用于局部给药的两性霉素 B 纳米海绵的制备与评估

Pasupuleti chandana, Gnana kumar Ragineedi, Palla Sneha, Perumalla Pooja, Neerudu Sai Ram, Sufiyan Ali, Harish Reddy Kumbham
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引用次数: 0

摘要

在这项工作中,利用溶剂蒸发法制造纳米海绵,然后将其与两性霉素 B 结合制成凝胶。纳米海绵配方是利用溶剂蒸发工艺制成的,PVA 作为共聚物,HP-β 环糊精和 HPMC K4M 作为缓速器。傅立叶变换红外光谱(FTIR)用于确定药物与配方成分的相容性。我们观察了纳米海绵的药物夹持效果、产量和表面形状。我们使用扫描电子显微镜研究了纳米海绵的形状和表面形态。扫描电子显微镜显示纳米海绵呈球形且多孔。扫描电子显微镜图像显示,纳米海绵的所有变化都是球形的,但在比例较大时,纳米海绵表面可见药物晶体。聚合物浓度的增加导致药物/聚合物比例的增加(1:1 到 1:3),药物/聚合物比例依次增加。然而,超过一定浓度后,发现随着药物与聚合物比例的增加,粒径也随之减小。所有配方的平均粒径都在 331.5 纳米到 463.9 纳米之间。各种配方的药物含量范围为 82.21% 至 97.78%。优化配方在 9 小时内的药物释放率为 94.92%,而其他配方的夹带效率在 92.75% 到 94.45% 之间。关键字:两性霉素 B、HP β-环糊精、纳米海绵、给药系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
FORMULATION AND EVALUATION OF AMPHOTERICIN B LOADED NANOSPONGES FOR TOPICAL DELIVERY
In this work, solvent evaporation was used to create nanosponges, which were then combined with Amphotericin B to create a gel. The Nanosponges formulations were made utilising the solvent evaporation process with PVA acting as a co-polymer and rate-retarders HP-β Cyclodextrin and HPMC K4M. Fourier Transform Infra-Red (FTIR) spectroscopy was used to determine the drugs compatibility with formulation ingredients. We looked at the drug entrapment effectiveness, production yield, and surface shape of nanosponges. Using scanning electron microscopy, the Nanosponges shape and surface morphology were investigated. Scanning electron microscopy demonstrated that the Nanosponges were spherical and porous. SEM images showed that the Nanosponges were spherical in all of their variations, but at larger ratios, drug crystals were visible on the surface of the nanosponge. An increase in the polymer concentration led to an increase in the drug/polymer ratio (1:1 to 1:3), which is growing in order. However, beyond a certain concentration, it was found that the particle size reduced as the drug-to-polymer ratio developed. All formulations have an average particle size that falls between 331.5 and 463.9 nm. The range of 82.21 to 97.78% was found for the drug content of various formulations. The drug release of the optimised formulation was found to be 94.92 % in 9 hours, while the entrapment efficiency of the other formulations ranged from 92.75 to 94.45%. According to stability experiments, the optimised gel formulation remained stable for a period of 15 days. KEYWORDS - Amphotericin B, HP β-Cyclodextrin, Nanosponges, Drug Delivery System.
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