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Arrayed Hollow Channels in Silk-based Scaffolds Provide Functional Outcomes for Engineering Critically-sized Tissue Constructs

机译:丝绸基支架中的阵列空心通道为工程关键尺寸的组织构建体提供功能性结果

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摘要

In the field of regenerative medicine there is a need for scaffolds that support large, critically-sized tissue formation. Major limitations in reaching this goal are the delivery of oxygen and nutrients throughout the bulk of the engineered tissue as well as host tissue integration and vascularization upon implantation. To address these limitations we previously reported the development of a porous scaffold platform made from biodegradable silk protein that contains an array of vascular-like structures that extend through the bulk of the scaffold. Here we report that the hollow channels play a pivotal role in enhancing cell infiltration, delivering oxygen and nutrients to the scaffold bulk, and promoting in vivo host tissue integration and vascularization. The unique features of this protein biomaterial system, including the vascular structures and tunable material properties, render this scaffold a robust and versatile tool for implementation in a variety of tissue engineering, regenerative medicine and disease modeling applications.
机译:在再生医学领域,需要支持大的,临界大小的组织形成的支架。达到此目标的主要限制是在整个工程组织的整个过程中氧气和营养的输送以及植入时宿主组织的整合和血管形成。为了解决这些局限性,我们先前报道了由可生物降解的丝蛋白制成的多孔支架平台的开发,该平台包含一系列延伸穿过整个支架的血管样结构。在这里我们报告中空通道在增强细胞浸润,向支架主体输送氧气和营养物质以及促进体内宿主组织整合和血管形成中起关键作用。这种蛋白质生物材料系统的独特功能,包括血管结构和可调节的材料特性,使该支架成为在各种组织工程,再生医学和疾病建模应用中实施的强大而多功能的工具。

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