Mahmood Saima, Khan Nauman Rahim, Razaque Ghulam, Shah Shefaat Ullah, Shahid Memuna Ghafoor, Albarqi Hassan A, Alqahtani Abdulsalam A, Alasiri Ali, Basit Hafiz Muhammad
Gomal Centre for Pharmaceutical Sciences, Faculty of Pharmacy, Gomal University, DIKhan 29050, Khyber Pakhtunkhwa, Pakistan.
Department of Pharmacy, Kohat University of Science and Technology, Kohat 26000, Khyber Pakhtunkhwa, Pakistan.
Pharmaceutics. 2023 Jan 27;15(2):418. doi: 10.3390/pharmaceutics15020418.
This study aimed at developing the microwave-treated, physically cross-linked polymer blend film, optimizing the microwave treatment time, and testing for physicochemical attributes and wound healing potential in diabetic animals. Microwave-treated and untreated films were prepared by the solution casting method and characterized for various attributes required by a wound healing platform. The optimized formulation was tested for skin regeneration potential in the diabetes-induced open-incision animal model. The results indicated that the optimized polymer film formulation (MB-3) has significantly enhanced physicochemical properties such as high moisture adsorption (154.6 ± 4.23%), decreased the water vapor transmission rate () value of (53.0 ± 2.8 g/m/h) and water vapor permeability () value (1.74 ± 0.08 g mm/h/m), delayed erosion (18.69 ± 4.74%), high water uptake, smooth and homogenous surface morphology, higher tensile strength (56.84 ± 1.19 MPa), and increased glass transition temperature and enthalpy (through polymer hydrophilic functional groups depicting efficient cross-linking). The in vivo data on day 16 of post-wounding indicated that the wound healing occurred faster with significantly increased percent re-epithelialization and enhanced collagen deposition with optimized MB-3 film application compared with the untreated group. The study concluded that the microwave-treated polymer blend films have sufficiently enhanced physical properties, making them an effective candidate for ameliorating the diabetic wound healing process and hastening skin tissue regeneration.
本研究旨在开发经微波处理的物理交联聚合物共混膜,优化微波处理时间,并测试其理化特性以及在糖尿病动物模型中的伤口愈合潜力。通过溶液浇铸法制备了经微波处理和未处理的薄膜,并对伤口愈合平台所需的各种特性进行了表征。在糖尿病诱导的开放性切口动物模型中测试了优化配方的皮肤再生潜力。结果表明,优化后的聚合物薄膜配方(MB-3)具有显著增强的理化性能,如高吸湿率(154.6±4.23%)、降低的水蒸气透过率()值为(53.0±2.8 g/m/h)和水蒸气渗透率()值(1.74±0.08 g mm/h/m)、延迟侵蚀(18.69±4.74%)、高吸水率、光滑均匀的表面形态、更高的拉伸强度(56.84±1.19 MPa)以及升高的玻璃化转变温度和焓(通过聚合物亲水性官能团显示出有效的交联)。伤口后第16天的体内数据表明,与未处理组相比,应用优化后的MB-3薄膜可使伤口愈合更快,再上皮化百分比显著增加,胶原沉积增强。该研究得出结论,经微波处理的聚合物共混膜具有充分增强的物理性能,使其成为改善糖尿病伤口愈合过程和加速皮肤组织再生的有效候选材料。