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首页> 外文期刊>Development >A core mechanism for specifying root vascular patterning can replicate the anatomical variation seen in diverse plant species
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A core mechanism for specifying root vascular patterning can replicate the anatomical variation seen in diverse plant species

机译:用于指定根血管图案的核心机制可以复制不同植物物种中所见的解剖变量

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Pattern formation is typically controlled through the interaction between molecular signals within a given tissue. During early embryonic development, roots of the model plant Arabidopsis thatiana have a radially symmetric pattern, but a heterogeneous input of the hormone auxin from the two cotyledons forces the vascular cylinder to develop a diarch pattern with two xylem poles. Molecular analyses and mathematical approaches have uncovered the regulatory circuit that propagates this initial auxin signal into a stable cellular pattern. The diarch pattern seen in Arabidopsis is relatively uncommon among flowering plants, with most species having between three and eight xylem poles. Here, we have used multiscale mathematical modelling to demonstrate that this regulatory module does not require a heterogeneous auxin input to specify the vascular pattern. Instead, the pattern can emerge dynamically, with its final form dependent upon spatial constraints and growth. The predictions of our simulations compare to experimental observations of xylem pole number across a range of species, as well as in transgenic systems in Arabidopsis in which we manipulate the size of the vascular cylinder. By considering the spatial constraints, our model is able to explain much of the diversity seen in different flowering plant species.
机译:通常通过给定组织内的分子信号之间的相互作用来控制图案形成。在早期胚胎发育期间,模型植物拟南芥的根部具有径向对称的图案,但是来自两个子叶的激素毒素的异质输入迫使血管缸产生具有两个木耳杆的二乙酰变图案。分子分析和数学方法发现了将该初始悬停信号传播到稳定的蜂窝模式中的调节电路。在拟南芥中,在开花植物中,在拟南芥中看到的叠氮模式相对较少,大多数物种在三个和八个木耳杆之间。在这里,我们使用MultiScale Mathemical Modeling来证明该调节模块不需要异构的助化输入来指定血管模式。相反,该模式可以动态出现,其最终形式依赖于空间限制和生长。我们的模拟预测比较了一系列物种的木质杆数的实验观察,以及在拟南芥中的转基因系统中,我们操纵血管缸的尺寸。通过考虑空间限制,我们的模型能够解释在不同开花植物物种中看到的大部分多样性。

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