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用于骨组织工程的石墨烯和氮掺杂石墨烯增强聚己内酯3D支架的研究。

Investigations of Graphene and Nitrogen-Doped Graphene Enhanced Polycaprolactone 3D Scaffolds for Bone Tissue Engineering.

作者信息

Wang Weiguang, Chen Jun-Xiang, Hou Yanhao, Bartolo Paulo, Chiang Wei-Hung

机构信息

Department of Mechanical, Aerospace and Civil Engineering, School of Engineering, Faculty of Science and Engineering, The University of Manchester, Manchester M13 9PL, UK.

Department of Chemical Engineering, National Taiwan University of Science and Technology, Taipei E2-514, Taiwan.

出版信息

Nanomaterials (Basel). 2021 Apr 6;11(4):929. doi: 10.3390/nano11040929.

Abstract

Scaffolds play a key role in tissue engineering applications. In the case of bone tissue engineering, scaffolds are expected to provide both sufficient mechanical properties to withstand the physiological loads, and appropriate bioactivity to stimulate cell growth. In order to further enhance cell-cell signaling and cell-material interaction, electro-active scaffolds have been developed based on the use of electrically conductive biomaterials or blending electrically conductive fillers to non-conductive biomaterials. Graphene has been widely used as functioning filler for the fabrication of electro-active bone tissue engineering scaffolds, due to its high electrical conductivity and potential to enhance both mechanical and biological properties. Nitrogen-doped graphene, a unique form of graphene-derived nanomaterials, presents significantly higher electrical conductivity than pristine graphene, and better surface hydrophilicity while maintaining a similar mechanical property. This paper investigates the synthesis and use of high-performance nitrogen-doped graphene as a functional filler of poly(-caprolactone) (PCL) scaffolds enabling to develop the next generation of electro-active scaffolds. Compared to PCL scaffolds and PCL/graphene scaffolds, these novel scaffolds present improved in vitro biological performance.

摘要

支架在组织工程应用中起着关键作用。在骨组织工程中,支架既要具备足够的力学性能以承受生理负荷,又要具有适当的生物活性以刺激细胞生长。为了进一步增强细胞间信号传导和细胞与材料的相互作用,基于使用导电生物材料或将导电填料与非导电生物材料混合,已开发出电活性支架。石墨烯因其高导电性以及增强力学和生物学性能的潜力,已被广泛用作制造电活性骨组织工程支架的功能性填料。氮掺杂石墨烯是一种独特的石墨烯衍生纳米材料,其导电性明显高于原始石墨烯,在保持相似力学性能的同时具有更好的表面亲水性。本文研究了高性能氮掺杂石墨烯作为聚己内酯(PCL)支架功能性填料的合成与应用,旨在开发下一代电活性支架。与PCL支架和PCL/石墨烯支架相比,这些新型支架具有更好的体外生物学性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/54c1/8067503/38e9f79d8419/nanomaterials-11-00929-g001.jpg

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