Cellular mechanism of polarized auxin transport on fruit shape determination revealed by time-lapse live imaging.

IF 2.9 4区 生物学 Q2 PLANT SCIENCES
Yao Zhang, Hao-Ran Sun, Zhi-Cheng Hu, Yang Dong
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Abstract

Key message: Polarized auxin transport regulates fruit shape determination by promoting anisotropic cell growth. Angiosperms produce organs with distinct shape resultant from adaptive evolution. Understanding the cellular basis underlying the development of plant organ has been a central topic in plant biology as it is key to unlock the mechanisms leading to the diversification of plants. Variations in the location of synthesis, polarized auxin transport (PAT) have been proposed to account for the development of diverse organ shapes, but the exact cellular mechanism has yet to be elucidated. The Capsella rubella develops a perfect heart-shaped fruit from an ovate shape gynoecium that is tightly linked to the localized auxin synthesis in the valve tips and provides a unique opportunity to address this question. In this study, we studied auxin movement in the fruits and the cellular effect of N-1-Naphthylphthalamic Acid (NPA) on the fruit shape determination by constructing the pCrPIN3:PIN3:GFP reporter and live-imaging. We found PAT in the valve epidermis is in congruent with fruit shape development and NPA treatment disrupts the heat-shaped fruit development mainly by repressing cell anisotropic growth with minor effect on division. As the Capsella fruit is unusually big in size, we also included a detailed step-by-step protocol on how to conduct live-imaging experiment. We further test the utility of this protocol by conducting a live-imaging analysis of the gynophore in Arachis hypogaea. Collectively, the results of this study elucidated the mechanism on how auxin signal was translated into instructions guiding cell growth during organ shape determination. In addition, the description of the detailed live-imaging protocol will encourage further studies of the cellular mechanisms underlying shape diversification in angiosperms.

通过延时实时成像揭示果实形状决定过程中极化辅助素运输的细胞机制。
关键信息:极化的辅助素运输通过促进各向异性的细胞生长来调节果实形状的决定。在适应性进化过程中,被子植物产生了具有独特形状的器官。了解植物器官发育的细胞基础一直是植物生物学的核心课题,因为这是解开植物多样化机制的关键。有人提出,合成极化辅助素运输(PAT)位置的变化可解释器官形状多样化的原因,但确切的细胞机制仍有待阐明。风信子(Capsella rubella)从卵形雌蕊中发育出完美的心形果实,这与气门顶端的局部辅助素合成密切相关,为解决这一问题提供了一个独特的机会。在这项研究中,我们通过构建 pCrPIN3:PIN3:GFP 报告和活体成像,研究了果实中的辅素运动以及 N-1-Naphthylphthalamic Acid(NPA)对果实形状决定的细胞效应。我们发现气门表皮中的 PAT 与果实形状的发育一致,NPA 处理主要通过抑制细胞各向异性生长来破坏热形果实的发育,而对分裂的影响较小。由于毛果藻果实异常巨大,我们还提供了一个详细的活体成像实验步骤。我们通过对 Arachis hypogaea 的雌蕊柄进行活体成像分析,进一步检验了这一方案的实用性。总之,本研究的结果阐明了在器官形状决定过程中,辅助素信号如何转化为指导细胞生长的指令的机制。此外,详细的活体成像方案的描述将鼓励人们进一步研究被子植物形状多样化的细胞机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Plant Reproduction
Plant Reproduction PLANT SCIENCES-REPRODUCTIVE BIOLOGY
CiteScore
6.30
自引率
2.90%
发文量
19
期刊介绍: Plant Reproduction (formerly known as Sexual Plant Reproduction) is a journal devoted to publishing high-quality research in the field of reproductive processes in plants. Article formats include original research papers, expert reviews, methods reports and opinion papers. Articles are selected based on significance for the field of plant reproduction, spanning from the induction of flowering to fruit development. Topics incl … show all
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