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Tilted cellulose arrangement as a novel mechanism for hygroscopic coiling in the storks bill awn

机译:倾斜的纤维素装置是鹳嘴芒中吸湿性盘绕的新机制

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摘要

The sessile nature of plants demands the development of seed-dispersal mechanisms to establish new growing loci. Dispersal strategies of many species involve drying of the dispersal unit, which induces directed contraction and movement based on changing environmental humidity. The majority of researched hygroscopic dispersal mechanisms are based on a bilayered structure. Here, we investigate the motility of the stork's bill (Erodium) seeds that relies on the tightening and loosening of a helical awn to propel itself across the surface into a safe germination place. We show that this movement is based on a specialized single layer consisting of a mechanically uniform tissue. A cell wall structure with cellulose microfibrils arranged in an unusually tilted helix causes each cell to spiral. These cells generate a macroscopic coil by spiralling collectively. A simple model made from a thread embedded in an isotropic foam matrix shows that this cellulose arrangement is indeed sufficient to induce the spiralling of the cells.
机译:植物的固着性要求发展种子传播机制以建立新的生长位点。许多物种的分散策略涉及分散单元的干燥,这会基于环境湿度的变化引起定向的收缩和运动。大多数研究的吸湿分散机理是基于双层结构。在这里,我们研究了鹳法案(Erodium)种子的运动能力,该运动依靠螺旋篷的收紧和松动将自身推过表面进入安全的发芽位置。我们显示此运动是基于由机械均匀组织组成的特殊单层。具有微细螺旋状排列的纤维素微纤维的细胞壁结构会导致每个细胞呈螺旋状。这些单元格通过共同螺旋产生宏观线圈。由嵌入各向同性泡沫基质中​​的线制成的简单模型表明,这种纤维素排列确实足以引起细胞的螺旋状旋转。

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