Optimization of Silver Nanoparticle Dermal Patch Films for Enhanced Wound Healing: Formulation and Characterization Study.

Q2 Environmental Science
The Scientific World Journal Pub Date : 2025-07-29 eCollection Date: 2025-01-01 DOI:10.1155/tswj/4800551
Roisah Nawatila, Astridani Putranti, Celia Susetyo, Elizabeth Masur, Kartini Kartini, Johan Sukweenadhi, Christina Avanti
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引用次数: 0

Abstract

Background: Silver nanoparticles (AgNPs) are known for their potent antibacterial properties, making them suitable for wound healing applications. Aims: This study focuses on formulating AgNPs into dermal patch films (DPFs), leveraging the adhesive properties of the film for the effective delivery of active ingredients. Methods: AgNPs were synthesized through a green synthesis method using Plantago major L. Leaf extract as a bioreductant. Five distinct formulations, ranging from AgNP concentration of 0% (control), 0.005%, 0.01%, 0.05%, and 0.10%, were optimized and denoted as Formulas 1-5 (F1-F5), respectively. The films were fabricated by solvent casting method employing a manual film applicator. A variety of evaluations were then performed on the films, including assessments of their physical and chemical characteristics. These characteristics included organoleptic properties, film thickness, folding endurance, surface pH, loss on drying (LOD), crystallinity, the interaction between active ingredients and excipients, the morphological characteristics of the films, and a wound healing study. Results: All formulations resulted in smooth and transparent films. Favorable outcomes were observed in film thickness and surface pH measurements. Formulations F1-F4 demonstrated exceptional folding endurance (> 200 times). This is also affirmed by a reduction in the -OH peak in the Fourier transform infrared (FT-IR) spectrum. Powder X-ray diffraction (PXRD) analysis showed that F1-F4 had adopted an amorphous structure, while F5 retained crystalline AgNPs. The drying process revealed that F5 exhibited the lowest moisture loss. Scanning electron microscope (SEM) imaging displayed distinct morphologies among the five formulations. F4 and F5 exhibited the highest percentage of wound healing. Conclusion: The formulation of AgNPs synthesized through a green synthesis method, utilizing Plantago major L. leaf extract as a bioreductant, has demonstrated significant improvements in the physical characteristics, particularly in Formulations F1-F4. Notably, F4 exhibited the highest wound healing efficacy. Therefore, the findings of this study suggest that F4 (AgNPs 0.05%) represents the most promising DPF formulation for enhanced wound healing applications.

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促进伤口愈合的纳米银贴片膜的优化:配方和表征研究。
背景:银纳米颗粒(AgNPs)以其强大的抗菌特性而闻名,使其适合伤口愈合应用。目的:本研究的重点是将AgNPs制成皮肤贴片膜(DPFs),利用薄膜的粘附特性有效地递送活性成分。方法:以车前草叶提取物为生物还原剂,采用绿色合成法合成AgNPs。对AgNP浓度为0%(对照)、0.005%、0.01%、0.05%、0.10%的5个不同配方进行优化,分别表示为式1-5 (F1-F5)。采用手工涂膜器,采用溶剂浇铸法制备膜。然后对胶片进行各种评估,包括对其物理和化学特性的评估。这些特性包括感官特性、膜厚度、折叠耐力、表面pH、干燥损失(LOD)、结晶度、活性成分与赋形剂之间的相互作用、膜的形态特征和伤口愈合研究。结果:各配方制备的膜光滑透明。在膜厚度和表面pH值测量中观察到良好的结果。配方F1-F4表现出优异的折叠耐久性(bb0 200次)。傅里叶变换红外(FT-IR)光谱中-OH峰的减小也证实了这一点。粉末x射线衍射(PXRD)分析表明,F1-F4呈无定形结构,而F5则保留晶态AgNPs。干燥过程显示,F5的水分损失最小。扫描电子显微镜(SEM)成像显示出五种配方的不同形态。F4和F5创面愈合率最高。结论:以车前草叶提取物为生物还原剂,采用绿色合成方法合成AgNPs制剂,其物理特性有明显改善,尤其是F1-F4制剂。值得注意的是,F4的创面愈合效果最高。因此,本研究结果表明,F4 (AgNPs 0.05%)代表了最有前途的DPF配方,可用于增强伤口愈合应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
The Scientific World Journal
The Scientific World Journal 综合性期刊-综合性期刊
CiteScore
5.60
自引率
0.00%
发文量
170
审稿时长
3.7 months
期刊介绍: The Scientific World Journal is a peer-reviewed, Open Access journal that publishes original research, reviews, and clinical studies covering a wide range of subjects in science, technology, and medicine. The journal is divided into 81 subject areas.
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