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基于断层扫描、增材制造和参数建模的方法研究脆性星星臂运动学的结构起源。

The structural origins of brittle star arm kinematics: An integrated tomographic, additive manufacturing, and parametric modeling-based approach.

机构信息

Wyss Institute for Biologically Inspired Engineering, Harvard University, 60 Oxford Street, Cambridge, MA 02138, USA; Harvard University Graduate School of Design, 48 Quincy St, Cambridge, MA 02138, USA.

Department of Biological Sciences, Santa Barbara City College, Santa Barbara, CA 93109, USA.

出版信息

J Struct Biol. 2020 Jul 1;211(1):107481. doi: 10.1016/j.jsb.2020.107481. Epub 2020 Feb 20.

Abstract

Brittle stars are known for the high flexibility of their arms, a characteristic required for locomotion, food grasping, and for holding onto a great diversity of substrates. Their high agility is facilitated by the numerous discrete skeletal elements (ossicles) running through the center of each arm and embedded in the skin. While much has been learned regarding the structural diversity of these ossicles, which are important characters for taxonomic purposes, their impact on the arms' range of motion, by contrast, is poorly understood. In the present study, we set out to investigate how ossicle morphology and skeletal organization affect the flexibility of brittle star arms. Here, we present the results of an in-depth analysis of three brittle star species (Ophioplocus esmarki, Ophiopteris papillosa, and Ophiothrix spiculata), chosen for their different ranges of motion, as well as spine size and orientation. Using an integrated approach that combines behavioral studies with parametric modeling, additive manufacturing, micro-computed tomography, scanning electron microscopy, and finite element simulations, we present a high-throughput workflow that provides a fundamental understanding of 3D structure-kinematic relationships in brittle star skeletal systems.

摘要

海星以其手臂的高灵活性而闻名,这种灵活性是运动、抓取食物和抓住各种不同基质所必需的。它们的高敏捷性得益于穿过每个手臂中心并嵌入皮肤的许多离散的骨骼元素(小骨)。虽然已经了解了这些小骨的结构多样性,这些小骨对于分类目的很重要,但相比之下,它们对手臂运动范围的影响却知之甚少。在本研究中,我们着手研究小骨形态和骨骼组织如何影响海星手臂的灵活性。在这里,我们介绍了对三种海星物种(Ophioplocus esmarki、Ophiopteris papillosa 和 Ophiothrix spiculata)的深入分析结果,这三种海星物种的运动范围、刺的大小和方向各不相同。我们采用了一种综合方法,将行为研究与参数建模、增材制造、微计算机断层扫描、扫描电子显微镜和有限元模拟相结合,提出了一种高通量工作流程,为海星骨骼系统的 3D 结构-运动关系提供了基本的理解。

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