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Biologically Inspired Smart Release System Based on 3D Bioprinted Perfused Scaffold for Vascularized Tissue Regeneration

机译:基于3D生物打印灌注支架的生物启发智能释放系统用于血管组织再生。

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摘要

A critical challenge to the development of large‐scale artificial tissue grafts for defect reconstruction is vascularization of the tissue construct. As an emerging tissue/organ manufacturing technique, 3D bioprinting offers great precision in controlling the internal architecture of a scaffold with preferable mechanical strength and printing complicated microstructures comparable to native tissue. However, current bioprinting techniques still exhibit difficulty in achieving biomimetic nano resolution and cooperating with bioactive spatiotemporal signals. In this study, a comprehensive design of engineered vascularized bone construct is presented for the first time by integrating biomimetic 3D bioprinted fluid perfused microstructure with biologically inspired smart release nanocoating, which is regarded as an aspiring concept combining engineering, biological, and material science. In this biologically inspired design, angiogenesis and osteogenesis are successively induced through a matrix metalloprotease 2 regulative mechanism by delivering dual growth factors with sequential release in spatiotemporal coordination. Availability of this system is evaluated in dynamic culture condition, which is similar to fluid surrounding in vivo, as an alternative animal model study. Results, particularly from co‐cultured dynamically samples demonstrate excellent bioactivity and vascularized bone forming potential of nanocoating modified 3D bioprinted scaffolds for human bone marrow mesenchymal stem cells and human umbilical vein endothelial cells.
机译:开发用于缺陷重建的大规模人工组织移植物的关键挑战是组织构建体的血管形成。作为一种新兴的组织/器官制造技术,3D生物打印在控制支架的内部结构方面具有很高的精度,并具有较好的机械强度,并且可以打印与天然组织相当的复杂微结构。然而,当前的生物打印技术仍然显示出难以实现仿生纳米分辨率和与生物活性时空信号协作的困难。在这项研究中,通过将仿生3D生物打印流体灌注的微观结构与受生物启发的智能释放纳米涂层相结合,首次提出了经过工程设计的血管化骨构造的综合设计,这被认为是结合工程,生物和材料科学的理想概念。在这种生物学启发的设计中,通过传递时空协调中的顺序释放的双重生长因子,通过基质金属蛋白酶2调控机制连续诱导血管生成和成骨。作为替代动物模型研究,在动态培养条件下评估该系统的可用性,该条件类似于体内的流体。结果,尤其是来自动态共培养样品的结果表明,纳米涂层修饰的3D生物打印支架对于人骨髓间充质干细胞和人脐静脉内皮细胞具有出色的生物活性和血管化骨形成的潜力。

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