Injectable self-healing dynamic aldehyde-gellan gum-based hydrogel nanocomposite with enhanced antibacterial and antioxidant wound dressing to alleviate chronic skin wound

IF 4.5 3区 医学 Q1 PHARMACOLOGY & PHARMACY
Aniruddha Dan , Hemant Singh , Tishira K. Shah , Wajid Mohammad Sheikh , Majid Shafi , Laxmanan Karthikeyan , Jasmeena Jan , Shabir Hassan , Showkeen Muzamil Bashir , Mukesh Dhanka
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引用次数: 0

Abstract

The difficult-to-heal wounds present a significant challenge for current treatment modalities due to factors such as impaired tissue microenvironments, disrupted inflammatory balance, impaired cellular proliferation, and opportunistic bacterial infections. Drawing inspiration from the biocompatibility of biological macromolecules, we fabricated injectable nanocomposite hydrogels using oxidized gellan gum, gelatin, and polyethyleneimine (PEI). The hydrogels demonstrated remarkable shear-thinning properties due to the reversible imine bonds. The incorporation of quercetin-loaded zein nanoparticles (QZnps) further enhanced the bioactivity of the hydrogels, including improved cell proliferation, antibacterial efficacy, and controlled release of quercetin in vitro. In vivo studies demonstrated that these engineered nanocomposite hydrogels significantly accelerated wound contraction rates in full-thickness wounds in rats. This was achieved through enhanced collagen deposition, optimized re-epithelialization, tissue remodeling, and the restoration of inflammatory balance. These dynamic QZnps-loaded nanocomposite hydrogels offer a promising approach for the treatment of chronic full-thickness wounds, obviating the need for additional antibiotics, traditional drugs, or exogenous cytokines. This versatile hydrogel system holds great potential for the effective management of chronic full-thickness wound healing.
可注射自愈动态醛结冷胶基水凝胶纳米复合材料,增强抗菌和抗氧化伤口敷料,减轻慢性皮肤伤口
由于组织微环境受损、炎症平衡破坏、细胞增殖受损和机会性细菌感染等因素,难以愈合的伤口对当前的治疗方式提出了重大挑战。从生物大分子的生物相容性中获得灵感,我们用氧化结冷胶、明胶和聚乙烯亚胺(PEI)制备了可注射的纳米复合水凝胶。由于可逆的亚胺键,水凝胶表现出显著的剪切减薄性能。槲皮素纳米粒(QZnps)的掺入进一步增强了水凝胶的生物活性,包括促进细胞增殖、抗菌效果和体外槲皮素的控释。体内研究表明,这些工程纳米复合水凝胶显著加快了大鼠全层伤口的伤口收缩速率。这是通过增强胶原沉积、优化再上皮化、组织重塑和恢复炎症平衡来实现的。这些动态负载qznps的纳米复合水凝胶为治疗慢性全层伤口提供了一种很有前景的方法,无需额外的抗生素、传统药物或外源性细胞因子。这种多功能水凝胶系统具有巨大的潜力,有效地管理慢性全层伤口愈合。
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来源期刊
CiteScore
8.00
自引率
8.00%
发文量
879
审稿时长
94 days
期刊介绍: The Journal of Drug Delivery Science and Technology is an international journal devoted to drug delivery and pharmaceutical technology. The journal covers all innovative aspects of all pharmaceutical dosage forms and the most advanced research on controlled release, bioavailability and drug absorption, nanomedicines, gene delivery, tissue engineering, etc. Hot topics, related to manufacturing processes and quality control, are also welcomed.
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