Abstract Muscular hydrostats, like the elephant trunk, face a fundamental biomechanical conflict between robust protection and delicate manipulation. How the skin, a critical structural and sensory component, resolves this paradox is largely unknown. Here, we reveal that the Asian elephant's trunk skin is a functionally graded, anisotropic biocomposite. Through integrated morphological and mechanical analysis, we demonstrate a stark dorsal–ventral dichotomy: the dorsal skin is 3.14 times stiffer and significantly rougher, forming a protective shield, while the more flexible ventral skin is specialized for conformal grasping. This ventral side possesses unique dermal papillae, which our finite-element models predict act as subsurface stress amplifiers, enhancing tactile sensitivity without compromising durability. These findings establish a biological blueprint for artificial tactile skins involved in robotic grasping and manipulation tasks, demonstrating that a functionally zoned architecture with embedded microstructures is a key strategy for resolving the grasp-protect paradox in soft robotics.
Preti et al. (Sat,) studied this question.
Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context: