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首页> 外文期刊>Journal of Polymer Research >Electrospun cellulose Nano fibril reinforced PLA/PBS composite scaffold for vascular tissue engineering
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Electrospun cellulose Nano fibril reinforced PLA/PBS composite scaffold for vascular tissue engineering

机译:Electromun纤维素纳米原纤维增强PLA / PBS复合支架用于血管组织工程

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摘要

Today, tissue engineered scaffolds made by electrospinning are becoming a central focus of vascular prostheses research due to their ability to assist native tissue recovery. Compared to a single material, multifunctional composite scaffold could provide more suitable microenvironment for the tissue regeneration. In this study, electrospun composite scaffolds are developed by reinforcing a matrix of poly (lactic acid) (PLA) and poly (butylene succinate) (PBS) by cellulose nano-fibrils (CNFs). Initially, PLA/PBS fibrous scaffolds with different ratio were prepared. The best properties and bioactivity of the scaffolds were obtained at equal ratio of PLA and PBS. Overall performance of electrospun scaffolds improved greatly by introduction of CNF into the PLA/PBS scaffolds. The developed composite scaffolds were found to meet some of the essential requirements for vascular tissue regeneration. They showed a uniform fibrous structure with desirable size dimension, cell-friendly surface characteristics, sustainable biodegradation behaviour and sustainable mechanical property compared to native tissue. In addition, the CNF composite scaffolds supported attachment and proliferation of human fibroblast cells more than PLA, PBS or their blends alone. Overall the developed composite scaffolds demonstrated their potency for vascular tissue engineering application.
机译:如今,由于其协助本地组织恢复的能力,通过静电纺织纺织制造的组织工程脚手架成为血管假体研究的中心焦点。与单一材料相比,多功能复合支架可以为组织再生提供更合适的微环境。在该研究中,通过通过纤维素纳米 - 原纤维(CNFS)加强多聚(乳酸)(PLA)(PLA)和聚(丁二酸酯)(PBS)的基质来开发ElecturpOp复合支架。最初,制备具有不同比例的PLA / PBS纤维支架。支架的最佳性质和生物活性以等于PLA和PBS的等比。通过将CNF引入PLA / PBS支架,电纺支架的整体性能大大提高了。发现开发的复合支架符合血管组织再生的一些必要要求。它们显示出均匀的纤维结构,与天然组织相比,具有理想的尺寸,细胞友好的表面特征,可持续的生物降解行为和可持续的机械性能。此外,CNF复合支架支持的是人成纤维细胞的附着和增殖,仅仅是PLA,PBS或其共混物。总的来说,发达的复合脚手架证明了血管组织工程应用的效力。

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