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所有效应对软体动物壳的形态发生:定量和理论模型。

Allometries and the morphogenesis of the molluscan shell: a quantitative and theoretical model.

机构信息

Paläontologisches Institut und Museum der Universität Zürich, Zürich, Switzerland.

出版信息

J Exp Zool B Mol Dev Evol. 2010 Jun 15;314(4):280-302. doi: 10.1002/jez.b.21337.

Abstract

This article explores the close relationships between growth rate and allometries of molluscan shells. After reviewing the previous theoretical approaches devoted to the understanding of shell form and its morphogenesis, we present a free-form vector model which can simulate apertural shape changes and nonlinear allometries. Shell morphology is generated by iteratively adding a growth increment onto the last computed aperture. The first growth increment defines so-called growth vectors which are assumed to be constant in direction (relative to the last computed aperture position) during a simulation of a shell (ontogeny). These growth vectors are uniformly scaled at each time step according to various growth rate curves that are used to simulate the mantle growth over time. From the model, we derive morphometric variables that illustrate the ontogenetic trajectories in time-size-shape space. We investigate the effects of changing the growth curves types, growth rate parameters and growth vector maps on the direction, speed and patterns of ontogenetic allometries. Because this model focuses the issue on time, it highlights a plausible effect of growth rate on shell shape and illustrates some fundamental geometrical properties of the logarithmic spiral, in particular the close relationship between the size and the geometry of growth increments. This model could be used to develop a mathematically data-driven approach where experimentally obtained growth curves could be used as inputs in the model. More generally, our study recalls the role of growth rates in the generation of allometries.

摘要

本文探讨了贝类生长率与体型分异之间的紧密关系。在回顾了先前致力于理解贝壳形态及其形态发生的理论方法之后,我们提出了一种自由形态向量模型,该模型可以模拟口盖形状的变化和非线性体型分异。通过在最后计算出的口盖的基础上迭代添加生长增量来生成贝壳形态。第一个生长增量定义了所谓的生长向量,在贝壳(个体发生)的模拟过程中,这些生长向量被假定为方向不变(相对于最后计算出的口盖位置)。在每个时间步长处,这些生长向量都根据用于随时间模拟套膜生长的各种生长率曲线按比例缩放。从该模型中,我们得出了形态变量,这些变量说明了在时间-大小-形状空间中的个体发生轨迹。我们研究了改变生长曲线类型、生长率参数和生长向量图对个体发生的体型分异的方向、速度和模式的影响。由于该模型专注于时间问题,因此突出了生长率对贝壳形状的可能影响,并说明了对数螺旋的一些基本几何性质,特别是生长增量的大小和几何形状之间的密切关系。该模型可用于开发一种数学上数据驱动的方法,其中可以将实验获得的生长曲线用作模型的输入。更一般地,我们的研究回顾了生长率在体型分异产生中的作用。

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