牛气管的微观结构和力学:通过SHG成像和双轴测试进行层特异性研究。

Venkata Ayyalasomayajula, B. Skallerud
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引用次数: 2

摘要

气管是由透明软骨、纤维组织和肌肉纤维组成的复杂组织。目前,对这些成分的微观结构组织及其在决定组织机械反应中的作用的了解非常有限。本研究的目的是提供有关气管部件微观结构及其对组织机械反应影响的数据。本研究使用了5个牛气管。从整个组织中有条不紊地切除不定膜、软骨、粘膜/粘膜下层和气管肌层。通过多光子显微镜(MPM)的二次谐波生成(SHG)能够对胶原纤维和肌肉纤维进行成像。同时,使用平面双轴试验台记录每层的力学行为。总共对60个样本进行了测试和分析。外膜和粘膜/粘膜下层的纤维结构显示出高度的各向异性,平均纤维角随样品而异。气管肌显示出整齐的纤维层,沿纵向排列。软骨还显示出主要朝向周向组织的II型胶原的厚网状结构。此外,机械测试证明了组织成分的各向异性。软骨被确定为应变水平<20%时最坚硬的部件,因此是主要的承重部件。其他三层表现出非线性机械响应,这可以通过其纤维的结构和组织来解释。这项研究有助于提高结构驱动材料模型的利用率,以预测气管的整体机械反应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microstructure and mechanics of the bovine trachea: Layer specific investigations through SHG imaging and biaxial testing.
The trachea is a complex tissue made up of hyaline cartilage, fibrous tissue, and muscle fibers. Currently, the knowledge of microscopic structural organization of these components and their role in determining the tissue's mechanical response is very limited. The purpose of this study is to provide data on the microstructure of the tracheal components and its influence on tissue's mechanical response. Five bovine tracheae were used in this study. Adventitia, cartilage, mucosa/submucosa, and trachealis muscle layers were methodically cut out from the whole tissue. Second-harmonic generation(SHG) via multi-photon microscopy (MPM) enabled imaging of collagen fibers and muscle fibers. Simultaneously, a planar biaxial test rig was used to record the mechanical behavior of each layer. In total 60 samples were tested and analyzed. Fiber architecture in the adventitia and mucosa/submucosa layer showed high degree of anisotropy with the mean fiber angle varying from sample to sample. The trachealis muscle displayed neat layers of fibers organized in the longitudinal direction. The cartilage also displayed a structure of thick mesh-work of collagen type II organized predominantly towards the circumferential direction. Further, mechanical testing demonstrated the anisotropic nature of the tissue components. The cartilage was identified as the stiffest component for strain level < 20% and hence the primary load bearing component. The other three layers displayed a non-linear mechanical response which could be explained by the structure and organization of their fibers. This study is useful in enhancing the utilization of structurally motivated material models for predicting tracheal overall mechanical response.
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