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基于异山梨醇的光固化可降解聚合物的合成、表征及 3D 打印及其在颌面重建中的潜在应用

Synthesis, Characterization, and 3D Printing of an Isosorbide-Based, Light-Curable, Degradable Polymer for Potential Application in Maxillofacial Reconstruction.

机构信息

RAFT, Regenerative Biomaterials Group, The RAFT Institute, Mount Vernon Hospital, Northwood HA6 2RN, U.K.

Institute of Tissue Regeneration Engineering (ITREN), Dankook University, Cheonan 330-714, Republic of Korea.

出版信息

ACS Biomater Sci Eng. 2020 May 11;6(5):2578-2587. doi: 10.1021/acsbiomaterials.9b00884. Epub 2019 Oct 22.

Abstract

Although emergence of bone tissue engineering techniques has revolutionized the field of maxillofacial reconstruction, the successful translation of such products, especially concerning larger sized defects, still remains a significant challenge. Light-curable methacrylate-based polymers have ideal properties for bone repair. These materials are also suitable for 3D printing which can be applicable for restoration of both function and aesthetics. The main objective of this research was to synthesize a mechanically stable and biologically functional polymer for reconstruction of complex craniofacial defects. The experimental work initially involved synthesis of (((3,3a,6,6a)-hexahydrofuro[3,2-]furan-3,6-diyl)bis(oxy))bis(ethane-2,1-diyl)bis((4-methyl-3-oxopent-4-en-1-yl)carbamate), CSMA-1, and ((((((((((((3,3a,6,6a)-hexahydrofuro[3,2-]furan-3,6-diyl)bis(oxy))bis(ethane-2,1 diyl))bis(oxy))bis(carbonyl))bis(azanediyl))bis(methylene))bis(3,3,5-trimethylcyclohexane-5,1-diyl))bis(azanediyl))bis(carbonyl))bis(oxy))bis(ethane-2,1-diyl)bis(2-methylacrylate), CSMA-2; nuclear magnetic resonance analysis confirmed formation of the monomers, and composite samples were fabricated respectively by exposing 11 mm diameter discs to blue light. Modulus of elasticity was determined using a biaxial flexural test and the values were found to be between 1 and 3 GPa in CSMA-1, CSMA-2, and their composites. In vitro cell culture, using human bone marrow-derived mesenchymal stem cells, confirmed nontoxicity of the samples and finally 3D printing allowed direct photo-polymerization and setting of the bio ink into a 3D construct.

摘要

尽管骨组织工程技术的出现彻底改变了颌面重建领域,但这些产品的成功转化,特别是对于较大尺寸的缺损,仍然是一个重大挑战。光固化甲基丙烯酸盐基聚合物具有理想的骨修复性能。这些材料也适用于 3D 打印,可应用于功能和美学的修复。本研究的主要目的是合成一种机械稳定且具有生物功能的聚合物,用于重建复杂的颅面缺损。实验工作首先涉及到 (((3,3a,6,6a)-六氢呋喃[3,2-]呋喃-3,6-二基)双(氧基))双(乙烷-2,1-二基)双((4-甲基-3-氧代戊-4-烯-1-基)氨基甲酸酯), CSMA-1 和 ((((((((((((3,3a,6,6a)-六氢呋喃[3,2-]呋喃-3,6-二基)双(氧基))双(乙烷-2,1-二基))双(氧基))双(羰基))双(亚氨基二基))双(亚甲基))双(3,3,5-三甲基环己烷-5,1-二基))双(亚氨基二基))双(羰基))双(氧基))双(乙烷-2,1-二基)双(2-甲基丙烯酸酯), CSMA-2 的合成;核磁共振分析证实了单体的形成,并分别通过暴露 11 毫米直径的圆盘于蓝光下制备了复合材料样品。双轴弯曲试验测定了弹性模量,CSMA-1、CSMA-2 及其复合材料的弹性模量值在 1 到 3 GPa 之间。用人骨髓间充质干细胞进行体外细胞培养,证实了样品的非毒性,最后 3D 打印允许生物墨水直接光聚合并设置为 3D 结构。

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