首页> 外文期刊>Journal of biomaterials science >Biomimetic composite scaffolds based on surface modification of polydopamine on ultrasonication induced cellulose nanofibrils (CNF) adsorbing onto electrospun thermoplastic polyurethane (TPU) nanofibers
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Biomimetic composite scaffolds based on surface modification of polydopamine on ultrasonication induced cellulose nanofibrils (CNF) adsorbing onto electrospun thermoplastic polyurethane (TPU) nanofibers

机译:基于超声波诱导纤维素纳米纤维(CNF)吸附到Electromation热塑性聚氨酯(TPU)纳米纤维上的仿生物的仿生复合支架基于聚二巴胺的表面改性

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摘要

To improve the interaction between cells and scaffolds, the appropriate surface chemical property is very important for tissue engineering scaffolds. In this study, the thermoplastic polyurethane (TPU) nanofibers was firstly fabricated by electrospinning technique, and then its surface was modified with cellulose nanofibrils (CNF) particles by ultrasonic-assisted to obtain TPU/CNF nanofibers. Subsequently, the TPU/CNF-polydopamine (PDA) composite nanofibers with core/shell structure were fabricated by PDA coating method. In comparison with TPU nanofibers, the uniformization of PDA coating layer on the surface of TPU/CNF composite nanofibers significantly increased due to the addition of CNF, which used as the active sites to guide the PDA particles accumulated along with the fiber direction. The water absorption and hydrophilicity of TPU/CNF-PDA composite nanofibers were significantly increased in comparison with those of TPU and TPU/CNF nanofibers. The mechanical properties of the TPU/CNF-PDA composite nanofibers were higher than those of the TPU and TPU/CNF nanofibers due to the formation of strong hydrogen bonds between PDA and TPU/CNF, making TPU, CNF and PDA strongly adhere to each other. The attachment and viability of mouse embryonic osteoblasts cells (MC3T3-E1) cultured on TPU/CNF-PDA composite nanofibers were obviously enhanced compared with TPU and TPU/CNF nanofibers. Those results suggested that the modified TPU/CNF-PDA composite nanofibers have excellent mechanical and biological properties, which promoting them potentially useful for tissue engineering scaffolds. The presented strategy represents a general route to modify the surface of scaffolds, which are promising for tissue engineering applications.
机译:为了改善细胞和支架之间的相互作用,适当的表面化学性质对于组织工程支架非常重要。在该研究中,通过静电纺丝技术首先制造热塑性聚氨酯(TPU)纳米纤维,然后通过超声波辅助通过超声波辅助以获得TPU / CNF纳米纤维用纤维素纳米纤维(CNF)颗粒改性其表面。随后,通过PDA涂布法制造具有芯/壳结构的TPU / CNF-聚德米多(PDA)复合纳米纤维。与TPU纳米纤维相比,由于加入CNF的CNF,PDA涂层在TPU / CNF复合纳米纤维表面上的均匀化显着增加,该CNF用作活性位点,以引导蓄积的PDA颗粒以及纤维方向。与TPU和TPU / CNF纳米纤维相比,TPU / CNF-PDA复合纳米纤维的吸水率和亲水性显着增加。 TPU / CNF-PDA复合纳米纤维的力学性能高于TPU和TPU / CNF纳米纤维,由于PDA和TPU / CNF之间的强氢键形成,使TPU,CNF和PDA彼此强烈粘附。与TPU和TPU / CNF纳米纤维相比,在TPU / CNF-PDA复合纳米纤维上培养的小鼠胚胎成骨细胞(MC3T3-E1)的附着和活力明显增强。这些结果表明,改性的TPU / CNF-PDA复合纳米纤维具有优异的机械和生物学性质,其促进它们可能对组织工程支架有用。所提出的策略代表了改变支架表面的一般途径,这是对组织工程应用的承诺。

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