Cytokinins regulate spatially specific ethylene production to control root growth in Arabidopsis.

IF 9.4 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Plant Communications Pub Date : 2024-11-11 Epub Date: 2024-07-03 DOI:10.1016/j.xplc.2024.101013
Amel Yamoune, Marketa Zdarska, Thomas Depaepe, Anna Rudolfova, Jan Skalak, Kenneth Wayne Berendzen, Virtudes Mira-Rodado, Michael Fitz, Blanka Pekarova, Katrina Leslie Nicolas Mala, Paul Tarr, Eliska Spackova, Lucia Tomovicova, Barbora Parizkova, Abigail Franczyk, Ingrid Kovacova, Vladislav Dolgikh, Elena Zemlyanskaya, Marketa Pernisova, Ondrej Novak, Elliot Meyerowitz, Klaus Harter, Dominique Van Der Straeten, Jan Hejatko
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Abstract

Two principal growth regulators, cytokinins and ethylene, are known to interact in the regulation of plant growth. However, information about the underlying molecular mechanism and positional specificity of cytokinin/ethylene crosstalk in the control of root growth is scarce. We have identified the spatial specificity of cytokinin-regulated root elongation and root apical meristem (RAM) size, both of which we demonstrate to be dependent on ethylene biosynthesis. Upregulation of the cytokinin biosynthetic gene ISOPENTENYLTRANSFERASE (IPT) in proximal and peripheral tissues leads to both root and RAM shortening. By contrast, IPT activation in distal and inner tissues reduces RAM size while leaving the root length comparable to that of mock-treated controls. We show that cytokinins regulate two steps specific to ethylene biosynthesis: production of the ethylene precursor 1-aminocyclopropane-1-carboxylate (ACC) by ACC SYNTHASEs (ACSs) and its conversion to ethylene by ACC OXIDASEs (ACOs). We describe cytokinin- and ethylene-specific regulation controlling the activity of ACSs and ACOs that are spatially discrete along both proximo/distal and radial root axes. Using direct ethylene measurements, we identify ACO2, ACO3, and ACO4 as being responsible for ethylene biosynthesis and ethylene-regulated root and RAM shortening in cytokinin-treated Arabidopsis. Direct interaction between ARABIDOPSIS RESPONSE REGULATOR 2 (ARR2), a member of the multistep phosphorelay cascade, and the C-terminal portion of ETHYLENE INSENSITIVE 2 (EIN2-C), a key regulator of canonical ethylene signaling, is involved in the cytokinin-induced, ethylene-mediated control of ACO4. We propose tight cooperation between cytokinin and ethylene signaling in the spatially specific regulation of ethylene biosynthesis as a key aspect of the hormonal control of root growth.

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细胞分裂素调节空间特异性乙烯的产生,从而控制拟南芥根的生长。
众所周知,细胞分裂素和乙烯这两种主要生长调节剂在植物生长调控过程中相互作用。然而,有关细胞分裂素/乙烯在根系生长调控中相互影响的分子机制和位置特异性的信息却很少。我们发现了细胞分裂素调控根伸长和根顶端分生组织(RAM)大小的空间特异性,并证明这两者都依赖于乙烯的生物合成。细胞分裂素生物合成基因 ISOPENTENYLTRANSFERASE(IPT)在近端和外围组织中的上调会导致根和 RAM 缩短。相反,激活远端和内部组织中的 IPT 会减少 RAM 的大小,同时使根的长度与模拟处理的对照组相当。我们的研究表明,细胞分裂素调节乙烯生物合成的两个特定步骤,即乙烯前体 1-氨基环丙烷-1-羧酸酯(ACC)由 ACC 合成酶(ACS)产生,以及乙烯前体 1-氨基环丙烷-1-羧酸酯(ACC)由 ACC 氧化酶(ACO)转化为乙烯。我们描述了细胞分裂素和乙烯的特异性调控,这些调控控制着沿近根轴/远根轴和径向根轴空间离散的 ACS 和 ACO 的活性。通过直接乙烯测量,我们确定 ACO2、ACO3 和 ACO4 在细胞分裂素处理的拟南芥中负责乙烯生物合成以及乙烯调控的根和 RAM 缩短。拟南芥反应调节因子 2(ARR2)是多步骤磷酸还原级联的成员之一,它与乙烯无敏感性 2(EIN2-C)的 C 端部分(EIN2-C 是典型乙烯信号转导的关键调节因子)之间的直接相互作用参与了细胞分裂素诱导的乙烯介导的 ACO4 控制。我们认为细胞分裂素和乙烯信号在乙烯生物合成的空间特异性调控中的紧密合作是激素控制根系生长的一个关键方面。
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来源期刊
Plant Communications
Plant Communications Agricultural and Biological Sciences-Plant Science
CiteScore
15.70
自引率
5.70%
发文量
105
审稿时长
6 weeks
期刊介绍: Plant Communications is an open access publishing platform that supports the global plant science community. It publishes original research, review articles, technical advances, and research resources in various areas of plant sciences. The scope of topics includes evolution, ecology, physiology, biochemistry, development, reproduction, metabolism, molecular and cellular biology, genetics, genomics, environmental interactions, biotechnology, breeding of higher and lower plants, and their interactions with other organisms. The goal of Plant Communications is to provide a high-quality platform for the dissemination of plant science research.
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