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Biomechanical Modeling of Prosthetic Mesh and Human Tissue Surrogate Interaction

机译:人工网与人体组织替代物相互作用的生物力学建模

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Surgical repair of hernia and prolapse with prosthetic meshes are well-known to cause pain, infection, hernia recurrence, and mesh contraction and failures. In literature, mesh failure mechanics have been studied with uniaxial, biaxial, and cyclic load testing of dry and wet meshes. Also, extensive experimental studies have been conducted on surrogates, such as non-human primates and rodents, to understand the effect of mesh stiffness, pore size, and knitting patterns on mesh biocompatibility. However, the mechanical properties of such animal tissue surrogates are widely different from human tissues. Therefore, to date, mechanics of the interaction between mesh and human tissues is poorly understood. This work addresses this gap in literature by experimentally and computationally modeling the biomechanical behavior of mesh, sutured to human tissue phantom under tension. A commercially available mesh (Prolene?) was sutured to vaginal tissue phantom material and tested at different uniaxial strains and strain rates. Global and local stresses at the tissue phantom, suture, and mesh were analyzed. The results of this study provide important insights into the mechanics of prosthetic mesh failure and will be indispensable for better mesh design in the future.
机译:众所周知,用人工网片对疝气和脱垂进行手术修复会引起疼痛,感染,疝气复发,网片收缩和衰竭。在文献中,已经通过干,湿网格的单轴,双轴和循环载荷测试研究了网格破坏机理。而且,已经对诸如非人类灵长类和啮齿动物的替代物进行了广泛的实验研究,以了解网眼刚度,孔径和编织图案对网眼生物相容性的影响。但是,这类动物组织替代物的机械性能与人体组织有很大的不同。因此,迄今为止,人们对网格与人体组织之间相互作用的力学了解甚少。这项工作通过实验和计算模型模拟了在张力作用下缝合到人体组织模型上的网格的生物力学行为,从而弥补了文献中的空白。将市售的网片(Prolene?)缝合到阴道组织体模材料上,并在不同的单轴应变和应变速率下进行测试。分析了组织体模,缝合线和网格处的整体和局部应力。这项研究的结果为修复义齿网孔的失效机理提供了重要的见识,并且对于将来更好的网孔设计必不可少。

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