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Mechanical characterization and numerical simulation of a subcutaneous implantable 3D printed cell encapsulation system

机译:皮下植入3D印刷电池封装系统的机械表征及数值模拟

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Cell transplantation in bioengineered scaffolds and encapsulation systems has shown great promise in regenerative medicine. Depending on the site of implantation, type of cells and their expected function, these systems are designed to provide cells with a physiological-like environment while providing mechanical support and promoting long-term viability and function of the graft. A minimally invasive 3D printed system termed neovascularized implantable cell homing and encapsulation (NICHE) was developed in polylactic acid for subcutaneous transplantation of endocrine cells, including pancreatic islets. The suitability of the NICHE for long term in vivo deployment is investigated by assessing mechanical behavior of both fresh devices under simulated subcutaneous conditions and NICHE retrieved from subcutaneous implantation in pigs. Both experimental and numerical studies were performed with a focus on validating the constitutive material model used in the numerical analysis for accuracy and reliability. Notably, homogeneous isotropic constitutive material model calibrated by means of uniaxial testing well suited experimental results. The results highlight the long term durability for in vivo applications and the potential applicability of the model to predict the mechanical behavior of similar devices in various physiological settings.
机译:生物工程支架和封装系统中的细胞移植在再生医学中表现出很大的希望。取决于植入部位,电池类型及其预期功能,这些系统旨在提供具有生理样环境的细胞,同时提供机械支撑和促进移植物的长期活力和功能。最微创的3D印刷系统被称为新生血管化的可植入细胞归巢和包封(Niche),在聚乳酸中显影,用于皮下移植内分泌细胞,包括胰岛。通过评估模拟皮下条件下的模拟皮下病症和从皮下植入猪中检索的Niche,通过评估猪的机械行为来研究Niche在体内部署中的长期的适用性。通过重点进行实验性和数值研究,侧重于验证用于准确性和可靠性的数值分析中使用的组成材料模型。值得注意的是,通过单轴检测良好的实验结果校准均匀各向同性组成型材料模型。结果突出了体内应用的长期耐久性以及模型的潜在适用性,以预测各种生理环境中类似装置的力学行为。

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