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猪膀胱壁的位置和层次依赖性生物力学和微观结构特征。

Location- and layer-dependent biomechanical and microstructural characterisation of the porcine urinary bladder wall.

机构信息

Institute of Mechanics and Adaptronics, Technische Universität Braunschweig, Braunschweig D-38106, Germany.

Institute of Sport and Motion Science, University of Stuttgart, Stuttgart D-70569, Germany.

出版信息

J Mech Behav Biomed Mater. 2021 Mar;115:104275. doi: 10.1016/j.jmbbm.2020.104275. Epub 2020 Dec 21.

Abstract

The knowledge of the mechanical properties of the urinary bladder wall helps to explain its storage and micturition functions in health and disease studies; however, these properties largely remain unknown, especially with regard to its layer-specific characteristics and microstructure. Consequently, this study entails the assessment of the layer-specific differences in the mechanical properties and microstructure of the bladder wall, especially during loading. Accordingly, ninety-two (n=92) samples of porcine urinary bladder walls were mechanically and histologically analysed. Generally, the bladder wall and different tissue layers exhibit a non-linear stress-stretch relationship. In this study, the load transfer mechanisms were not only associated with the wavy structure of muscular and mucosal layers, but also with the entire bladder wall microstructure. Contextually, an interplay between the mucosal and muscular layers could be identified. Therefore, depending on the region and direction, the mucosal layer exhibited a stiffer mechanical response to equi-biaxial loading than that offered by the muscular layer when deformed to stretch levels higher than λ=1.6 to λ=2.2. For smaller stretches, the mucosal layer evinces no significant mechanical reaction, while the muscular layer bears the load. Owing to the orientation of its muscle fibres, the muscular layer shows an increased degree of anisotropy compared to the mucosal layer. Furthermore, the general incompressibility assumption is analysed for different layers by measuring the change in thickness during loading, which indicated a small volume loss.

摘要

了解膀胱壁的力学性能有助于解释其在健康和疾病研究中的储存和排尿功能;然而,这些特性在很大程度上仍然未知,特别是关于其层特异性特征和微观结构。因此,本研究需要评估膀胱壁的层特异性差异,特别是在加载过程中的机械性能和微观结构。为此,对 92 个(n=92)猪膀胱壁样本进行了机械和组织学分析。一般来说,膀胱壁和不同的组织层表现出非线性的应力-应变关系。在本研究中,负载传递机制不仅与肌肉层和黏膜层的波浪结构有关,而且与整个膀胱壁的微观结构有关。在这种情况下,可以识别出黏膜层和肌肉层之间的相互作用。因此,根据区域和方向的不同,黏膜层在等双轴加载下表现出比肌肉层更硬的机械响应,当变形到拉伸水平高于 λ=1.6 到 λ=2.2 时。对于较小的拉伸,黏膜层没有明显的机械反应,而肌肉层承受负载。由于其肌肉纤维的取向,肌肉层与黏膜层相比表现出更高的各向异性程度。此外,通过测量加载过程中的厚度变化,分析了不同层的一般不可压缩性假设,这表明体积略有损失。

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