简便制备用于非压迫性止血和伤口愈合的季铵化壳聚糖内含生物分子贴片

IF 6.2 3区 综合性期刊 Q1 Multidisciplinary Fundamental Research Pub Date : 2024-09-01 DOI:10.1016/j.fmre.2023.05.009
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摘要

无细胞伤口敷料(WDs)具有理想的有效性和安全性,在再生医学领域备受关注。然而,生物活性聚合物与伤口敷料空间结构之间的薄弱联系经常导致介入治疗失败。在本文中,我们通过紫外交联创造了一系列加入季铵化壳聚糖(QCS)的复合水凝胶(简称 GHCH-n),然后将其转化为微针贴片(MNPs)。带正电荷的两亲性 QCS 是广谱抗菌和止血活性的关键。QCS 被证明有轻微毒性,因此它被固定在甲基丙烯酸酯明胶(GelMA)分子笼中,以尽量减少不良影响。聚二甲基硅氧烷微模具用于塑造 MNPs。MNPs 可以穿透组织、封闭出血部位并牢牢粘附在伤口上。因此,MNPs 可与 GHCH-n 水凝胶合作止血并加速伤口愈合。本研究推荐 GHCH-10 MNPs 作为一种先进的生物材料。多个临床前研究模型充分验证了 GHCH-10 MNPs 的应用效果。这项研究还提出了一种将生物活性聚合物的性质与复合生物材料的结构相结合的新策略。这种策略不仅适用于制造下一代 WD,而且在拓展跨学科领域方面也显示出巨大的潜力。
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Facile fabrication of quaternized chitosan-incorporated biomolecular patches for non-compressive haemostasis and wound healing
Cell-free wound dressings (WDs) with desirable effectiveness and safety have received much attention in the field of regenerative medicine. However, the weak linkages between bioactive polymers and the spatial structure of WDs frequently result in interventional treatment failure. Herein, we create a series of quaternized chitosan (QCS)-incorporated composite hydrogels (referred to as GHCH-n) by UV cross-linking and then convert them into microneedle patches (MNPs). QCS, which is positively charged and amphiphilic, is essential for broad-spectrum antibacterial and haemostatic activities. QCS is proven to be slightly toxic, so it is immobilized into the methacrylate gelatine (GelMA) molecular cage to minimize adverse effects. A polydimethylsiloxane micro-mould is used to shape the MNPs. MNPs can pierce tissue, seal off bleeding sites, and cling to wounds securely. Thus, MNPs can cooperate with GHCH-n hydrogels to halt bleeding and accelerate wound healing. This study recommends GHCH-10 MNPs as an advanced biomaterial. Several preclinical research models have thoroughly validated the application effect of GHCH-10 MNPs. This research also proposes a novel strategy for integrating the nature of bioactive polymers and the structure of composite biomaterials. This strategy is not only applicable to the fabrication of next-generation WDs but also shows great potential in expanding interdisciplinary domains.
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来源期刊
Fundamental Research
Fundamental Research Multidisciplinary-Multidisciplinary
CiteScore
4.00
自引率
1.60%
发文量
294
审稿时长
79 days
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