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Shaping of a three-dimensional carnivorous trap through modulation of a planar growth mechanism

机译:通过调节平面生长机制塑造三维食肉陷阱

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摘要

Leaves display a remarkable range of forms, from flat sheets with simple outlines to cup-shaped traps. Although much progress has been made in understanding the mechanisms of planar leaf development, it is unclear whether similar or distinctive mechanisms underlie shape transformations during development of more complex curved forms. Here, we use 3D imaging and cellular and clonal analysis, combined with computational modelling, to analyse the development of cup-shaped traps of the carnivorous plant Utricularia gibba. We show that the transformation from a near-spherical form at early developmental stages to an oblate spheroid with a straightened ventral midline in the mature form can be accounted for by spatial variations in rates and orientations of growth. Different hypotheses regarding spatiotemporal control predict distinct patterns of cell shape and size, which were tested experimentally by quantifying cellular and clonal anisotropy. We propose that orientations of growth are specified by a proximodistal polarity field, similar to that hypothesised to account for Arabidopsis leaf development, except that in Utricularia, the field propagates through a highly curved tissue sheet. Independent evidence for the polarity field is provided by the orientation of glandular hairs on the inner surface of the trap. Taken together, our results show that morphogenesis of complex 3D leaf shapes can be accounted for by similar mechanisms to those for planar leaves, suggesting that simple modulations of a common growth framework underlie the shaping of a diverse range of morphologies.
机译:从简单轮廓的平板到杯形的陷阱,树叶都表现出非凡的形式。尽管在理解平面叶片发育的机理方面已取得很大进展,但尚不清楚在形成更复杂的弯曲形式时,形状转换是相似还是独特的机理。在这里,我们使用3D成像以及细胞和克隆分析,并与计算建模相结合,来分析食肉植物Utricularia gibba的杯状陷阱的发展。我们表明,从早期发育阶段的近球形形式向扁圆形的球体具有成熟的腹中线变直的转变可以通过生长速率和方向的空间变化来解释。关于时空控制的不同假设预测了细胞形状和大小的不同模式,这些模式通过量化细胞和克隆的各向异性进行了实验测试。我们建议生长的方向由近端极性场指定,类似于假想的拟南芥叶发育假说,除了在乌头菌属中,该场通过高度弯曲的组织片传播。极性场的独立证据是由阱的内表面上腺毛的方向提供的。两者合计,我们的结果表明,复杂的3D叶子形状的形态发生可以通过与平面叶子相似的机制来解释,这表明对常见生长框架的简单调节是形成各种形态的基础。

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