周期性侧根引物:是什么让它熠熠生辉?

ECS Electrochemistry Letters Pub Date : 2017-03-01 Epub Date: 2017-02-21 DOI:10.1105/tpc.16.00638
Marta Laskowski, Kirsten H Ten Tusscher
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引用次数: 0

摘要

为未来侧根的形成调节小群根周细胞对整个植物根系结构有重大影响。侧根的这种启动是有节律地发生的,涉及根尖中辅助素反应的时间振荡。在生长过程中,这一过程会产生前分枝点的空间模式,这是侧根形成的早期阶段,其特点是稳定地维持高辅素反应。迄今为止,这种节律性背后的分子机制仍然难以捉摸。一些数据表明基因表达中存在细胞自主振荡,而另一些数据则有力地证明了组织水平调节在辅助素通量中的重要性。在此,我们总结了有关周期性侧根启动的实验数据。我们提出了一个理论框架,该框架区分了启动信号及其随后的记忆,并说明了从这个框架中自然产生的辅助素通量和基因表达的主要作用。然后,我们讨论了可能诱导辅素反应振荡的三种机制:细胞自主振荡、图灵型模式化和组织级辅素通量振荡,以及侧根启动的具体特性,这些特性可用来判别哪种机制最有可能驱动侧根模式化。最后,我们对未来的实验和建模研究提出了建议。
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Periodic Lateral Root Priming: What Makes It Tick?

Conditioning small groups of root pericycle cells for future lateral root formation has a major impact on overall plant root architecture. This priming of lateral roots occurs rhythmically, involving temporal oscillations in auxin response in the root tip. During growth, this process generates a spatial pattern of prebranch sites, an early stage in lateral root formation characterized by a stably maintained high auxin response. To date, the molecular mechanism behind this rhythmicity has remained elusive. Some data implicate a cell-autonomous oscillation in gene expression, while others strongly support the importance of tissue-level modulations in auxin fluxes. Here, we summarize the experimental data on periodic lateral root priming. We present a theoretical framework that distinguishes between a priming signal and its subsequent memorization and show how major roles for auxin fluxes and gene expression naturally emerge from this framework. We then discuss three mechanisms that could potentially induce oscillations of auxin response: cell-autonomous oscillations, Turing-type patterning, and tissue-level oscillations in auxin fluxes, along with specific properties of lateral root priming that may be used to discern which type of mechanism is most likely to drive lateral root patterning. We conclude with suggestions for future experiments and modeling studies.

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来源期刊
ECS Electrochemistry Letters
ECS Electrochemistry Letters ELECTROCHEMISTRY-MATERIALS SCIENCE, MULTIDISCIPLINARY
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