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Endosteal-like extracellular matrix expression on melt electrospun written scaffolds

机译:熔体Electrom纺织纺织品上的内皮外细胞外基质表达

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摘要

Tissue engineering technology platforms constitute a unique opportunity to integrate cells and extracellular matrix (ECM) proteins into scaffolds and matrices that mimic the natural microenvironment in vitro. The development of tissue-engineered 3D models that mimic the endosteal microenvironment enables researchers to discover the causes and improve treatments for blood and immune-related diseases. The aim of this study was to establish a physiologically relevant in vitro model using 3D printed scaffolds to assess the contribution of human cells to the formation of a construct that mimics human endosteum. Melt electrospun written scaffolds were used to compare the suitability of primary human osteoblasts (hOBs) and placenta-derived mesenchymal stem cells (pIMSCs) in (non-)osteogenic conditions and with different surface treatments. Using osteogenic conditions, hOBs secreted a dense ECM with enhanced deposition of endosteal proteins, such as fibronectin and vitronectin, and osteogenic markers, such as osteopontin and alkaline phosphatase, compared to pIMSCs. The expression patterns of these proteins were reproducibly identified in hOBs derived from three individual donors. Calcium phosphate-coated scaffolds induced the expression of osteocalcin by hOBs when maintained in osteogenic conditions. The tissue-engineered endosteal microenvironment supported the growth and migration of primary human haematopoietic stem cells (HSCs) when compared to HSCs maintained using tissue culture plastic. This 3D testing platform represents an endosteal bone-like tissue and warrants future investigation for the maintenance and expansion of human HSCs.
机译:组织工程技术平台构成了将细胞和细胞外基质(ECM)蛋白(ECM)蛋白整合到模拟天然微环境的支架和基质中的独特机会。模拟内皮微环境的组织工程3D模型的发展使研究人员能够发现对血液和免疫相关疾病的原因和改善治疗。本研究的目的是使用3D印刷支架建立生理相关的体外模型,以评估人体细胞对模拟人尾病毒的构建体的形成。熔融电纺已经书面支架用于比较原发性人骨盆(滚刀)和胎盘衍生的间充质干细胞(PIMSCs)在(非)骨质发生条件和不同表面处理中的适用性。与PIMSC相比,使用成骨病症,滚刀分泌致密的ECM,其具有增强的内皮蛋白沉积,例如纤维连接蛋白和vitronectin,以及骨桥蛋白和碱性磷酸酶,例如骨桥蛋白和碱性磷酸酶。这些蛋白质的表达模式以衍生自三种单独供体的滚刀可重复鉴定。在保持成骨状况中,磷酸钙涂覆的支架诱导骨髓蛋白的表达。与使用组织培养塑料保持的HSC相比,组织工程内骨膜微环境支持原发性人血包膜干细胞(HSC)的生长和迁移。该3D测试平台代表内科骨状组织,并保证未来调查人类HSC的维护和扩展。

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