Department of Pharmaceutics and Industrial Pharmacy, Faculty of Pharmacy, Modern University for Technology and Information (MTI), Mokattam, Cairo, Egypt.
Department of Integrative Physiology, Baylor College of Medicine, Houston, TX, USA.
Int J Nanomedicine. 2024 Mar 27;19:3045-3070. doi: 10.2147/IJN.S455270. eCollection 2024.
Diabetes Mellitus is a multisystem chronic pandemic, wound inflammation, and healing are still major issues for diabetic patients who may suffer from ulcers, gangrene, and other wounds from uncontrolled chronic hyperglycemia. contain bioactive compounds such as flavonoids and phenolics that support wound healing via antioxidant, anti-inflammatory, and antibacterial properties. Our study aimed to develop a combination of eco-friendly formulations of green synthesis of ZnO-NPs by extract and further incorporate them into 2% chitosan (CS) gel.
First, develop eco-friendly green Zinc Oxide Nanoparticles (ZnO-NPs) and incorporate them into a 2% chitosan (CS) gel. In-vitro study performed by UV-visible spectrum analysis showed a sharp peak at 390 nm, and Energy-dispersive X-ray (EDX) spectrometry showed a peak of zinc and oxygen. Besides, Fourier transforms infrared (FTIR) was used to qualitatively validate biosynthesized ZnO-NPs, and transmission electron microscope (TEM) showed spherical nanoparticles with mean sizes of 76 nm and Zeta potential +30mV. The antibacterial potential of A.O.-ZnO-NPs-Cs was examined by the diffusion agar method against Gram-positive ( and ) and Gram-negative bacteria ( and ). Based on the zone of inhibition and minimal inhibitory indices (MIC). In addition, an in-silico study investigated the binding affinity of . major components to the expected biological targets that may aid wound healing. , A.O-ZnO-NPs group showed reduced downregulation of IL-6, IL-1β, and TNF-α and increased IL-10 levels compared to the control group signaling pathway expression levels confirming the improved anti-inflammatory effect of the self-assembly method. and histopathological analysis revealed the superiority of the nanoparticles in reducing signs of inflammation and wound incision in rat models.
These biocompatible green zinc oxide nanoparticles, by using chitosan gel ensure an excellent new therapeutic approach for quickening diabetic wound healing.
糖尿病是一种多系统的慢性流行疾病,炎症和愈合仍然是糖尿病患者的主要问题,他们可能会因慢性高血糖控制不佳而患有溃疡、坏疽和其他伤口。含有生物活性化合物,如类黄酮和酚类化合物,具有抗氧化、抗炎和抗菌特性,可支持伤口愈合。我们的研究旨在开发一种由 提取物的环保型绿色合成 ZnO-NPs 的组合,并进一步将其纳入 2%壳聚糖 (CS) 凝胶中。
首先,开发环保型绿色氧化锌纳米粒子 (ZnO-NPs),并将其纳入 2%壳聚糖 (CS) 凝胶中。通过紫外-可见光谱分析进行的体外研究表明,在 390nm 处出现尖锐峰,能量色散 X 射线 (EDX) 光谱显示锌和氧的峰。此外,傅里叶变换红外 (FTIR) 用于定性验证生物合成的 ZnO-NPs,透射电子显微镜 (TEM) 显示平均粒径为 76nm 的球形纳米粒子,Zeta 电位为+30mV。通过琼脂扩散法对革兰氏阳性菌 ( 和 ) 和革兰氏阴性菌 ( 和 ) 对 A.O.-ZnO-NPs-Cs 的抗菌潜力进行了检查。基于抑菌圈和最小抑菌指数 (MIC)。此外,通过计算机模拟研究了 的主要成分与预期生物靶标的结合亲和力,这可能有助于伤口愈合。与对照组相比,A.O.-ZnO-NPs-Cs 组的 IL-6、IL-1β 和 TNF-α 的下调表达减少,IL-10 水平增加,表明自组装法的抗炎作用得到改善。组织学和组织化学分析以及免疫组化分析显示,纳米粒子在减少大鼠模型炎症和伤口切口的迹象方面具有优越性。
这些生物相容性的绿色氧化锌纳米粒子,通过使用 壳聚糖凝胶,为加快糖尿病伤口愈合提供了一种极好的新治疗方法。