Basit Hafiz Muhammad, Ali Muhammad, Shah Mian Mufarih, Shah Shefaat Ullah, Wahab Abdul, Albarqi Hassan A, Alqahtani Abdulsalam A, Walbi Ismail A, Khan Nauman Rahim
Department of Pharmaceutics, Faculty of Pharmacy, Gomal University, DIKhan 29050, Pakistan.
Gomal Centre for Skin/Regenerative Medicine and Drug Delivery Research, Faculty of Pharmacy, Gomal University, DIKhan 29050, Pakistan.
Polymers (Basel). 2021 Aug 13;13(16):2716. doi: 10.3390/polym13162716.
This study reports microwave assisted physically cross-linked sodium alginate and pectin film and their testing in combination with modified chitosan-curcumin nanoparticles for skin tissue regeneration following 2nd degree burn wound. Film was formulated by solution casting method and physically cross-linked using microwave irradiation at frequency of 2450 MHz, power 750 Watt for different time intervals for optimization. The optimized formulation was analyzed for various physiochemical attributes. Afterwards, the optimized film and optimized modified chitosan-curcumin nanoparticles were tested in combination for skin regeneration potential following burn wound in vivo and skin samples extracted and tested for different attributes. The results indicated that the optimized film formulation (5 min microwave treatment) physicochemical attributes significantly enhanced addressing the properties required of a wound healing platform. The vibrational analysis indicated that the optimized film experienced significant rigidification of hydrophilic domains while the hydrophobic domains underwent significant fluidization which also resulted in significant increase in the transition temperatures and system enthalpies of both polymer moieties with microwave treatment. The combined film and nanoparticles application significantly increased protein content in the wounds which were evident from higher absorbance ratios of amide-I and amide-II (2.15 ± 0.001), significantly higher melting transition temperature and enthalpy (∆T = 167.2 ± 15.4 °C, ∆H = 510.7 ± 20.1 J/g) and higher tensile strength (14.65 ± 0.8 MPa) with significantly enhanced percent re-epithelization (99.9934 ± 2.56) in comparison to other treatments. The combined application of film and nanoparticles may prove to be a new novel treatment strategy for 2nd degree burn wound healing.
本研究报告了微波辅助物理交联的海藻酸钠和果胶薄膜,并将其与改性壳聚糖 - 姜黄素纳米颗粒联合用于二度烧伤创面的皮肤组织再生测试。薄膜通过溶液浇铸法制备,并使用频率为2450 MHz、功率750瓦的微波辐射在不同时间间隔进行物理交联以优化。对优化后的制剂进行了各种物理化学属性分析。之后,将优化后的薄膜和优化后的改性壳聚糖 - 姜黄素纳米颗粒联合用于体内烧伤创面的皮肤再生潜力测试,并提取皮肤样本进行不同属性测试。结果表明,优化后的薄膜制剂(5分钟微波处理)的物理化学属性显著增强,满足了伤口愈合平台所需的特性。振动分析表明,优化后的薄膜亲水区经历了显著的刚性化,而疏水区则经历了显著的流化,这也导致微波处理后两种聚合物部分的转变温度和系统焓显著增加。薄膜和纳米颗粒联合应用显著增加了伤口中的蛋白质含量,这从酰胺 - I和酰胺 - II的较高吸光度比值(2.15±0.001)、显著更高的熔融转变温度和焓(∆T = 167.2±15.4°C,∆H = 510.7±20.1 J/g)以及更高的拉伸强度(14.65±0.8 MPa)可以明显看出,与其他治疗相比,再上皮化百分比显著提高(99.9934±2.56)。薄膜和纳米颗粒的联合应用可能被证明是二度烧伤创面愈合的一种新的治疗策略。