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蝴蝶口器吸管模型的悖论。

Paradox of the drinking-straw model of the butterfly proboscis.

机构信息

Department of Materials Science and Engineering, Clemson University, Clemson, SC 29634, USA.

Department of Materials Science and Engineering, Clemson University, Clemson, SC 29634, USA School of Physics, Georgia Institute of Technology, Atlanta, GA 30332, USA.

出版信息

J Exp Biol. 2014 Jun 15;217(Pt 12):2130-8. doi: 10.1242/jeb.097998.

Abstract

Fluid-feeding Lepidoptera use an elongated proboscis, conventionally modeled as a drinking straw, to feed from pools and films of liquid. Using the monarch butterfly, Danaus plexippus (Linnaeus), we show that the inherent structural features of the lepidopteran proboscis contradict the basic assumptions of the drinking-straw model. By experimentally characterizing permeability and flow in the proboscis, we show that tapering of the food canal in the drinking region increases resistance, significantly hindering the flow of fluid. The calculated pressure differential required for a suction pump to support flow along the entire proboscis is greater than 1 atm (~101 kPa) when the butterfly feeds from a pool of liquid. We suggest that behavioral strategies employed by butterflies and moths can resolve this paradoxical pressure anomaly. Butterflies can alter the taper, the interlegular spacing and the terminal opening of the food canal, thereby controlling fluid entry and flow, by splaying the galeal tips apart, sliding the galeae along one another, pulsing hemolymph into each galeal lumen, and pressing the proboscis against a substrate. Thus, although physical construction of the proboscis limits its mechanical capabilities, its functionality can be modified and enhanced by behavioral strategies.

摘要

吸食液体制剂的鳞翅目昆虫使用一根细长的喙,通常被建模为吸管,从液体的池和膜中吸取液体。我们以黑脉金斑蝶(Danaus plexippus(Linnaeus))为例,表明鳞翅目昆虫喙的固有结构特征与吸管模型的基本假设相矛盾。通过对喙内通透性和流动的实验特性进行研究,我们发现,在吸食区域,食物通道的逐渐变细会增加阻力,显著阻碍液体的流动。当蝴蝶从液体池中吸取液体时,抽吸泵为支持整个喙中的流动所需的计算压差大于 1 个大气压(~101 kPa)。我们认为,蝴蝶和蛾类所采用的行为策略可以解决这种矛盾的压力异常。蝴蝶可以通过分开额的尖端、相互滑动额、将血淋巴脉冲到每个额腔中以及将喙压在基质上来改变食物通道的锥形、节间间距和末端开口,从而控制液体的进入和流动。因此,尽管喙的物理结构限制了其机械能力,但通过行为策略可以对其功能进行修改和增强。

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