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Changes in morphogen kinetics and pollen grain size are potential mechanisms of aberrant pollen aperture patterning in previously observed and novel mutants of Arabidopsis thaliana

机译:形态发生动力学和花粉晶粒大小的变化是拟南芥突变体中先前观察到的和新的突变体中花粉孔径模式异常的潜在机制。

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摘要

Pollen provides an excellent system to study pattern formation at the single-cell level. Pollen surface is covered by the pollen wall exine, whose deposition is excluded from certain surface areas, the apertures, which vary between the species in their numbers, positions, and morphology. What determines aperture patterns is not understood. Arabidopsis thaliana normally develops three apertures, equally spaced along the pollen equator. However, Arabidopsis mutants whose pollen has higher ploidy and larger volume develop four or more apertures. To explore possible mechanisms responsible for aperture patterning, we developed a mathematical model based on the Gierer-Meinhardt system of equations. This model was able to recapitulate aperture patterns observed in the wild-type and higher-ploidy pollen. We then used this model to further explore geometric and kinetic factors that may influence aperture patterns and found that pollen size, as well as certain kinetic parameters, like diffusion and decay of morphogens, could play a role in formation of aperture patterns. In conjunction with mathematical modeling, we also performed a forward genetic screen in Arabidopsis and discovered two mutants with aperture patterns that had not been previously observed in this species but were predicted by our model. The macaron mutant develops a single ring-like aperture, matching the unusual ring-like pattern produced by the model. The doughnut mutant forms two pore-like apertures at the poles of the pollen grain. Further tests on these novel mutants, motivated by the modeling results, suggested the existence of an area of inhibition around apertures that prevents formation of additional apertures in their vicinity. This work demonstrates the ability of the theoretical model to help focus experimental efforts and to provide fundamental insights into an important biological process.
机译:花粉提供了一个出色的系统来研究单细胞水平的模式形成。花粉表面被花粉壁外壁覆盖,花粉壁外壁的沉积被排除在某些表面积,孔口之外,这些孔口在物种的数量,位置和形态上各不相同。决定孔径模式的因素尚不清楚。拟南芥通常会形成三个沿花粉赤道均匀分布的孔。但是,其花粉具有较高的倍性和较大的体积的拟南芥突变体会形成四个或更多的孔。为了探究造成孔径图案化的可能机制,我们开发了基于Gierer-Meinhardt方程组的数学模型。该模型能够概括在野生型和更高倍性花粉中观察到的孔径模式。然后,我们使用该模型进一步探讨了可能会影响孔径模式的几何和动力学因素,并发现花粉大小以及某些动力学参数(例如形态发生原的扩散和衰减)可能在孔径模式的形成中起作用。结合数学建模,我们还对拟南芥进行了正向遗传筛选,并发现了两个孔径模式的突变体,该突变体以前在该物种中未曾观察到,但由我们的模型预测。 Macaron突变体形成单个环状孔,与模型产生的异常环状图案匹配。甜甜圈突变体在花粉粒的两极形成两个孔状的孔。根据建模结果,对这些新型突变体的进一步测试表明,孔周围存在抑制区域,阻止了附近区域中其他孔的形成。这项工作证明了理论模型能够帮助集中实验工作并提供对重要生物过程的基本见解的能力。

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