一个数学模型探讨了弯曲和拉伸力对拟南芥茎向地性的贡献。

Satoru Tsugawa, Tomohiko G Sano, Hiroyuki Shima, Miyo Terao Morita, Taku Demura
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引用次数: 3

摘要

植物梢向地性是一种复杂的现象,是由重力感知、曲率感知(本体感觉)、维持自重和生长的能力共同作用的结果。虽然最近的数据分析和建模已经揭示了芽弯曲的详细形态,但弯曲力(来自重力-本体感受反应)和拉伸力(来自芽轴向生长)在向重力性背后的相对贡献仍然知之甚少。为了解决这一空白,我们将形态学数据与理论模型相结合,分析了野生型和lazy1-like 1突变体拟南芥的茎弯曲。利用实际弯曲事件的数据,我们寻找模型参数,使数据与数学模型之间的差异最小化。结果表明,野生型和突变型的弯曲力和拉伸力存在显著差异。我们讨论了与细胞分化生长相关的机械力的含义,并提出了芽向倾斜的合理机械解释。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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A mathematical model explores the contributions of bending and stretching forces to shoot gravitropism in Arabidopsis.

Plant shoot gravitropism is a complex phenomenon resulting from gravity sensing, curvature sensing (proprioception), the ability to uphold self-weight and growth. Although recent data analysis and modelling have revealed the detailed morphology of shoot bending, the relative contribution of bending force (derived from the gravi-proprioceptive response) and stretching force (derived from shoot axial growth) behind gravitropism remains poorly understood. To address this gap, we combined morphological data with a theoretical model to analyze shoot bending in wild-type and lazy1-like 1 mutant Arabidopsis thaliana. Using data from actual bending events, we searched for model parameters that minimized discrepancies between the data and mathematical model. The resulting model suggests that both the bending force and the stretching force differ significantly between the wild type and mutant. We discuss the implications of the mechanical forces associated with differential cell growth and present a plausible mechanical explanation of shoot gravitropism.

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