Mechanical forces exerted on floral primordia with a novel experimental system modify floral development in Arabidopsis thaliana.

IF 2.7 3区 生物学 Q2 PLANT SCIENCES
Journal of Plant Research Pub Date : 2024-09-01 Epub Date: 2024-07-11 DOI:10.1007/s10265-024-01557-w
Akitoshi Iwamoto, Yuna Yoshioka, Ryoka Nakamura, Takeshi Yajima, Wakana Inoue, Kaho Nagakura
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Abstract

Mechanical forces play a crucial role in plant development, including floral development. We previously reported that the phyllotactic variation in the staminate flowers of Ceratophyllum demersum may be caused by mechanical forces on the adaxial side of floral primordia, which may be a common mechanism in angiosperms. On the basis of this result, we developed a novel experimental system for analysis of the effects of mechanical forces on the floral meristem of Arabidopsis thaliana, aiming to induce morphological changes in flowers. In this experimental system, a micromanipulator equipped with a micro device, which is shaped to conform with the contour of the abaxial side of the young floral primordium, is used to exert contact pressure on a floral primordium. In the present study, we conducted contact experiments using this system and successfully induced diverse morphological changes during floral primordial development. In several primordia, the tip of the abaxial sepal primordium was incised with two or three lobes. A different floral primordium developed an additional sepal on the abaxial side (i.e., two abaxial sepals). Additionally, we observed the fusion of sepals in some floral primordia. These results suggest that mechanical forces have multiple effects on floral development, and changes in the tensile stress pattern in the cells of floral primordia are induced by the mechanical forces exerted with the micro device. These effects, in turn, lead to morphological changes in the floral primordia.

Abstract Image

用一种新的实验系统对花原基施加机械力,改变拟南芥的花发育。
机械力在植物发育(包括花的发育)过程中起着至关重要的作用。我们以前曾报道,Ceratophyllum demersum 雄花的分生组织变异可能是由花原基正面的机械力引起的,这可能是被子植物的一种常见机制。在此基础上,我们开发了一种新的实验系统来分析机械力对拟南芥花分生组织的影响,旨在诱导花的形态变化。在这个实验系统中,我们使用了一个装有微型装置的微型机械手,该装置的形状与幼嫩花原基背面的轮廓一致,用来对花原基施加接触压力。在本研究中,我们使用该系统进行了接触实验,并成功诱导了花原基发育过程中的各种形态变化。在几个原基中,背面萼片原基的顶端出现了两个或三个裂片。不同的花原基在背面长出了额外的萼片(即两个背面萼片)。此外,我们还观察到一些花原基的萼片融合。这些结果表明,机械力对花的发育有多重影响,花原基细胞中拉伸应力模式的变化是由微型装置施加的机械力引起的。这些影响进而导致花原基的形态变化。
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来源期刊
Journal of Plant Research
Journal of Plant Research 生物-植物科学
CiteScore
5.40
自引率
3.60%
发文量
59
审稿时长
1 months
期刊介绍: The Journal of Plant Research is an international publication that gathers and disseminates fundamental knowledge in all areas of plant sciences. Coverage extends to every corner of the field, including such topics as evolutionary biology, phylogeography, phylogeny, taxonomy, genetics, ecology, morphology, physiology, developmental biology, cell biology, molecular biology, biochemistry, biophysics, bioinformatics, and systems biology. The journal presents full-length research articles that describe original and fundamental findings of significance that contribute to understanding of plants, as well as shorter communications reporting significant new findings, technical notes on new methodology, and invited review articles.
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