Minnocci Antonio, Cianchetti Matteo, Mazzolai Barbara, Sebastiani Luca, Laschi Cecilia
BioLabs, Institute of Life Sciences, Scuola Superiore Sant'Anna, Pisa, Italy.
The BioRobotics Institute, Scuola Superiore Sant'Anna, Pisa, Italy.
Microsc Res Tech. 2015 Dec;78(12):1133-45. doi: 10.1002/jemt.22596. Epub 2015 Oct 30.
Octopus vulgaris is a cephalopod of the Octopodidae family. It has four pairs of arms and two rows of suckers which perform many functions, including bending and elongation. For this reason the octopus was chosen as model to develop a new generation of soft-body robots. In order to explain some of the fine structures of the octopus arm in relation to its specific ability, we examined the external and internal structures of O. vulgaris arms in a frozen-hydrated state using cryo-scanning electron microscopy. The arms showed skin with a very complex design that is useful to elongation, and a pore pattern distribution on their surface which is functional to cutaneous oxygen uptake. The analysis of freeze-fractured frozen-hydrated arm samples allowed us to describe the developmental differences in the relative proportion of the areas of axial nerve cord, intrinsic and extrinsic musculature, in relation to the growth of the arms and of the increase in functional capability. In the suckers, we analyzed the shedding mechanisms in the outer part of the infundibulum and described the outer and inner characteristics of the denticles, showing in detail their pore system, which is fundamental for their ability to explore the environment. These results are discussed by considering their possible application in the design of new octopus-like artefacts, which will be able to take advantage of some of these ultrastructure characteristics and achieve advanced bioinspired functionalities.
普通章鱼是章鱼科的一种头足类动物。它有四对腕足和两排吸盘,这些吸盘具有多种功能,包括弯曲和伸展。因此,章鱼被选为开发新一代软体机器人的模型。为了解释章鱼腕足的一些精细结构与其特定能力的关系,我们使用冷冻扫描电子显微镜检查了处于冷冻水合状态的普通章鱼腕足的外部和内部结构。腕足显示出具有非常复杂设计的皮肤,这对伸展很有用,并且其表面有孔模式分布,这对皮肤吸氧起作用。对冷冻断裂的冷冻水合腕足样本的分析使我们能够描述轴索神经、固有和外在肌肉组织区域的相对比例在腕足生长和功能能力增加方面的发育差异。在吸盘中,我们分析了漏斗外部的脱落机制,并描述了小齿的外部和内部特征,详细展示了它们的孔系统,这对它们探索环境的能力至关重要。通过考虑这些结果在新型章鱼状人工制品设计中的可能应用来进行讨论,这些人工制品将能够利用其中一些超微结构特征并实现先进的仿生功能。