截形苜蓿
生物
传单(植物学)
转录因子
原基
多叶的
细胞生物学
抑制因子
形态发生
遗传学
抄写(语言学)
锌指转录因子
基因
锌指
植物
语言学
哲学
共生
细菌
作者
Liangliang He,Ye Liu,Yawen Mao,Xinyuan Wu,Xiaoling Zheng,Weiyue Zhao,Xiaoyu Mo,Ruoruo Wang,Q. Wu,Dongfa Wang,Youhan Li,Yanni Yang,Quanzi Bai,Xiaojia Zhang,Shaoli Zhou,Baolin Zhao,Changning Liu,Yu Liu,Million Tadege,Jianghua Chen
标识
DOI:10.1093/plcell/koae033
摘要
Abstract The milestone of compound leaf development is the generation of separate leaflet primordia during the early stages, which involves two linked but distinct morphogenetic events: leaflet initiation and boundary establishment for leaflet separation. Although some progress in understanding the regulatory pathways for each event have been made, it is unclear how they are intrinsically coordinated. Here, we identify the PINNATE-LIKE PENTAFOLIATA2 (PINNA2) gene encoding a newly identified GRAS transcription factor in Medicago truncatula. PINNA2 transcripts are preferentially detected at organ boundaries. Its loss-of-function mutations convert trifoliate leaves into a pinnate pentafoliate pattern. PINNA2 directly binds to the promoter region of the LEAFY orthologue SINGLE LEAFLET1 (SGL1), which encodes a key positive regulator of leaflet initiation, and down-regulates its expression. Further analysis revealed that PINNA2 synergizes with two other repressors of SGL1 expression, the BEL1-like homeodomain protein PINNA1 and the C2H2 zinc finger protein PALMATE-LIKE PENTAFOLIATA1 (PALM1), to precisely define the spatiotemporal expression of SGL1 in compound leaf primordia, thereby maintaining a proper pattern of leaflet initiation. Moreover, we showed that the enriched expression of PINNA2 at the leaflet-to-leaflet boundaries is positively regulated by the boundary-specific gene MtNAM, which is essential for leaflet boundary formation. Together, these results unveil a pivotal role of the boundary-expressed transcription factor PINNA2 in regulating leaflet initiation, providing molecular insights into the coordination of intricate developmental processes underlying compound leaf pattern formation.
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