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通过低温沉积制备的聚(α-羟基酸)-磷酸三钙复合支架的多孔形态、孔隙率及力学性能

Porous morphology, porosity, mechanical properties of poly(alpha-hydroxy acid)-tricalcium phosphate composite scaffolds fabricated by low-temperature deposition.

作者信息

Liu Li, Xiong Zhuo, Yan Yongnian, Hu Yunyu, Zhang Renji, Wang Shenguo

机构信息

Center of Laser Rapid Forming, Department of Mechanical Engineering, Tsinghua University, Beijing 100084, China.

出版信息

J Biomed Mater Res A. 2007 Sep 1;82(3):618-29. doi: 10.1002/jbm.a.31177.

Abstract

Tissue engineering is expected to construct complicated hominine organs composed of many different types of cells. One of the key points is the accurate controlling of scaffold material and porous morphology point by point. A new direct rapid prototyping process called low-temperature deposition manufacturing (LDM) was proposed to fabricate scaffolds. The new process integrated extrusion/jetting and phase separation and therefore could fabricate scaffolds with hierarchical porous structures creating a wonderful environment for the growth of new tissue. The interconnected computer-designed macropores allow cells in the new tissue to grow throughout the scaffold. Also, the parameter-controlled micropores let nutrition in and metabolic wastes out. The macrocellular morphology, microcellular morphology, porosity, and mechanical properties of the poly(alpha-hydroxy acid)-TCP composite scaffolds prepared by the proposed method are investigated. These scaffolds with high controllability would potentially play an important role in tissue engineering. LDM could also be combined with multinozzle deposition or cell deposition to exactly control materials or cells point by point. This might bring a breakthrough to the engineered fabrication of complicated organs.

摘要

组织工程有望构建由多种不同类型细胞组成的复杂人体器官。关键要点之一是逐点精确控制支架材料和多孔形态。一种名为低温沉积制造(LDM)的新型直接快速成型工艺被提出来用于制造支架。新工艺整合了挤出/喷射和相分离,因此能够制造具有分级多孔结构的支架,为新组织的生长创造良好环境。相互连通的计算机设计大孔使新组织中的细胞能够在整个支架中生长。此外,参数可控的微孔可让营养物质进入并排出代谢废物。研究了通过该方法制备的聚(α-羟基酸)-磷酸三钙复合支架的大孔形态、微孔形态、孔隙率和力学性能。这些具有高可控性的支架可能在组织工程中发挥重要作用。LDM还可与多喷嘴沉积或细胞沉积相结合,逐点精确控制材料或细胞。这可能会给复杂器官的工程制造带来突破。

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