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采用添加剂制造技术的离子交联羧甲基壳聚糖支架在抗菌伤口敷料中的应用。

Ionically-crosslinked carboxymethyl chitosan scaffolds by additive manufacturing for antimicrobial wound dressing applications.

机构信息

Biopolymers Department, Biomaterials Center, University of Havana, Havana 10400, Cuba.

BIOLab Research Group, Department of Chemistry and Industrial Chemistry, University of Pisa, UdR INSTM Pisa, Via Moruzzi 13, 56124 Pisa, Italy.

出版信息

Carbohydr Polym. 2024 Dec 15;346:122640. doi: 10.1016/j.carbpol.2024.122640. Epub 2024 Aug 22.

DOI:10.1016/j.carbpol.2024.122640
PMID:39245504
Abstract

Chitosan chemical functionalization is a powerful tool to provide novel materials for additive manufacturing strategies. The main aim of this study was the employment of computer-aided wet spinning (CAWS) for the first time to design and fabricate carboxymethyl chitosan (CMCS) scaffolds. For this purpose, the synthesis of a chitosan derivative with a high degree of O-substitution (1.07) and water soluble in a large pH range allowed the fabrication of scaffolds with a 3D interconnected porous structure. In particular, the developed scaffolds were composed of CMCS fibers with a small diameter (< 60 μm) and a hollow structure due to a fast non solvent-induced coagulation. Zn ionotropic crosslinking endowed the CMCS scaffolds with stability in aqueous solutions, pH-sensitive water uptake capability, and antimicrobial activity against Escherichia coli and Staphylococcus aureus. In addition, post-printing functionalization through collagen grafting resulted in a decreased stiffness (1.6 ± 0.3 kPa) and a higher elongation at break (101 ± 9 %) of CMCS scaffolds, as well as in their improved ability to support in vitro fibroblast viability and wound healing process. The obtained results encourage therefore further investigation of the developed scaffolds as antimicrobial wound dressing hydrogels for skin regeneration.

摘要

壳聚糖化学功能化是提供用于增材制造策略的新型材料的有力工具。本研究的主要目的是首次采用计算机辅助湿法纺丝(CAWS)来设计和制造羧甲基壳聚糖(CMCS)支架。为此,合成了一种具有高 O-取代度(1.07)和在较大 pH 范围内水溶性的壳聚糖衍生物,从而可以制造出具有 3D 互连通孔结构的支架。特别是,所开发的支架由 CMCS 纤维组成,其直径较小(<60μm)且具有中空结构,这是由于快速的非溶剂诱导凝固所致。Zn 离子交联使 CMCS 支架在水溶液中具有稳定性、对 pH 敏感的吸水能力以及对大肠杆菌和金黄色葡萄球菌的抗菌活性。此外,通过胶原接枝进行的后印刷功能化导致 CMCS 支架的刚性降低(1.6±0.3kPa)和断裂伸长率提高(101±9%),以及其支持体外成纤维细胞活力和伤口愈合过程的能力提高。因此,获得的结果鼓励进一步研究作为用于皮肤再生的抗菌伤口敷料水凝胶的所开发的支架。

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