Crawford Niall, Endlein Thomas, Pham Jonathan T, Riehle Mathis, Barnes W Jon P
Centre for Cell Engineering, Institute of Molecular Cell and Systems Biology, University of Glasgow, Glasgow, Scotland, UK.
Max Planck Institute for Intelligent Systems, Stuttgart, Germany.
Beilstein J Nanotechnol. 2016 Dec 30;7:2116-2131. doi: 10.3762/bjnano.7.201. eCollection 2016.
Tree frogs need to adhere to surfaces of various roughnesses in their natural habitats; these include bark, leaves and rocks. Rough surfaces can alter the effectiveness of their toe pads, due to factors such as a change of real contact area and abrasion of the pad epithelium. Here, we tested the effect of surface roughness on the attachment abilities of the tree frog . This was done by testing shear and adhesive forces on artificial surfaces with controlled roughness, both on single toe pads and whole animal scales. It was shown that frogs can stick 2-3 times better on small scale roughnesses (3-6 µm asperities), producing higher adhesive and frictional forces, but relatively poorly on the larger scale roughnesses tested (58.5-562.5 µm asperities). Our experiments suggested that, on such surfaces, the pads secrete insufficient fluid to fill the space under the pad, leaving air pockets that would significantly reduce the Laplace pressure component of capillarity. Therefore, we measured how well the adhesive toe pad would conform to spherical asperities of known sizes using interference reflection microscopy. Based on experiments where the conformation of the pad to individual asperities was examined microscopically, our calculations indicate that the pad epithelium has a low elastic modulus, making it highly deformable.
树蛙在其自然栖息地需要附着在各种粗糙度的表面上;这些表面包括树皮、树叶和岩石。粗糙表面会改变它们趾垫的效能,这是由于实际接触面积变化和趾垫上皮磨损等因素导致的。在此,我们测试了表面粗糙度对树蛙附着能力的影响。这是通过在具有可控粗糙度的人工表面上测试单个趾垫和整个动物尺度的剪切力和粘合力来完成的。结果表明,树蛙在小尺度粗糙度(3 - 6微米凸起)上的附着能力要好2 - 3倍,能产生更高的粘合力和摩擦力,但在测试的较大尺度粗糙度(58.5 - 562.5微米凸起)上附着相对较差。我们的实验表明,在这样的表面上,趾垫分泌的液体不足以填充趾垫下方的空间,从而留下气穴,这会显著降低毛细作用的拉普拉斯压力分量。因此,我们使用干涉反射显微镜测量了粘性趾垫与已知尺寸球形凸起的贴合程度。基于通过显微镜检查趾垫与单个凸起贴合情况的实验,我们的计算表明趾垫上皮具有低弹性模量,使其具有高度可变形性。