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植物激素生长素在机械化学图案形成中的应变或应力感应。

Strain- or Stress-Sensing in Mechanochemical Patterning by the Phytohormone Auxin.

机构信息

Reproduction et Développement des Plantes, ENS de Lyon, UCB Lyon 1, CNRS, INRA, Université de Lyon, Lyon Cedex 07, France.

Laboratoire de Physique, ENS de Lyon, UCB Lyon 1, CNRS, Université de Lyon, Lyon Cedex 07, France.

出版信息

Bull Math Biol. 2019 Aug;81(8):3342-3361. doi: 10.1007/s11538-019-00600-5. Epub 2019 Mar 22.

DOI:10.1007/s11538-019-00600-5
PMID:30903593
Abstract

Both chemical and mechanical fields are known to play a major role in morphogenesis. In plants, the phytohormone auxin and its directional transport are essential for the formation of robust patterns of organs, such as flowers or leaves, known as phyllotactic patterns. The transport of auxin was recently shown to be affected by mechanical signals, and conversely, auxin accumulation in incipient organs affects the mechanical properties of the cells. The precise interaction between mechanical fields and auxin transport, however, is poorly understood. In particular, it is unknown whether transport is sensitive to the strain or to the stress exerted on a given cell. Here, we investigate the nature of this coupling with the help of theoretical models. Namely, we introduce the effects of either mechanical stress or mechanical strain in a model of auxin transport and compare the patterns predicted with available experimental results, in which the tissue is perturbed by ablations, chemical treatments, or genetic manipulations. We also study the robustness of the patterning mechanism to noise and investigate the effect of a shock that changes abruptly its parameters. Although the model predictions with the two different feedbacks are often indistinguishable, the strain feedback seems to better agree with some of the experiments. The computational modeling approach used here, which enables us to distinguish between several possible mechanical feedbacks, offers promising perspectives to elucidate the role of mechanics in tissue development, and may help providing insight into the underlying molecular mechanisms.

摘要

化学和力学领域都被认为在形态发生中起着重要作用。在植物中,植物激素生长素及其定向运输对于形成强健的器官模式(如花或叶的叶序模式)是必不可少的。最近的研究表明,生长素的运输受到力学信号的影响,相反,初生器官中的生长素积累会影响细胞的力学性质。然而,力学场和生长素运输之间的精确相互作用还知之甚少。特别是,尚不清楚运输是否对给定细胞上的应变或应力敏感。在这里,我们借助理论模型研究了这种耦合的性质。也就是说,我们在生长素运输模型中引入了机械应力或机械应变的影响,并将预测的模式与可用的实验结果进行了比较,在这些实验中,组织受到了消融、化学处理或遗传操作的干扰。我们还研究了模式形成机制对噪声的鲁棒性,并研究了突然改变其参数的冲击的影响。尽管具有两种不同反馈的模型预测通常无法区分,但应变反馈似乎更符合一些实验。这里使用的计算建模方法使我们能够区分几种可能的力学反馈,为阐明力学在组织发育中的作用提供了有前景的视角,并可能有助于深入了解潜在的分子机制。

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Bull Math Biol. 2019 Aug;81(8):3342-3361. doi: 10.1007/s11538-019-00600-5. Epub 2019 Mar 22.
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