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化学动力学在植物形态发生中的作用(1)。

The role of chemical dynamics in plant morphogenesis(1).

机构信息

Mathematics Department, British Columbia Institute of Technology, Burnaby, BC, Canada, V5G 3H2, and Biology Department, University of Victoria, Victoria, BC, Canada, V8W 3N5.

出版信息

Biochem Soc Trans. 2010 Apr;38(2):645-50. doi: 10.1042/BST0380645.

Abstract

In biological development, the generation of shape is preceded by the spatial localization of growth factors. Localization, and how it is maintained or changed during the process of growth, determines the shapes produced. Mathematical models have been developed to investigate the chemical, mechanical and transport properties involved in plant morphogenesis. These synthesize biochemical and biophysical data, revealing underlying principles, especially the importance of dynamics in generating form. Chemical kinetics has been used to understand the constraints on reaction and transport rates to produce localized concentration patterns. This approach is well developed for understanding de novo pattern formation, pattern spacing and transitions from one pattern to another. For plants, growth is continual, and a key use of the theory is in understanding the feedback between patterning and growth, especially for morphogenetic events which break symmetry, such as tip branching. Within the context of morphogenetic modelling in general, the present review gives a brief history of chemical patterning research and its particular application to shape generation in plant development.

摘要

在生物发育过程中,形态的产生先于生长因子的空间定位。定位以及在生长过程中如何维持或改变定位,决定了所产生的形状。已经开发出数学模型来研究植物形态发生中涉及的化学、机械和运输特性。这些模型综合了生化和生物物理数据,揭示了潜在的原则,特别是动力学在产生形态方面的重要性。化学动力学已被用于了解产生局部浓度模式的反应和运输速率的限制。这种方法对于理解从头开始的模式形成、模式间距以及从一种模式到另一种模式的转变非常有效。对于植物来说,生长是持续的,该理论的一个关键用途是理解模式形成和生长之间的反馈,特别是对于打破对称性的形态发生事件,例如尖端分枝。在一般形态发生建模的背景下,本综述简要回顾了化学模式形成研究的历史及其在植物发育中形状生成的特殊应用。

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