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猪胃的被动生物力学特性分析。

Biomechanical characterization of the passive porcine stomach.

机构信息

Institute of Biomechanics, Graz University of Technology, Austria.

Diagnostic and Research Institute of Pathology, Medical University of Graz, Austria.

出版信息

Acta Biomater. 2024 Jan 1;173:167-183. doi: 10.1016/j.actbio.2023.11.008. Epub 2023 Nov 19.

Abstract

The complex mechanics of the gastric wall facilitates the main digestive tasks of the stomach. However, the interplay between the mechanical properties of the stomach, its microstructure, and its vital functions is not yet fully understood. Importantly, the pig animal model is widely used in biomedical research for preliminary or ethically prohibited studies of the human digestion system. Therefore, this study aims to thoroughly characterize the mechanical behavior and microstructure of the porcine stomach. For this purpose, multiple quasi-static mechanical tests were carried out with three different loading modes, i.e., planar biaxial extension, radial compression, and simple shear. Stress-relaxation tests complemented the quasi-static experiments to evaluate the deformation and strain-dependent viscoelastic properties. Each experiment was conducted on specimens of the complete stomach wall and two separate layers, mucosa and muscularis, from each of the three gastric regions, i.e., fundus, body, and antrum. The significant preconditioning effects and the considerable regional and layer-specific differences in the tissue response were analyzed. Furthermore, the mechanical experiments were complemented with histology to examine the influence of the microstructural composition on the macrostructural mechanical response and vice versa. Importantly, the shear tests showed lower stresses in the complete wall compared to the single layers which the loose network of submucosal collagen might explain. Also, the stratum arrangement of the muscularis might explain mechanical anisotropy during tensile tests. This study shows that gastric tissue is characterized by a highly heterogeneous microstructure with regional variations in layer composition reflecting not only functional differences but also diverse mechanical behavior. STATEMENT OF SIGNIFICANCE: Unfortunately, only few experimental data on gastric tissue are available for an adequate material parameter and model estimation. The present study therefore combines layer- and region-specific stomach wall mechanics obtained under multiple loading conditions with histological insights into the heterogeneous microstructure. On the one hand, the extensive data sets of this study expand our understanding of the interplay between gastric mechanics, motility and functionality, which could help to identify and treat associated pathologies. On the other hand, such data sets are of high relevance for the constitutive modeling of stomach tissue, and its application in the field of medical engineering, e.g., in the development of surgical staplers and the improvement of bariatric surgical interventions.

摘要

胃壁的复杂力学结构有助于胃的主要消化任务。然而,胃的力学特性、其微观结构及其重要功能之间的相互作用尚未完全理解。重要的是,猪动物模型广泛用于生物医学研究,用于初步或出于伦理原因禁止的人类消化系统研究。因此,本研究旨在彻底表征猪胃的机械行为和微观结构。为此,进行了多次准静态机械测试,采用了三种不同的加载模式,即平面双向拉伸、径向压缩和简单剪切。应力松弛测试补充了准静态实验,以评估变形和应变相关的粘弹性特性。每个实验都是在完整胃壁的标本以及三个胃区域(即胃底、胃体和胃窦)的每个区域的两个单独层,黏膜和肌层上进行的。分析了显著的预处理效应以及组织响应的相当大的区域和层特异性差异。此外,机械实验还辅以组织学检查,以检查微观结构组成对宏观结构机械响应的影响,反之亦然。重要的是,剪切测试显示完整壁中的应力低于单个层中的应力,粘膜下胶原的松散网络可能解释了这一点。此外,肌层的层状排列可能解释了拉伸测试中的力学各向异性。本研究表明,胃组织的特点是具有高度异质的微观结构,其层组成的区域变化不仅反映了功能差异,还反映了不同的力学行为。意义声明:不幸的是,只有少数关于胃组织的实验数据可用于充分的材料参数和模型估计。因此,本研究将在多种加载条件下获得的分层和区域特异性胃壁力学与对异质微观结构的组织学见解相结合。一方面,本研究的广泛数据集扩展了我们对胃力学、运动和功能之间相互作用的理解,这有助于识别和治疗相关的病理。另一方面,这样的数据集对于胃组织的本构建模及其在医学工程领域的应用非常重要,例如在外科吻合器的开发和减重手术干预的改进中。

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