国家自然科学基金面上项目(32371857);国家自然科学基金青年科学基金项目(C类)(32501628);国家重点研发计划项目(2023YFD2201103);福建省科技计划项目(2023N3005)

Functional Study of SmHD-ZIP25 and SmHD-ZIP29 Genes in Flower Development of Sapindus mukorossi

CHEN Ning-yi, WU Wen-tong, ZHAO Guo-chun, JIA Li-ming, CHEN Zhong()   

  1. College of Forestry, Beijing Forestry University, State Key Laboratory for Efficient Production of Forest Resources, National Energy R&D Center for Biomass, Key Laboratory for Silviculture and Conservation of Ministry of Education, Beijing Higher Education Forestry Experimental Teaching Center, Beijing 100083
  • Received:2026-02-04 Published:2026-09-26 Online:2026-09-16

摘要:

目的 探究无患子(Sapindus mukorossiSmHD-ZIP25SmHD-ZIP29在花发育及性别分化中的调控作用,为无患子分子设计育种提供有价值的参考基因。 方法 以无患子为材料,克隆HD-ZIP I亚家族成员SmHD-ZIP25SmHD-ZIP29,并对其进行序列比对、系统发育、亚细胞定位、表达模式分析,并通过拟南芥异源转化探究这2个基因功能。 结果 序列比对和系统进化树分析显示,SmHD-ZIP25SmHD-ZIP29具有完整的Homeodomain和Leucine Zipper结构域,且与参与性别分化的油柿MeGI基因高度同源;亚细胞定位表明二者蛋白均定位于细胞核。表达模式分析发现,SmHD-ZIP25SmHD-ZIP29在无患子雌雄花发育过程中呈现不同的表达规律,在无患子根、茎、叶组织中表达水平相似。与野生型拟南芥相比,过表达SmHD-ZIP25SmHD-ZIP29均能导致拟南芥出现早花、莲座叶卷曲、果荚发育不良等表型,并显著影响花器官发育。具体表现为雌蕊相对伸长,而雄蕊发育受到抑制(花药短小、花粉败育且活力严重下降);细胞学观察进一步证实转基因植株花药药室发育异常,花粉粒形态塌陷。RT-qPCR检测表明,这2个基因通过上调开花整合因子AtFT及心皮发育基因AtSHP2AtCRC的表达,同时抑制茉莉酸信号通路关键基因AtCOL1及其下游雄蕊发育核心因子AtAMSAtMYB21的表达,从而协同调控促雌抑雄的发育进程。 结论 SmHD-ZIP25SmHD-ZIP29是参与调控花器官发育平衡的关键因子,为阐明无患子花发育及性别分化的分子机制提供了新的理论依据。

关键词: 无患子, HD-ZIP转录因子, 花发育, 性别分化, 雌蕊发育, 雄蕊发育, 花粉育性, 分子调控机制

Abstract:

Objective To investigate the regulatory roles of SmHD-ZIP25 and SmHD-ZIP29 in Sapindus mukorossi flower development and sexual differentiation, and to provide valuable reference genes for its molecular design breeding. Method Using S. mukorossi as a model plant, two members of the HD-ZIP I subfamily, SmHD-ZIP25 and SmHD-ZIP29, were cloned. These genes were subjected to sequence alignment, phylogenetic analysis, subcellular localization, and expression pattern analysis. Their functions were further investigated through heterologous transformation in Arabidopsis. Result Sequence alignment and phylogenetic tree analysis revealed that SmHD-ZIP25 and SmHD-ZIP29 possessed complete Homeodomain and Leucine Zipper domains and exhibited high homology with the sex differentiation-related persimmon MeGI gene. Subcellular localization studies indicated that both proteins were localized in the nucleus. Expression pattern analysis revealed distinct expression patterns of SmHD-ZIP25 and SmHD-ZIP29 during S. mukorossi male and female flower development, while they showed similar expression levels in root, stem, and leaf tissues. Compared with wild-type Arabidopsis, overexpression of either SmHD-ZIP25 or SmHD-ZIP29 exhibited phenotypes including premature flowering, rosette leaf curling, and pod developmental abnormalities, significantly impairing floral organ development. Specifically, pistils exhibited relative elongation while stamen development was suppressed (shortened anthers, pollen abortion, and severely reduced pollen viability). Cytological observations further confirmed abnormal anther sac development and collapsed pollen grain morphology in transgenic plants. RT-qPCR analysis indicated that these two genes synergistically regulated female-promoting and male-suppressing developmental processes by upregulating the expression of the flowering integrator AtFT and of the carpel developmental genes AtSHP2 and AtCRC, while simultaneously suppressing the expression of the key jasmonic acid signaling pathway gene AtCOL1 and its downstream male organ developmental core factors AtAMS and AtMYB21. Conclusion SmHD-ZIP25 and SmHD-ZIP29 are key factors involved in regulating floral organ developmental balance, providing new theoretical support for elucidating the molecular mechanisms underlying S. mukorossi flower development and sexual differentiation.

Key words: Sapindus mukorossi, HD-ZIP transcription factor, flower development, sex differentiation, pistil development, stamen development, pollen fertility, molecular regulatory mechanism