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Loss of Stability: A New Look at the Physics of Cell Wall Behavior during Plant Cell Growth

机译:稳定性丧失:植物细胞生长过程中细胞壁行为物理学的新发现

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摘要

In this article we investigate aspects of turgor-driven plant cell growth within the framework of a model derived from the Eulerian concept of instability. In particular we explore the relationship between cell geometry and cell turgor pressure by extending loss of stability theory to encompass cylindrical cells. Beginning with an analysis of the three-dimensional stress and strain of a cylindrical pressure vessel, we demonstrate that loss of stability is the inevitable result of gradually increasing internal pressure in a cylindrical cell. The turgor pressure predictions based on this model differ from the more traditional viscoelastic or creep-based models in that they incorporate both cell geometry and wall mechanical properties in a single term. To confirm our predicted working turgor pressures, we obtained wall dimensions, elastic moduli, and turgor pressures of sequential internodal cells of intact Chara corallina plants by direct measurement. The results show that turgor pressure predictions based on loss of stability theory fall within the expected physiological range of turgor pressures for this plant. We also studied the effect of varying wall Poisson's ratio u on extension growth in living cells, showing that while increasing elastic modulus has an understandably negative effect on wall expansion, increasing Poisson's ratio would be expected to accelerate wall expansion.
机译:在本文中,我们在由欧拉不稳定性概念衍生的模型的框架内研究了由turgor驱动的植物细胞生长的各个方面。特别是,我们通过将稳定性损失理论扩展到涵盖圆柱状细胞,探索了细胞几何形状与细胞膨胀压力之间的关系。从分析圆柱压力容器的三维应力和应变开始,我们证明了稳定性的丧失是逐渐增加圆柱单元内部压力的必然结果。基于此模型的膨胀压力预测与更传统的基于粘弹性或蠕变的模型的不同之处在于,它们在单个术语中同时包含了单元几何形状和壁力学特性。为了确认我们预测的工作膨胀压力,我们通过直接测量获得了完整的Chara Corallina植物的连续节间细胞的壁尺寸,弹性模量和膨胀压力。结果表明,基于稳定性损失理论的膨胀压力预测值属于该植物的膨胀压力预期生理范围内。我们还研究了改变壁泊松比u对活细胞延伸生长的影响,结果表明,虽然增加弹性模量对壁膨胀具有可理解的负面影响,但增加泊松比可望加速壁膨胀。

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