Drug loading comparison of commercial ibuprofen on magnetite nanoparticles surface by UV–Vis spectrophotometry and acid-alkali titration by a factorial design of experiments

Q2 Pharmacology, Toxicology and Pharmaceutics
Felipe Ocampo Osorio , Esteban Noé Villanueva Badillo , Dariana Geraldine Erazo Rondón , Erika Tatiana Muñoz Arango , Abilo Andrés Velásquez Salazar , Alvaro Andrés Velasquez Torres , Oscar Moscoso Londoño , Elisabeth Restrepo Parra , César Leandro Londoño Calderón
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引用次数: 0

Abstract

The drug efficacy for the pathologies treatments depends on several physicochemical properties of the drug. Among these, solubility is one of the most important and is directly related to the bioavailability of the drug. Ibuprofen is a popular drug used for the treatment of different diseases. However, its dissolution rate in aqueous media is limited, which causes undesirable adverse effects on the patient. One of the possibilities to solve this challenge is loading ibuprofen on the surface of the nanoparticles for drug delivery. However, some challenges related to complicated experimental procedures, expensive chemical precursors, the techniques for ibuprofen quantification, and the loading efficiency continue to be a problem. This work reports the synthesis of magnetite nanoparticles and the straightforward loading with commercial ibuprofen in a mixed ethanol/water solution without intermediate surfactants, stabilizers, or linkers. XRD, SEM, FT-IR, Magnetometry, UV–Vis Spectrophotometry, and DLS techniques allowed for determining the samples' structure, morphology, functional groups, magnetism, and agglomerate size. A complete factorial Design of Experiments allowed for comparing the encapsulation efficiency for two exposure and centrifugation times (20 and 40 min) by UV–VIS and Acid-alkali titration. The results suggest that the magnetic separation and centrifugation (< 2000 RPM) were inappropriate for nanoparticle decantation. This produces an underestimation of the ibuprofen adsorbed by the nanoparticles. Under our experimental conditions, 20 min is enough to achieve maximum encapsulation efficiency (14%) without surfactants or binders.

用紫外可见分光光度法和酸碱滴定法比较商品布洛芬在磁铁矿纳米颗粒表面的载药量
病理治疗的药物疗效取决于药物的几个物理化学性质。其中,溶解度是最重要的,直接关系到药物的生物利用度。布洛芬是一种流行的药物,用于治疗不同的疾病。然而,它在水性介质中的溶解速率是有限的,这对患者造成了不希望的不良影响。解决这一挑战的可能性之一是将布洛芬负载在纳米颗粒表面用于药物递送。然而,与复杂的实验程序、昂贵的化学前体、布洛芬定量技术和负载效率有关的一些挑战仍然是一个问题。这项工作报道了磁铁矿纳米颗粒的合成以及在不含中间表面活性剂、稳定剂或连接体的混合乙醇/水溶液中直接负载商业布洛芬。XRD、SEM、FT-IR、磁强计、UV–Vis分光光度法和DLS技术可用于测定样品的结构、形态、官能团、磁性和团聚体尺寸。完全析因实验设计允许通过紫外-可见光谱和酸碱滴定比较两次暴露和离心时间(20和40分钟)的包封效率。结果表明,磁性分离和离心(<;2000RPM)不适于纳米粒子倾析。这就低估了纳米颗粒吸附的布洛芬。在我们的实验条件下,在没有表面活性剂或粘合剂的情况下,20分钟足以实现最大封装效率(14%)。
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
OpenNano
OpenNano Medicine-Pharmacology (medical)
CiteScore
4.10
自引率
0.00%
发文量
63
审稿时长
50 days
期刊介绍: OpenNano is an internationally peer-reviewed and open access journal publishing high-quality review articles and original research papers on the burgeoning area of nanopharmaceutics and nanosized delivery systems for drugs, genes, and imaging agents. The Journal publishes basic, translational and clinical research as well as methodological papers and aims to bring together chemists, biochemists, cell biologists, material scientists, pharmaceutical scientists, pharmacologists, clinicians and all others working in this exciting and challenging area.
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