蒲公英液态水依赖性变形调节其扩散

M. Seale, Oleksandr Zhdanov, C. Cummins, Erika Kroll, M. Blatt, H. Zare-Behtash, A. Busse, E. Mastropaolo, I. M. Viola, Naomi Nakayama
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引用次数: 2

摘要

长距离扩散(LDD)被认为对植物扩展范围特别重要。然而,这样的事件是罕见的,对于风分散的物种来说,上升气流或极端天气事件是必需的。尽管LDD对植物种群动态具有重要意义,但长距离传播对单个种子的生存存在风险,大多数种子传播距离较短。由于风速通常比种子特性变化更大,大多数风散植物能在多大程度上控制单个种子的传播范围是有争议的。本文研究了蒲公英(Taraxacum officinale)种子在环境条件下调控其传播的动态机制。采用延时成像技术观察蒲公英树冠的形态变化。我们还分析了两个风洞中的一水硬铝石流体力学,并使用粒子图像测速(PIV)来了解变形结构的飞行特性。我们发现,通过改变浆液湿润时的形状,大大减少了与亲本植物的分离,增加了种子下落的速度,并显著改变了种子后面的速度赤字。我们认为,这可能是一种在干燥条件下维持LDD的知情扩散形式,同时在时空上引导短程扩散到有益的潮湿环境。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Moisture‐Dependent Morphing Tunes the Dispersal of Dandelion Diaspores
Long distance dispersal (LDD) is considered particularly important for plant range expansion. Such events are rare, however, and for wind-dispersed species updrafts or extreme weather events are required. Despite the importance of LDD for plant population dynamics, dispersing long distances is risky to the survival of individual seeds and the majority of seeds disperse short distances. The extent to which most wind dispersed plants can manipulate dispersal ranges of individual seeds is debatable as wind speeds are generally more variable than seed traits. Here, we present a dynamic mechanism by which dandelion (Taraxacum officinale) seeds can regulate their dispersal in response to environmental conditions. We used time lapse imaging to observe shape changes in dandelion pappi. We also analysed diaspore fluid mechanics in two wind tunnels and used particle image velocimetry (PIV) to understand flight characteristics of the morphing structure. We have found that by changing the shape of the pappus when wet, detachment from the parent plant is greatly reduced and seed falling velocities are increased with a significant change in velocity deficit behind the seed. We suggest that this may be a form of informed dispersal maintaining LDD in dry conditions, while spatiotemporally directing short-range dispersal toward beneficial wetter environments.
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