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Another Brick in the Cell Wall: Biosynthesis Dependent Growth Model

机译:细胞壁上的另一块砖:生物合成依赖性生长模型

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摘要

Expansive growth of plant cell is conditioned by the cell wall ability to extend irreversibly. This process is possible if (i) a tensile stress is developed in the cell wall due to the coupling effect between turgor pressure and the modulation of its mechanical properties through enzymatic and physicochemical reactions and if (ii) new cell wall elements can be synthesized and assembled to the existing wall. In other words, expansive growth is the result of coupling effects between mechanical, thermal and chemical energy. To have a better understanding of this process, models must describe the interplay between physical or mechanical variable with biological events. In this paper we propose a general unified and theoretical framework to model growth in function of energy forms and their coupling. This framework is based on irreversible thermodynamics. It is then applied to model growth of the internodal cell of Chara corallina modulated by changes in pressure and temperature. The results describe accurately cell growth in term of length increment but also in term of cell pectate biosynthesis and incorporation to the expanding wall. Moreover, the classical growth model based on Lockhart's equation such as the one proposed by Ortega, appears as a particular and restrictive case of the more general growth equation developed in this paper.
机译:植物细胞的膨胀生长取决于细胞壁不可逆地延伸的能力。如果(i)由于膨胀压力及其通过酶和物理化学反应调节其机械性能之间的耦合作用而在细胞壁中产生拉应力,并且(ii)可以合成新的细胞壁元素并组装到现有的墙壁上。换句话说,膨胀的增长是机械能,热能和化学能之间耦合效应的结果。为了更好地了解此过程,模型必须描述物理或机械变量与生物学事件之间的相互作用。在本文中,我们提出了一个通用的统一理论框架来对能量形式及其耦合的增长建模。该框架基于不可逆的热力学。然后将其应用于通过压力和温度变化调节的Chara Corallina节间细胞的生长模型。结果根据长度增加准确地描述了细胞的生长,但也根据细胞果胶的生物合成和掺入到膨胀壁的角度准确地描述了细胞的生长。此外,基于洛克哈特方程的经典增长模型,例如奥尔特加(Ortega)提出的模型,似乎是本文开发的更为通用的增长方程的特殊且限制性的情况。

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