Oxidized dextran-modified cotton gauze for application as a fouling-resistant wound dressing

IF 1.9 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Bulletin of Materials Science Pub Date : 2024-11-09 DOI:10.1007/s12034-024-03342-w
Madhusmita Sahoo, Rohan Sanklecha, Debirupa Mitra
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Abstract

Cotton gauze (CG) is the most commonly used primary wound dressing to protect wounds from the external environment. However, it is highly susceptible to fouling due to the adhesion of bacteria present on the wound surface. Bacterial colonization of the dressing is detrimental as it aids in wound infection and delays wound healing. To mitigate this issue, the objective of this study was to transform the inert CG into a fouling-resistant wound dressing that can actively resist bacterial adhesion and also prevent biofilm formation on the surface of cotton. In this work, a facile method of modifying commercial CG using oxidized dextran (Odex) was developed. Odex was derived from dextran via periodate oxidation reaction and then coated over the CG using mussel-inspired chemistry. The resultant Odex-modified CG demonstrated a substantial reduction in bacterial adhesion after 4 h of incubation in bacterial suspension. The modified gauze suppressed biofilm formation, achieving ~83% reduction in viable bacterial count as compared to unmodified CG after 48 h of incubation in the bacterial suspension. In addition, the modified CG also showed good breathability, wettability and moisture retention properties. The results suggest a promising approach of transforming inert CG into a potential fouling-resistant wound dressing for the management of wound infections.

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用作抗污伤口敷料的氧化葡聚糖改性棉纱布
棉纱布(CG)是最常用的主要伤口敷料,用于保护伤口免受外部环境的影响。然而,由于伤口表面有细菌附着,敷料极易结垢。敷料上的细菌定植会助长伤口感染并延迟伤口愈合,因而是有害的。为了缓解这一问题,本研究的目的是将惰性 CG 转变为一种抗污伤口敷料,这种敷料能主动抵抗细菌粘附,还能防止棉花表面形成生物膜。在这项工作中,我们开发了一种利用氧化右旋糖酐(Odex)改性商品化 CG 的简便方法。Odex 是通过高碘酸盐氧化反应从葡聚糖中提取出来的,然后利用贻贝启发的化学反应将其涂覆在 CG 上。在细菌悬浮液中培养 4 小时后,Odex 改性纱布的细菌粘附性显著降低。在细菌悬浮液中培养 48 小时后,改性纱布抑制了生物膜的形成,与未经改性的 CG 相比,其存活细菌数减少了约 83%。此外,改性 CG 还具有良好的透气性、润湿性和保湿性。这些结果表明,将惰性 CG 转化为潜在的抗污伤口敷料,用于伤口感染的治疗是一种很有前景的方法。
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来源期刊
Bulletin of Materials Science
Bulletin of Materials Science 工程技术-材料科学:综合
CiteScore
3.40
自引率
5.60%
发文量
209
审稿时长
11.5 months
期刊介绍: The Bulletin of Materials Science is a bi-monthly journal being published by the Indian Academy of Sciences in collaboration with the Materials Research Society of India and the Indian National Science Academy. The journal publishes original research articles, review articles and rapid communications in all areas of materials science. The journal also publishes from time to time important Conference Symposia/ Proceedings which are of interest to materials scientists. It has an International Advisory Editorial Board and an Editorial Committee. The Bulletin accords high importance to the quality of articles published and to keep at a minimum the processing time of papers submitted for publication.
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