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Computational method for quantifying growth patterns at the adaxial leaf surface in three dimensions

机译:在三维上量化叶片正面生长模式的计算方法

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Growth patterns vary in space and time as an organ develops, leading to shape and size changes. Quantifying spatiotemporal variations in organ growth throughout development is therefore crucial to understand how organ shape is controlled. We present a novel method and computational tools to quantify spatial patterns of growth from three-dimensional data at the adaxial surface of leaves. Growth patterns are first calculated by semiautomatically tracking microscopic fluorescent particles applied to the leaf surface. Results from multiple leaf samples are then combined to generate mean maps of various growth descriptors, including relative growth, directionality, and anisotropy. The method was applied to the first rosette leaf of Arabidopsis (Arabidopsis thaliana) and revealed clear spatiotemporal patterns, which can be interpreted in terms of gradients in concentrations of growth-regulating substances. As surface growth is tracked in three dimensions, the method is applicable to young leaves as they first emerge and to nonflat leaves. The semiautomated software tools developed allow for a high throughput of data, and the algorithms for generating mean maps of growth open the way for standardized comparative analyses of growth patterns.
机译:随着器官的发展,生长方式在空间和时间上会发生变化,从而导致形状和大小发生变化。因此,在整个发育过程中量化器官生长的时空变化对于了解如何控制器官形状至关重要。我们提出了一种新颖的方法和计算工具,可以从叶片近轴表面的三维数据量化增长的空间格局。首先通过半自动跟踪施加到叶片表面的微观荧光颗粒来计算生长模式。然后,将来自多个叶样本的结果合并以生成各种生长描述符的均值图,包括相对生长,方向性和各向异性。该方法被应用于拟南芥(Arabidopsis thaliana)的第一片莲座丛叶上,并显示出清晰的时空模式,这可以用生长调节物质浓度的梯度来解释。由于在三个维度上跟踪了表面生长,因此该方法适用于刚出现的幼叶和非扁平叶。开发的半自动化软件工具可实现高数据吞吐量,并且用于生成平均增长图的算法为标准化的增长模式比较分析开辟了道路。

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