AtALMT5 在拟南芥中介导液泡富马酸的输入并调节苹果酸/富马酸的平衡。

IF 9.4 1区 生物学 Q1 Agricultural and Biological Sciences New Phytologist Pub Date : 2024-09-05 DOI:10.1111/nph.20077
Roxane Doireau, Justyna Jaślan, Paloma Cubero-Font, Elsa Demes-Causse, Karen Bertaux, Cédric Cassan, Pierre Pétriarcq, Alexis De Angeli
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引用次数: 0

摘要

苹果酸盐和富马酸盐占光合作用固定碳的很大一部分,它们处于中央代谢途径的十字路口。在拟南芥中,它们被暂时储存在液泡中,以保持细胞平衡。液泡膜上的苹果酸和富马酸转运系统是控制细胞代谢的关键角色。值得注意的是,这些转运系统的分子特性大部分仍未得到解决。我们将成像、电生理学和分子生理学结合起来,确定了二羧酸跨滋养层转运的一个重要分子角色。在此,我们报告了大连蛛铝激活的苹果酸转运体 5(AtALMT5)的功能。我们研究了它在体内的离子转运特性、表达模式、定位和功能。我们的研究表明,AtALMT5 在光合作用活跃的组织中表达,并定位在调质体中。膜片钳和植物体分析表明,AtALMT5 是一种离子通道,介导液泡中富马酸盐的负载。我们发现在 almt5 植物中,叶片中富马酸的积累减少,与此同时苹果酸的浓度增加。这些结果确定了 AtALMT5 是一种离子通道,它介导叶肉细胞液泡中的富马酸盐运输,并调节拟南芥中苹果酸盐/富马酸盐的平衡。
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AtALMT5 mediates vacuolar fumarate import and regulates the malate/fumarate balance in Arabidopsis.

Malate and fumarate constitute a significant fraction of the carbon fixed by photosynthesis, and they are at the crossroad of central metabolic pathways. In Arabidopsis thaliana, they are transiently stored in the vacuole to keep cytosolic homeostasis. The malate and fumarate transport systems of the vacuolar membrane are key players in the control of cell metabolism. Notably, the molecular identity of these transport systems remains mostly unresolved. We used a combination of imaging, electrophysiology and molecular physiology to identify an important molecular actor of dicarboxylic acid transport across the tonoplast. Here, we report the function of the A. thaliana Aluminium-Activated Malate Transporter 5 (AtALMT5). We characterised its ionic transport properties, expression pattern, localisation and function in vivo. We show that AtALMT5 is expressed in photosynthetically active tissues and localised in the tonoplast. Patch-clamp and in planta analyses demonstrated that AtALMT5 is an ion channel-mediating fumarate loading of the vacuole. We found in almt5 plants a reduced accumulation of fumarate in the leaves, in parallel with increased malate concentrations. These results identified AtALMT5 as an ion channel-mediating fumarate transport in the vacuoles of mesophyll cells and regulating the malate/fumarate balance in Arabidopsis.

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来源期刊
New Phytologist
New Phytologist PLANT SCIENCES-
CiteScore
17.60
自引率
5.30%
发文量
728
审稿时长
1 months
期刊介绍: New Phytologist is a leading publication that showcases exceptional and groundbreaking research in plant science and its practical applications. With a focus on five distinct sections - Physiology & Development, Environment, Interaction, Evolution, and Transformative Plant Biotechnology - the journal covers a wide array of topics ranging from cellular processes to the impact of global environmental changes. We encourage the use of interdisciplinary approaches, and our content is structured to reflect this. Our journal acknowledges the diverse techniques employed in plant science, including molecular and cell biology, functional genomics, modeling, and system-based approaches, across various subfields.
期刊最新文献
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