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用于加速伤口愈合的受生物启发的海藻酸钠基热敏水凝胶膜

Bioinspired sodium alginate based thermosensitive hydrogel membranes for accelerated wound healing.

作者信息

Abbasi Asma Riaz, Sohail Muhammad, Minhas Muhammad Usman, Khaliq Touba, Kousar Mubeen, Khan Shahzeb, Hussain Zahid, Munir Abubakar

机构信息

Department of Pharmacy, COMSATS University, Islamabad, Abbottabad Campus, 22010, Pakistan.

Department of Pharmacy, COMSATS University, Islamabad, Abbottabad Campus, 22010, Pakistan.

出版信息

Int J Biol Macromol. 2020 Jul 15;155:751-765. doi: 10.1016/j.ijbiomac.2020.03.248. Epub 2020 Apr 1.

Abstract

Despite substantial progress made in the development of wound dressings, wound management remains a great challenge, which compels significant burden to the patient and healthcare system. Owing to its intricate pathophysiology particularly, wounds with bacterial burden impose substantial challenges to the conventional wound dressings, and hence, demands development of novel and more efficient wound healing modalities. Therefore, the aim of the present study was to design a novel thermosensitive hydrogel membrane composed of sodium alginate, poloxamer 407, pluronic F-127, and polyvinyl alcohol for accelerated wound healing. The developed hydrogel membranes were evaluated using HNMR, FTIR, SEM, XRD, TGA and DSC for sufficient cross-linking, surface morphology, tensile strength, mechanical properties, thermos-sensitivity and thermal stability. Moreover, the swelling properties, drug release behavior, gel fraction, water vapor transmission rate, and antibacterial proficiency of the developed hydrogel membrane were also investigated. The resulting analysis revealed that developed hydrogel membranes exhibited good mechanical properties and tensile strength to withstand the external frictional stress while covering the wound, exceptional swelling properties and surface porosity for sustained release of encapsulated drug (amikacin). Antibacterial results showed that amikacin-loaded hydrogel membranes exhibited significantly higher zone of inhibition against S. aureus and P. aregnosa. In accordance with our hypothesis, excisional animal model showed significantly higher wound healing efficacy of hydrogel membranes in terms of faster wound closure, greater re-epithelization, and granulation tissue formation compared with positive and negative control groups. Conclusively, the extensive evaluations clearly evidenced a promising wound healing potential of our novel alginate-based hydrogel membrane as an efficient wound healer for faster wound healing.

摘要

尽管伤口敷料的开发取得了重大进展,但伤口管理仍然是一项巨大的挑战,给患者和医疗系统带来了沉重负担。特别是由于其复杂的病理生理学,存在细菌负荷的伤口对传统伤口敷料提出了重大挑战,因此需要开发新的、更有效的伤口愈合方式。因此,本研究的目的是设计一种由海藻酸钠、泊洛沙姆407、普朗尼克F - 127和聚乙烯醇组成的新型热敏水凝胶膜,以加速伤口愈合。使用核磁共振氢谱(HNMR)、傅里叶变换红外光谱(FTIR)、扫描电子显微镜(SEM)、X射线衍射(XRD)、热重分析(TGA)和差示扫描量热法(DSC)对制备的水凝胶膜进行评估,以确定其交联程度、表面形态、拉伸强度、机械性能、热敏感性和热稳定性。此外,还研究了所制备水凝胶膜的溶胀性能、药物释放行为、凝胶分数、水蒸气透过率和抗菌能力。结果分析表明,所制备的水凝胶膜具有良好的机械性能和拉伸强度,能够在覆盖伤口时承受外部摩擦应力,具有优异的溶胀性能和表面孔隙率,可实现包封药物(阿米卡星)的持续释放。抗菌结果表明,载有阿米卡星的水凝胶膜对金黄色葡萄球菌和铜绿假单胞菌表现出明显更大的抑菌圈。与我们的假设一致,切除动物模型显示,与阳性和阴性对照组相比,水凝胶膜在伤口愈合效果方面显著更高,表现为伤口闭合更快、再上皮化程度更高和肉芽组织形成更多。总之,广泛的评估清楚地证明了我们新型海藻酸盐基水凝胶膜作为一种有效的伤口愈合剂,在促进伤口更快愈合方面具有广阔的伤口愈合潜力。

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