Bioinspired sodium alginate based thermosensitive hydrogel membranes for accelerated wound healing

被引:181
作者
Abbasi, Asma Riaz [1 ]
Sohail, Muhammad [1 ]
Minhas, Muhammad Usman [2 ]
Khaliq, Touba [1 ]
Kousar, Mubeen [1 ]
Khan, Shahzeb [3 ,4 ,5 ]
Hussain, Zahid [6 ]
Munir, Abubakar [7 ]
机构
[1] COMSATS Univ Islamabad, Dept Pharm, Abbottabad Campus, Abbottabad 22010, Pakistan
[2] Univ Sargodha, Coll Pharm, Sargodha 40100, Punjab, Pakistan
[3] Univ Malakand, Dept Pharm, Dir Lower Chakdara, Kpk, Pakistan
[4] Univ Texas Austin, Coll Pharm, Div Mol Pharmaceut & Drug Delivery, Austin, TX 78712 USA
[5] UKZN, Sch Hlth Sci, Discipline Pharmaceut Sci, Durban, South Africa
[6] Univ Sharjah, Dept Pharmaceut & Pharmaceut Technol, Coll Pharm, Sharjah 27272, U Arab Emirates
[7] Super Univ, Dept Pharm, Lahore, Punjab, Pakistan
关键词
Biomaterials; Sodium alginate; Hydrogel membranes; Wound healing; Poloxamer; 407; Thermosensitive hydrogels; POLYVINYL-ALCOHOL; COMPOSITE FILM; OPTIMIZATION; DRUG; DRESSINGS; DELIVERY; NANOPARTICLES; DEGRADATION;
D O I
10.1016/j.ijbiomac.2020.03.248
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
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)-H-1, 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 with stand 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. (C) 2020 Elsevier B.V. All rights reserved.
引用
收藏
页码:751 / 765
页数:15
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