El-Lakany Sarah A, Elgindy Nazik A, Kamoun Elbadawy A, Masanga Perusi M, El-Moslamy Shahira H, Abu-Serie Marwa, Aly Rania G, Aasy Noha Khalifa Abo
Department of Industrial Pharmacy, Faculty of Pharmacy, Alexandria University, 1 El Khartoum Square, PO Box 21521, Alexandria, Egypt.
College of Pharmacy, Arab Academy for Science, Technology & Maritime Transport, Alexandria, Egypt.
Drug Deliv Transl Res. 2025 Aug 29. doi: 10.1007/s13346-025-01948-z.
Biopolymer-based composite films were primed by incorporating alginate and zein natural polymers using a solution-casting method and superbly assisted by eco-friendly prepared copper oxide nanoparticles (CuO NPs). The influence of the addition method of CaCl as a crosslinker and CuO NPs loading content (0.1, 0.2, and 0.4 wt%) on the microstructural, physical, and mechanical properties of the films, were appraised. The formation of composite films and incorporation of CuO NPs were verified by FT-IR and XRD studies. The results unearthed that double crosslinking (Dipping method) succeeded in forming a firm, homogenous film that maintains its integrity in water for up to 24 h in comparison to the single (Blending) method. Inclusion of zein in the film and further loading with CuO NPs are manifested in a significant decrease in water vapor permeability, swelling and degradation percentage about (58.57, 52.26, and 25.80%); respectively. In addition to 1.26-folds increase in the tensile strength and 1.19-folds decrease in elongation to break, endorsing the excellent barrier property and durability of the formed films. Nevertheless, CuO loaded composite film proposes high biocompatibility against HBF4 cells with the highest IC50 and EC100 values, compared to alginate film and free-CuO NPs. The composite film exhibited the most effective antimicrobial activity against extremely drug-resistant human pathogens of both Gram-ve and Gram + ve bacteria strains, as well as fungal cells. The healed diabetic wound demonstrated an intact fully thickened keratinized epidermal epithelialization, and a complete absence of any inflammatory infiltrate after 13 days of treatment, emphasizing its suitability as a promising dressing candidate for skin tissue bioengineering.
基于生物聚合物的复合薄膜通过溶液浇铸法加入海藻酸钠和玉米醇溶蛋白天然聚合物进行制备,并得到了环保制备的氧化铜纳米颗粒(CuO NPs)的出色辅助。评估了作为交联剂的氯化钙添加方法以及CuO NPs负载量(0.1、0.2和0.4 wt%)对薄膜微观结构、物理和机械性能的影响。通过FT-IR和XRD研究验证了复合薄膜的形成以及CuO NPs的掺入。结果表明,与单一(共混)方法相比,双交联(浸渍法)成功形成了一种坚固、均匀的薄膜,该薄膜在水中可保持其完整性长达24小时。薄膜中包含玉米醇溶蛋白并进一步负载CuO NPs后,水蒸气透过率、溶胀率和降解率显著降低,分别约为(58.57%、52.26%和25.80%)。此外,拉伸强度提高了1.26倍,断裂伸长率降低了1.19倍,这证明了所形成薄膜具有优异的阻隔性能和耐久性。然而,与海藻酸钠薄膜和游离CuO NPs相比,负载CuO的复合薄膜对HBF4细胞具有较高的生物相容性,IC50和EC100值最高。该复合薄膜对革兰氏阴性和革兰氏阳性细菌菌株以及真菌细胞等极耐药的人类病原体表现出最有效的抗菌活性。经治疗13天后,愈合的糖尿病伤口显示出完整的完全增厚的角质化表皮上皮化,且完全没有任何炎症浸润,这强调了其作为皮肤组织生物工程有前景的敷料候选材料的适用性。