Suppr超能文献

脊椎动物头骨中的联动机制:三维平行传输系统的结构与功能

Linkage mechanisms in the vertebrate skull: Structure and function of three-dimensional, parallel transmission systems.

作者信息

Olsen Aaron M, Westneat Mark W

机构信息

Department of Organismal Biology and Anatomy, University of Chicago, 1027 E. 57th Street, Chicago, Illinois, 60637.

出版信息

J Morphol. 2016 Dec;277(12):1570-1583. doi: 10.1002/jmor.20596. Epub 2016 Aug 31.

Abstract

Many musculoskeletal systems, including the skulls of birds, fishes, and some lizards consist of interconnected chains of mobile skeletal elements, analogous to linkage mechanisms used in engineering. Biomechanical studies have applied linkage models to a diversity of musculoskeletal systems, with previous applications primarily focusing on two-dimensional linkage geometries, bilaterally symmetrical pairs of planar linkages, or single four-bar linkages. Here, we present new, three-dimensional (3D), parallel linkage models of the skulls of birds and fishes and use these models (available as free kinematic simulation software), to investigate structure-function relationships in these systems. This new computational framework provides an accessible and integrated workflow for exploring the evolution of structure and function in complex musculoskeletal systems. Linkage simulations show that kinematic transmission, although a suitable functional metric for linkages with single rotating input and output links, can give misleading results when applied to linkages with substantial translational components or multiple output links. To take into account both linear and rotational displacement we define force mechanical advantage for a linkage (analogous to lever mechanical advantage) and apply this metric to measure transmission efficiency in the bird cranial mechanism. For linkages with multiple, expanding output points we propose a new functional metric, expansion advantage, to measure expansion amplification and apply this metric to the buccal expansion mechanism in fishes. Using the bird cranial linkage model, we quantify the inaccuracies that result from simplifying a 3D geometry into two dimensions. We also show that by combining single-chain linkages into parallel linkages, more links can be simulated while decreasing or maintaining the same number of input parameters. This generalized framework for linkage simulation and analysis can accommodate linkages of differing geometries and configurations, enabling novel interpretations of the mechanics of force transmission across a diversity of vertebrate feeding mechanisms and enhancing our understanding of musculoskeletal function and evolution. J. Morphol. 277:1570-1583, 2016. © 2016 Wiley Periodicals, Inc.

摘要

许多肌肉骨骼系统,包括鸟类、鱼类和一些蜥蜴的头骨,都由相互连接的可移动骨骼元素链组成,类似于工程中使用的连杆机构。生物力学研究已将连杆模型应用于多种肌肉骨骼系统,先前的应用主要集中在二维连杆几何结构、双侧对称的平面连杆对或单个四杆连杆。在此,我们提出了鸟类和鱼类头骨的新的三维(3D)平行连杆模型,并使用这些模型(可作为免费运动学模拟软件获取)来研究这些系统中的结构-功能关系。这个新的计算框架为探索复杂肌肉骨骼系统中结构和功能的演变提供了一个可访问且集成的工作流程。连杆模拟表明,运动传递虽然是具有单个旋转输入和输出连杆的连杆的合适功能指标,但当应用于具有大量平移分量或多个输出连杆的连杆时,可能会给出误导性结果。为了同时考虑线性因素,我们定义了连杆的力机械优势(类似于杠杆机械优势),并应用此指标来测量鸟类颅骨机制中的传递效率。对于具有多个扩展输出点的连杆,我们提出了一个新的功能指标,扩展优势,以测量扩展放大率,并将此指标应用于鱼类的颊部扩展机制。使用鸟类颅骨连杆模型,我们量化了将三维几何简化为二维所导致的不准确性。我们还表明,通过将单链连杆组合成平行连杆,可以在减少或保持相同数量输入参数的同时模拟更多连杆。这种连杆模拟和分析的通用框架可以适应不同几何形状和配置的连杆,从而能够对各种脊椎动物摄食机制中的力传递力学进行新颖的解释,并增强我们对肌肉骨骼功能和进化的理解。《形态学杂志》277:1570 - 1583,2016年。©2016威利期刊公司。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验