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首页> 外文期刊>International Journal of Biological Macromolecules: Structure, Function and Interactions >Bioprinting and its applications in tissue engineering and regenerative medicine
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Bioprinting and its applications in tissue engineering and regenerative medicine

机译:Bioplinting及其在组织工程和再生医学中的应用

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Bioprinting of three-dimensional constructs mimicking natural-like extracellular matrix has revolutionized biomedical technology. Bioprinting technology circumvents various discrepancies associated with current tissue engineering strategies by providing an automated and advanced platform to fabricate various biomaterials through precise deposition of cells and polymers in a premeditated fashion. However, few obstacles associated with development of 3D scaffolds including varied properties of polymers used and viability, controlled distribution, and vascularization, etc. of cells hinder bioprinting of complex structures. Therefore, extensive efforts have been made to explore the potential of various natural polymers (e.g. cellulose, gelatin, alginate, and chitosan, etc.) and synthetic polymers in bioprinting by tuning their printability and cross-linking features, mechanical and thermal properties, biocompatibility, and biodegradability, etc. This review describes the potential of these polymers to support adhesion and proliferation of viable cells to bioprint cell laden constructs, bone, cartilage, skin, and neural tissues, and blood vessels, etc. for various applications in tissue engineering and regenerative medicines. Further, it describes various challenges associated with current bioprinting technology and suggests possible solutions. Although at early stage of development, the potential benefits of bioprinting technology are quite clear and expected to open new gateways in biomedical, pharmaceutics and several other fields in near future. (C) 2017 Elsevier B.V. All rights reserved.
机译:模仿天然型细胞外基质的三维构建体的生物印刷具有革命性的生物医学技术。 BioPlint技术通过提供自动化和先进的平台来避免与当前组织工程策略相关的各种差异,通过精确地沉积细胞和聚合物以预热的方式来制造各种生物材料。然而,与3D支架的发展相关的障碍物,包括所用聚合物的变化和可活力,受控分布和血管化等的多种特性,其细胞阻碍复合结构的生物印刷。因此,已经通过调整其可印刷性和交联特征,机械和热性能,生物相容性,生物相容性,生物相容性,生物相容性,探索各种天然聚合物(例如纤维素,明胶,藻酸盐和壳聚糖等)和合成聚合物的潜力。和生物降解性等。该综述描述了这些聚合物支持活细胞的粘附和增殖的潜力,以对Bioprint Celland构建体,骨,软骨,皮肤和神经组织和血管等进行组织工程的各种应用和再生药物。此外,它描述了与目前的生物监测技术相关的各种挑战,并提出了可能的解决方案。虽然在发育的早期阶段,但生物印刷技术的潜在益处非常清楚,预计在未来在不久的将来开辟生物医学,药物和其他几个领域的新网关。 (c)2017年Elsevier B.V.保留所有权利。

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