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Investigating design principles of micropatterned encapsulation systems containing high-density microtissue arrays

机译:调查含有高密度微仪表阵列的微透明理由封装系统的设计原理

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Immunoisolation is an important strategy to protect transplanted cells from rejection by the host immune system. Recently, microfabrication techniques have been used to create hydrogel membranes to encapsulate microtissue in an arrayed organization. The method illustrates a new macroencapsulation paradigm that may allow transplantation of a large number of cells with microscale spatial control, while maintaining an encapsulation device that is easily maneuverable and remaining integrated following transplantation. This study aims to investigate the design principles that relate to the translational application of micropatterned encapsulation membranes, namely, the control over the transplantation density/quantity of arrayed microtissues and the fidelity of pre-formed microtissues to micropatterns. Agarose hydrogel membranes with microwell patterns were used as a model encapsulation system to exemplify these principles. Our results show that high-density micropatterns can be generated in hydrogel membranes, which can potentially maximize the percentage volume of cellular content and thereby the transplantation efficiency of the encapsulation device. Direct seeding of microtissues demonstrates that microwell structures can efficiently position and organize pre-formed microtissues, suggesting the capability of micropatterned devices for manipulation of cellular transplants at multicellular or tissue levels. Detailed theoretical analysis was performed to provide insights into the relationship between micropatterns and the transplantation capacity of membrane-based encapsulation. Our study lays the ground for developing new macroencapsulation systems with microscale cellular/tissue patterns for regenerative transplantation.
机译:免疫分离是保护移植细胞免受宿主免疫系统排斥的重要策略。最近,已经使用微型制造技术来产生水凝胶膜以在阵列组织中封装微生物仪。该方法说明了一种新的宏观剖面范例,其可以允许通过微尺度空间控制移植大量小区,同时维持易于操纵的封装设备,并且剩余地进行后移植。本研究旨在调查与微透明封装膜的翻译应用,即控制对阵列微小发布的移植密度/数量的控制和预先形成的微小立方带的保真度的设计原则。使用微孔图案的琼脂糖水凝胶膜用作模型封装系统,以举例说明这些原则。我们的结果表明,高密度微图案可以在水凝胶膜中产生,这可能会最大化细胞含量的百分比体积,从而可以使封装装置的移植效率最大化。显微镜的直接播种表明微孔结构可以有效地定位和组织预形成的微小发布,这表明微透明理由装置以操纵多细胞或组织水平的细胞移植能力。进行了详细的理论分析,为微图案和基于膜包装的移植能力的关系提供了深入的洞察。我们的研究为开发具有微观细胞/组织模式开发新的宏观常移系统进行再生移植的地面。

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