Chitosan-Camphor Beads as a Novel Starting Biomaterial: Insights Into Methodological Approaches for Preparation.

IF 3.2 4区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Biopolymers Pub Date : 2025-01-01 DOI:10.1002/bip.23651
Carine Sebaaly, Petra Gerges, Hélène Greige
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引用次数: 0

Abstract

Biomaterials with antimicrobial and muco-adhesive properties represent an efficient system for different applications. In this paper, a new biomaterial based on chitosan-camphor beads and their crosslinked form with glutaraldehyde was optimized. Low and high molecular weight chitosan were considered. After an optimization procedure of blank beads preparation, various strategies were used to load camphor into chitosan beads where eight different beads suspensions were characterized for their size and encapsulation efficiency of camphor. Powdered camphor was added to the chitosan solution during the beads preparation or to preformed beads while it was dissolving in water or in 2% acetic acid solution. Results showed that, camphor addition to chitosan solution led to the formation of homogeneous suspensions with reproducible and higher encapsulation efficiencies of camphor compared to the other formulations, irrespective of the chitosan weight. In addition, these beads were stable for 1 month of storage at 4°C. The camphor loaded cross-linked beads with glutaraldehyde (referred to as Cam-beads-GA) were more stable than noncross-linked beads (Cam-beads), which also demonstrated satisfactory stability results. Camphor embedding in chitosan beads was proven to occur through hydrogen bonding and potentially imine bonds by FTIR analysis. The optimized formulations constitute a suitable delivery system for other bioactive agents.

壳聚糖-樟脑珠作为一种新的起始生物材料:制备方法的见解。
具有抗菌和粘接性能的生物材料代表了不同应用的有效系统。本文对壳聚糖-樟脑珠及其与戊二醛交联的新型生物材料进行了优化。考虑了低分子量和高分子量壳聚糖。在对空白微球制备工艺进行优化后,采用不同的策略将樟脑装入壳聚糖微球中,并对8种不同的微球悬浮液的大小和对樟脑的包封效率进行了表征。在制备微球时,将樟脑粉末加入壳聚糖溶液中,或在水或2%醋酸溶液中溶解时将其加入到预成型微球中。结果表明,在壳聚糖溶液中添加樟脑可形成均匀的混悬液,且与壳聚糖质量无关,其包封效率较高。此外,这些微球在4°C下可以稳定保存1个月。樟脑负载戊二醛交联珠(Cam-beads - ga)的稳定性优于非交联珠(Cam-beads),也显示出令人满意的稳定性结果。傅里叶红外光谱分析证实了樟脑包埋在壳聚糖珠中是通过氢键和潜在的亚胺键发生的。所述优化制剂构成了适用于其它生物活性制剂的给药体系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biopolymers
Biopolymers 生物-生化与分子生物学
CiteScore
5.30
自引率
0.00%
发文量
48
审稿时长
3 months
期刊介绍: Founded in 1963, Biopolymers publishes strictly peer-reviewed papers examining naturally occurring and synthetic biological macromolecules. By including experimental and theoretical studies on the fundamental behaviour as well as applications of biopolymers, the journal serves the interdisciplinary biochemical, biophysical, biomaterials and biomedical research communities.
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