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基于多组分生物聚合物的支架的特性和界面增强机制。

Characterizations and interfacial reinforcement mechanisms of multicomponent biopolymer based scaffold.

机构信息

State Key Laboratory of High Performance Complex Manufacturing, College of Mechanical and Electrical Engineering, Central South University, Changsha 410083, China.

Hunan Provincial Tumor Hospital and the Affiliated Tumor Hospital of Xiangya School of Medicine, Central South University, Changsha 410013, China.

出版信息

Mater Sci Eng C Mater Biol Appl. 2019 Jul;100:809-825. doi: 10.1016/j.msec.2019.03.030. Epub 2019 Mar 18.

Abstract

It is difficult for a single component biopolymer to meet the requirements of scaffold at present. The development of multicomponent biopolymer based scaffold provides an effective method to solve the issue based on the advantages of each kind of the biomaterials. However, the compatibility between different components might be very poor due to the difficulties in forming strong interfacial bonding, and thereby significantly degrading the integrated mechanical properties of the scaffold. In recent years, interface phase introduction, surface modification and in situ growth have been the major strategies for enhancing interfacial bonding. This article presents a comprehensive overview on the research in the area of constructing multicomponent biopolymer based scaffold and reinforcing their interfacial properties, and more importantly, the interfacial bonding mechanisms are systematically summarized. Detailly, interface phase introduction can build a bridge between biopolymer and other components to form strong interface bonding with the two phases under the action of interface phase. Surface modification can graft organic molecules or polymers containing functional groups onto other components to crosslink with biopolymer. In situ growth can directly in situ synthesize other components with the action of nucleating agent serving as an adherent platform for the nucleation and growth of other components to biopolymer surface by chemical bonding. In addition, the mechanical properties (including strength and modulus) and biological properties (including bioactivity, cytocompatibility and biosensing in vitro, and tissue compatibility, bone regeneration capacity in vivo) of multicomponent biopolymer based scaffold after interfacial reinforcing are also reviewed and discussed. Finally, suggestions for further research are given with highlighting the need for specific investigations to assess the interface formation, structure, properties, and more in vivo studies of scaffold before applications.

摘要

目前,单一成分的生物聚合物很难满足支架的要求。基于各种生物材料的优势,开发多成分生物聚合物支架为解决这一问题提供了一种有效的方法。然而,由于不同成分之间形成强界面键合的困难,它们之间的相容性可能非常差,从而显著降低支架的整体机械性能。近年来,界面相引入、表面改性和原位生长已成为增强界面键合的主要策略。本文对构建多成分生物聚合物支架和增强其界面性能的研究进行了全面综述,更重要的是,系统总结了界面键合机制。详细地,界面相引入可以在界面相的作用下在生物聚合物和其他成分之间架起桥梁,形成强界面键合。表面改性可以将含有官能团的有机分子或聚合物接枝到其他成分上,通过与生物聚合物的交联作用。原位生长可以直接在原位合成其他成分,通过成核剂作为其他成分在生物聚合物表面成核和生长的附着平台,通过化学键合作用。此外,还对界面增强后的多成分生物聚合物支架的力学性能(包括强度和模量)和生物性能(包括体外的生物活性、细胞相容性和生物传感、组织相容性、体内骨再生能力)进行了综述和讨论。最后,提出了进一步研究的建议,强调需要进行特定的研究来评估支架的界面形成、结构、性能,以及更多的体内研究,然后再进行应用。

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