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A new angle on clinging in geckos: incline, not substrate, triggers the deployment of the adhesive system

机译:壁虎附着的新角度:倾斜而不是基材会触发粘合剂系统的展开

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摘要

Lizards commonly climb in complex three-dimensional habitats, and gekkotans are particularly adept at doing this by using an intricate adhesive system involving setae on the ventral surface of their digits. However, it is not clear whether geckos always deploy their adhesive system, given that doing so may result in decreased (i.e. reduction in speed) locomotor performance. Here, we investigate circumstances under which the adhesive apparatus of clinging geckos becomes operative, and examine the potential trade-offs between speed and clinging. We quantify locomotor kinematics of a gecko with adhesive capabilities (Tarentola mauritanica) and one without (Eublepharis macularius). Whereas, somewhat unusually, E. macularius did not suffer a decrease in locomotor performance with an increase in incline, T. mauritanica exhibited a significant decrease in speed between the level and a 10° incline. We demonstrate that this results from the combined influence of slope and the deployment of the adhesive system. All individuals kept their digits hyperextended on the level, but three of the six individuals deployed their adhesive system on the 10° incline, and they exhibited the greatest decrease in velocity. The deployment of the adhesive system was dependent on incline, not surface texture (600 grit sandpaper and Plexiglas), despite slippage occurring on the level Plexiglas substrate. Our results highlight the type of sensory feedback (gravity) necessary for deployment of the adhesive system, and the trade-offs associated with adhesion.
机译:蜥蜴通常会在复杂的三维栖息地中攀爬,而极地动物则特别擅长通过在趾腹表面上使用包含刚毛的复杂粘合系统来做到这一点。但是,尚不清楚壁虎是否总是展开其粘合系统,因为这样做可能会导致运动性能下降(即速度降低)。在这里,我们研究了紧贴壁虎的粘合设备开始工作的情况,并研究了速度和紧贴之间的潜在折衷。我们量化具有粘附能力(Tarentola mauritanica)和不具有粘附能力(Eublepharis macularius)的壁虎的运动学。尽管有些不寻常,但随着倾斜度的增加,黄斑大肠杆菌的运动能力没有下降,而毛里塔尼亚毛虫在水平和倾斜10度之间的速度却显着降低。我们证明,这是由倾斜和胶粘剂系统的部署的综合影响导致的。所有个人都保持其手指在水平上过度伸展,但是六个人中的三个在10°倾斜上部署了他们的黏合剂系统,并且表现出最大的速度下降。尽管在有机玻璃基板上发生打滑,但粘合剂系统的部署取决于倾斜而不是表面纹理(600粒度的砂纸和有机玻璃)。我们的结果突出了部署粘合剂系统所需的感觉反馈(重力)的类型,以及与粘合相关的权衡。

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