A predictive model for ethylene-mediated auxin and cytokinin patterning in the Arabidopsis root.

IF 9.4 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Plant Communications Pub Date : 2024-07-08 Epub Date: 2024-03-19 DOI:10.1016/j.xplc.2024.100886
Simon Moore, George Jervis, Jennifer F Topping, Chunli Chen, Junli Liu, Keith Lindsey
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Abstract

The interaction between auxin and cytokinin is important in many aspects of plant development. Experimental measurements of both auxin and cytokinin concentration and reporter gene expression clearly show the coexistence of auxin and cytokinin concentration patterning in Arabidopsis root development. However, in the context of crosstalk among auxin, cytokinin, and ethylene, little is known about how auxin and cytokinin concentration patterns simultaneously emerge and how they regulate each other in the Arabidopsis root. This work utilizes a wide range of experimental observations to propose a mechanism for simultaneous patterning of auxin and cytokinin concentrations. In addition to revealing the regulatory relationships between auxin and cytokinin, this mechanism shows that ethylene signaling is an important factor in achieving simultaneous auxin and cytokinin patterning, while also predicting other experimental observations. Combining the mechanism with a realistic in silico root model reproduces experimental observations of both auxin and cytokinin patterning. Predictions made by the mechanism can be compared with a variety of experimental observations, including those obtained by our group and other independent experiments reported by other groups. Examples of these predictions include patterning of auxin biosynthesis rate, changes in PIN1 and PIN2 patterns in pin3,4,7 mutants, changes in cytokinin patterning in the pls mutant, PLS patterning, and various trends in different mutants. This research reveals a plausible mechanism for simultaneous patterning of auxin and cytokinin concentrations in Arabidopsis root development and suggests a key role for ethylene pattern integration.

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拟南芥根中乙烯介导的辅助素和细胞分裂素模式的预测模型。
辅助素和细胞分裂素之间的相互作用在植物发育的许多方面都很重要。对辅助素和细胞分裂素浓度以及报告基因表达的实验测量清楚地表明,在拟南芥根系发育过程中,辅助素和细胞分裂素浓度模式化并存。然而,在拟南芥根系中,辅助素、细胞分裂素和乙烯之间存在相互影响的关系,人们对辅助素和细胞分裂素浓度模式如何同时出现以及它们如何相互调控知之甚少。这项研究利用广泛的实验观察,提出了一种辅助素和细胞分裂素浓度同时模式化的机制。除了辅助素和细胞分裂素之间的调控关系外,该机制还揭示了乙烯信号是实现辅助素和细胞分裂素同时模式化的重要因素,同时还预测了其他实验观察结果。将该机制与逼真的硅学根系模型相结合,可以重现关于辅助素和细胞分裂素模式化的实验观察结果。该机制的预测结果可以与各种实验观察结果进行比较,包括我们小组进行的实验和其他小组报告的其他独立实验。这些预测的例子包括辅助素生物合成率的模式化、pin3、4、7 突变体中 PIN1 和 PIN2 模式的变化、pls 突变体中细胞分裂素模式化的变化、PLS 模式化以及不同突变体中的各种趋势。这项研究揭示了拟南芥根系发育过程中辅助素和细胞分裂素浓度同时模式化的合理机制,并提出了乙烯模式整合的关键作用。
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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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