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细胞与细菌纤维素的相互作用:便携式静电纺丝枪制备的聚己内酯纳米纤维支架,可用于现场伤口敷料。

Cellular interactions with bacterial cellulose: Polycaprolactone nanofibrous scaffolds produced by a portable electrohydrodynamic gun for point-of-need wound dressing.

机构信息

Department of Metallurgical and Materials Engineering, Marmara University, Istanbul, Turkey.

Department of Mechanical Engineering, University College London (UCL), London, UK.

出版信息

Int Wound J. 2018 Oct;15(5):789-797. doi: 10.1111/iwj.12929. Epub 2018 May 27.

Abstract

Electrospun nanofibrous scaffolds are promising regenerative wound dressing options but have yet to be widely used in practice. The challenge is that nanofibre productions rely on bench-top apparatuses, and the delicate product integrity is hard to preserve before reaching the point of need. Timing is critically important to wound healing. The purpose of this investigation is to produce novel nanofibrous scaffolds using a portable, hand-held "gun", which enables production at the wound site in a time-dependent fashion, thereby preserving product integrity. We select bacterial cellulose, a natural hydrophilic biopolymer, and polycaprolactone, a synthetic hydrophobic polymer, to generate composite nanofibres that can tune the scaffold hydrophilicity, which strongly affects cell proliferation. Composite scaffolds made of 8 different ratios of bacterial cellulose and polycaprolactone were successfully electrospun. The morphological features and cell-scaffold interactions were analysed using scanning electron microscopy. The biocompatibility was studied using Saos-2 cell viability test. The scaffolds were found to show good biocompatibility and allow different proliferation rates that varied with the composition of the scaffolds. A nanofibrous dressing that can be accurately moulded and standardised via the portable technique is advantageous for wound healing in practicality and in its consistency through mass production.

摘要

静电纺丝纳米纤维支架是很有前途的再生创伤敷料选择,但尚未在实践中广泛应用。挑战在于纳米纤维的生产依赖于台式仪器,并且在到达需要点之前,精细的产品完整性很难保持。时间对伤口愈合至关重要。本研究的目的是使用便携式手持式“枪”生产新型纳米纤维支架,使其能够在时间依赖性方式下在创伤部位生产,从而保持产品完整性。我们选择细菌纤维素,一种天然亲水性生物聚合物,和聚己内酯,一种合成疏水性聚合物,以生成可以调节支架亲水性的复合纳米纤维,而支架亲水性强烈影响细胞增殖。成功地用电纺法制备了由 8 种不同比例的细菌纤维素和聚己内酯组成的复合支架。使用扫描电子显微镜分析了形态特征和细胞-支架相互作用。通过 Saos-2 细胞活力试验研究了生物相容性。研究发现,这些支架具有良好的生物相容性,并允许不同的增殖率,这与支架的组成有关。通过便携式技术可以精确成型和标准化的纳米纤维敷料在实用性和通过大规模生产的一致性方面有利于伤口愈合。

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