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Finite Element Model of Polar Growth in Pollen Tubes

机译:花粉管中极性增长的有限元模型

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Cellular protuberance formation in walled cells requires the local deformation of the wall and its polar expansion. In many cells, protuberance elongation proceeds by tip growth, a growth mechanism shared by pollen tubes, root hairs, and fungal hyphae. We established a biomechanical model of tip growth in walled cells using the finite element technique. We aimed to identify the requirements for spatial distribution of mechanical properties in the cell wall that would allow the generation of cellular shapes that agree with experimental observations. We based our structural model on the parameterized description of a tip-growing cell that allows the manipulation of cell size, shape, cell wall thickness, and local mechanical properties. The mechanical load was applied in the form of hydrostatic pressure. We used two validation methods to compare different simulations based on cellular shape and the displacement of surface markers. We compared the resulting optimal distribution of cell mechanical properties with the spatial distribution of biochemical cell wall components in pollen tubes and found remarkable agreement between the gradient in mechanical properties and the distribution of deesterified pectin. Use of the finite element method for the modeling of nonuniform growth events in walled cells opens future perspectives for its application to complex cellular morphogenesis in plants.
机译:壁细胞中细胞突起的形成需要壁的局部变形及其极性扩展。在许多细胞中,突起的伸长是通过尖端生长进行的,尖端是花粉管,根毛和真菌菌丝共有的生长机制。我们建立了使用有限元技术的壁细胞的尖端生长的生物力学模型。我们旨在确定对细胞壁机械性能的空间分布的要求,该要求将允许生成与实验观察结果一致的细胞形状。我们基于尖端生长电池的参数化描述建立结构模型,该参数允许对电池尺寸,形状,电池壁厚和局部机械性能进行控制。机械负荷以静水压力的形式施加。我们使用两种验证方法来比较基于细胞形状和表面标记位移的不同模拟。我们将所得的细胞力学性能的最佳分布与花粉管中生化细胞壁成分的空间分布进行了比较,发现机械性能的梯度与脱酯果胶的分布之间存在显着的一致性。使用有限元方法对壁细胞中非均匀生长事件进行建模,为将其应用于植物中复杂细胞形态发生打开了广阔的前景。

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