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花粉粒孔和内褶的机械设计。

Mechanical design of apertures and the infolding of pollen grain.

机构信息

Department of Theoretical Physics, Jožef Stefan Institute, 1000 Ljubljana, Slovenia.

Institute of Physics, 10000 Zagreb, Croatia

出版信息

Proc Natl Acad Sci U S A. 2020 Oct 27;117(43):26600-26607. doi: 10.1073/pnas.2011084117. Epub 2020 Oct 7.

Abstract

When pollen grains become exposed to the environment, they rapidly desiccate. To protect themselves until rehydration, the grains undergo characteristic infolding with the help of special structures in the grain wall-apertures-where the otherwise thick exine shell is absent or reduced in thickness. Recent theoretical studies have highlighted the importance of apertures for the elastic response and the folding of the grain. Experimental observations show that different pollen grains sharing the same number and type of apertures can nonetheless fold in quite diverse fashions. Using the thin-shell theory of elasticity, we show how both the absolute elastic properties of the pollen wall and the relative elastic differences between the exine wall and the apertures play an important role in determining pollen folding upon desiccation. Focusing primarily on colpate pollen, we delineate the regions of pollen elastic parameters where desiccation leads to a regular, complete closing of all apertures and thus to an infolding which protects the grain against water loss. Phase diagrams of pollen folding pathways indicate that an increase in the number of apertures leads to a reduction of the region of elastic parameters where the apertures close in a regular fashion. The infolding also depends on the details of the aperture shape and size, and our study explains how the features of the mechanical design of apertures influence the pollen folding patterns. Understanding the mechanical principles behind pollen folding pathways should also prove useful for the design of the elastic response of artificial inhomogeneous shells.

摘要

当花粉粒暴露于环境中时,它们会迅速脱水。为了在重新水合之前保护自己,花粉粒在细胞壁上的特殊结构——孔的帮助下进行特征性的内折,在这些孔中,原本厚厚的外壁不存在或厚度减小。最近的理论研究强调了孔对于弹性响应和花粉粒折叠的重要性。实验观察表明,具有相同数量和类型孔的不同花粉粒尽管折叠方式不同,但仍然可以折叠。我们使用薄壳弹性理论表明,花粉壁的绝对弹性特性和外壁与孔之间的相对弹性差异都在决定花粉在脱水时的折叠方式中起着重要作用。主要关注具沟花粉,我们描绘了花粉弹性参数的区域,在这些区域中,脱水导致所有孔以规则、完全关闭的方式导致内折,从而保护花粉免受水分损失。花粉折叠途径的相图表明,孔数目的增加会导致以规则方式关闭的孔的弹性参数区域减少。内折也取决于孔的形状和大小的细节,我们的研究解释了机械设计孔的特征如何影响花粉折叠模式。理解花粉折叠途径背后的机械原理对于设计人工非均匀壳的弹性响应也应该是有用的。

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Mechanical design of apertures and the infolding of pollen grain.花粉粒孔和内褶的机械设计。
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本文引用的文献

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The atypically high modulus of pollen exine.花粉外壁的非典型高模量。
J R Soc Interface. 2018 Sep 19;15(146):20180533. doi: 10.1098/rsif.2018.0533.
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Theory and algorithms to compute Helfrich bending forces: a review.计算赫尔弗里希弯曲力的理论与算法综述
J Phys Condens Matter. 2017 May 24;29(20):203001. doi: 10.1088/1361-648X/aa6313. Epub 2017 Feb 27.
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Natural Sunflower Pollen as a Drug Delivery Vehicle.天然向日葵花粉作为一种药物递送载体。
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Genetic and Biochemical Mechanisms of Pollen Wall Development.花粉壁发育的遗传和生化机制。
Trends Plant Sci. 2015 Nov;20(11):741-753. doi: 10.1016/j.tplants.2015.07.010. Epub 2015 Oct 3.

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