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Design of a Novel 3D Printed Bioactive Nanocomposite Scaffold for Improved Osteochondral Regeneration

机译:新型3D打印的生物活性纳米复合支架的设计用于改善骨软骨再生。

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摘要

Chronic and acute osteochondral defects as a result of osteoarthritis and trauma present a common and serious clinical problem due to the tissue's inherent complexity and poor regenerative capacity. In addition, cells within the osteochondral tissue are in intimate contact with a 3D nanostructured extracellular matrix composed of numerous bioactive organic and inorganic components. As an emerging manufacturing technique, 3D printing offers great precision and control over the microarchitecture, shape and composition of tissue scaffolds. Therefore, the objective of this study is to develop a biomimetic 3D printed nanocomposite scaffold with integrated differentiation cues for improved osteochondral tissue regeneration. Through the combination of novel nano-inks composed of organic and inorganic bioactive factors and advanced 3D printing, we have successfully fabricated a series of novel constructs which closely mimic the native 3D extracellular environment with hierarchical nanoroughness, microstructure and spatiotemporal bioactive cues. Our results illustrate several key characteristics of the 3D printed nanocomposite scaffold to include improved mechanical properties as well as excellent cytocompatibility for enhanced human bone marrow-derived mesenchymal stem cell adhesion, proliferation, and osteochondral differentiation in vitro. The present work further illustrates the effectiveness of the scaffolds developed here as a promising and highly tunable platform for osteochondral tissue regeneration.
机译:由于组织固有的复杂性和较差的再生能力,由骨关节炎和创伤引起的慢性和急性骨软骨缺损呈现出普遍而严重的临床问题。此外,骨软骨组织内的细胞与3D纳米结构的细胞外基质紧密接触,该基质由多种具有生物活性的有机和无机成分组成。作为一种新兴的制造技术,3D打印可提供极高的精度并控制组织支架的微结构,形状和组成。因此,本研究的目的是开发具有集成分化线索的仿生3D打印纳米复合支架,以改善骨软骨组织的再生。通过将由有机和无机生物活性因子组成的新型纳米墨水与先进的3D打印技术相结合,我们成功地制造了一系列新颖的构建体,这些构建体以分层的纳米粗糙度,微观结构和时空生物活性线索紧密地模仿了原生3D细胞外环境。我们的结果说明了3D打印纳米复合材料支架的几个关键特性,包括改善的机械性能以及出色的细胞相容性,从而增强了人骨髓来源的间充质干细胞的黏附,增殖和体外软骨软骨分化。本工作进一步说明了这里开发的支架作为骨软骨组织再生的有前途和高度可调平台的有效性。

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