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复叶的几何形状在由mtdwarf4a调控的蒺藜苜蓿叶片运动中起着重要作用。

The geometry of the compound leaf plays a significant role in the leaf movement of Medicago truncatula modulated by mtdwarf4a.

作者信息

Zhao Weiyue, Bai Quanzi, Zhao Baolin, Wu Qing, Wang Chaoqun, Liu Ye, Yang Tianquan, Liu Yu, He Hua, Du Shanshan, Tadege Million, He Liangliang, Chen Jianghua

机构信息

CAS Key Laboratory of Tropical Plant Resources and Sustainable Use, CAS Center for Excellence in Molecular Plant Sciences, Xishuangbanna Tropical Botanical Garden, Chinese Academy of Sciences, 88 Xuefu Road, Kunming, Yunnan, 650223, China.

University of Chinese Academy of Sciences, Beijing, 100049, China.

出版信息

New Phytol. 2021 Apr;230(2):475-484. doi: 10.1111/nph.17198. Epub 2021 Feb 16.

Abstract

In most legumes, two typical features found in leaves are diverse compound forms and the pulvinus-driven nyctinastic movement. Many genes have been identified for leaf-shape determination, but the underlying nature of leaf movement as well as its association with the compound form remains largely unknown. Using forward-genetic screening and whole-genome resequencing, we found that two allelic mutants of Medicago truncatula with unclosed leaflets at night were impaired in MtDWARF4A (MtDWF4A), a gene encoding a cytochrome P450 protein orthologous to Arabidopsis DWARF4. The mtdwf4a mutant also had a mild brassinosteroid (BR)-deficient phenotype bearing pulvini without significant deficiency in organ identity. Both mtdwf4a and dwf4 could be fully rescued by MtDWF4A, and mtdwf4a could close their leaflets at night after the application of exogenous 24-epi-BL. Surgical experiments and genetic analysis of double mutants revealed that the failure to exhibit leaf movement in mtdwf4a is a consequence of the physical obstruction of the overlapping leaflet laminae, suggesting a proper geometry of leaflets is important for their movement in M. truncatula. These observations provide a novel insight into the nyctinastic movement of compound leaves, shedding light on the importance of open space for organ movements in plants.

摘要

在大多数豆科植物中,叶片具有两种典型特征,即多样的复叶形态和由叶枕驱动的感夜性运动。已经鉴定出许多决定叶片形状的基因,但叶片运动的内在本质及其与复叶形态的关联在很大程度上仍不清楚。通过正向遗传学筛选和全基因组重测序,我们发现,蒺藜苜蓿的两个等位基因突变体在夜间小叶不能闭合,其MtDWARF4A(MtDWF4A)基因功能受损,该基因编码一种与拟南芥DWARF4直系同源的细胞色素P450蛋白。mtdwf4a突变体还具有轻度的油菜素内酯(BR)缺乏表型,叶枕存在,但器官特征无明显缺陷。mtdwf4a和dwf4都可以被MtDWF4A完全拯救,并且在施加外源24-表油菜素内酯(24-epi-BL)后,mtdwf4a的小叶在夜间可以闭合。手术实验和双突变体的遗传分析表明,mtdwf4a不能表现出叶片运动是小叶叶片重叠造成物理阻碍的结果,这表明合适的小叶几何形状对蒺藜苜蓿叶片的运动很重要。这些观察结果为复叶的感夜性运动提供了新的见解,揭示了植物器官运动中开放空间的重要性。

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