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Preparation of Well-Dispersed Chitosan/Alginate Hollow Multilayered Microcapsules for Enhanced Cellular Internalization

机译:制备井分散的壳聚糖/藻酸盐中空多层微胶囊,用于增强蜂窝内化

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摘要

Hollow multilayered capsules have shown massive potential for being used in the biomedical and biotechnology fields, in applications such as cellular internalization, intracellular trafficking, drug delivery, or tissue engineering. In particular, hollow microcapsules, developed by resorting to porous calcium carbonate sacrificial templates, natural-origin building blocks and the prominent Layer-by-Layer (LbL) technology, have attracted increasing attention owing to their key features. However, these microcapsules revealed a great tendency to aggregate, which represents a major hurdle when aiming for cellular internalization and intracellular therapeutics delivery. Herein, we report the preparation of well-dispersed polysaccharide-based hollow multilayered microcapsules by combining the LbL technique with an optimized purification process. Cationic chitosan (CHT) and anionic alginate (ALG) were chosen as the marine origin polysaccharides due to their biocompatibility and structural similarity to the extracellular matrices of living tissues. Moreover, the inexpensive and highly versatile LbL technology was used to fabricate core-shell microparticles and hollow multilayered microcapsules, with precise control over their composition and physicochemical properties, by repeating the alternate deposition of both materials. The microcapsules’ synthesis procedure was optimized to extensively reduce their natural aggregation tendency, as shown by the morphological analysis monitored by advanced microscopy techniques. The well-dispersed microcapsules showed an enhanced uptake by fibroblasts, opening new perspectives for cellular internalization.
机译:中空多层胶囊已经显示了在生物医学和生物技术领域中使用,在应用中如细胞内,细胞内运输,药物递送,或组织工程巨大潜力。特别是,空心胶囊,通过诉诸多孔碳酸钙牺牲模板,天然来源的构建模块和突出层 - 层(LBL)技术开发的,由于其主要特点吸引了越来越多的关注。然而,这些微胶囊透露了一个巨大的聚集趋势,瞄准细胞内和细胞内治疗时交付代表的主要障碍。在此,我们通过的LbL技术具有优化的纯化方法组合报告良好分散的基于多糖的中空多层微胶囊的制备。阳离子壳聚糖(CHT)和阴离子藻酸盐(ALG)被选择作为海洋来源的多糖,由于其生物相容性和结构相似性的生物体组织的细胞外基质。此外,廉价且通用性高的LbL技术被用于制造芯 - 壳微粒和中空多层微胶囊,有超过它们的组成和物理化学性质的精确控制,通过重复这两种材料的交替沉积。微胶囊合成方法进行了优化,以减少广泛它们的天然聚集倾向,如图中的形态学分析监控由先进显微技术。的良好分散的微胶囊显示出增强的吸收由成纤维细胞,对细胞内打开新的前景。

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