Single cell transcriptome reveals the molecular pathways of MADS-box genes in maize ovule development

生物 胚珠 分生组织 转录组 突变体 花序 异位表达 基因 表型 细胞生物学 拟南芥 雌蕊 遗传学 流苏 植物 形态发生 生长素 基因表达 细胞命运测定 拟南芥 基因表达调控 雄蕊 转化(遗传学) MADS箱 细胞分化 同源异型基因 基因表达谱 调节基因 同源盒
作者
Yunfu Li,Jimin Zhan,Tang Binfei,Guangliang Lin,Zhen Li,Yanwen Wang,Qin Sun,Juan Huang,Yanfang Du,Haijun Liu,Ning Yang,Mingqiu Dai,Zuxin Zhang,Lei Liu
出处
期刊:The Plant Cell [Oxford University Press]
标识
DOI:10.1093/plcell/koag280
摘要

Flowers are the reproductive structures of flowering plants, involved in seed production. A mature flower has four whorls of specialized organs that differentiate from heterogeneous cell clusters in the floral meristem. However, the mechanisms controlling the specialization of floral meristem cells remain elusive. Our early research identified a double mutant of two MADS-box genes (mads8;14) that lacks flower organs and repeatedly produces branch-like structures in the female inflorescence of maize (Zea mays L.). Here, single-cell transcriptomic analysis revealed that ZmMADS8/14 regulate ovule cell specialization and that branch-like structures are associated with defective floral meristem termination and enhanced proliferation of ovule epidermal cells in the mads8;14 mutant. ZmMADS8/14 restrict ZMM3 expression to the nucellus, whereas their loss results in ectopic ZMM3 expression co-localizing with KNOTTED1. ZMM3 suppresses the expression of floral organ identity genes such as B-class gene Zmm16/sterile tassel silky ear1, C-class gene Zea AGAMOUS1, E-class gene Bearded-ear1, and Drooping leaf1/Indeterminate floral apex1, while activating key factors involved in meristem maintenance. This indicates that ZmMADS8/14 suppress the meristematic activity but promote floral organ development by precisely regulating the level and domain of ZMM3 expression, leading to the formation of fertile florets and ovules. Additionally, knocking out ZMM3 partially rescues the defective phenotypes of the double mutant mads8;14, as well as increases the kernel number in the zmm3 mutant. These findings provide a new perspective for in-depth analysis of heterogeneous cell clusters, functions, and regulatory pathways in female floral organs, as well as potential targets for improving maize ear traits.

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