利用聚乙二醇化角鲨烯纳米载体增强氟西多辛的抗念珠菌活性

IF 3.6 4区 医学 Q2 CHEMISTRY, MEDICINAL
ChemMedChem Pub Date : 2024-09-06 DOI:10.1002/cmdc.202400432
Bogdan Florin Craciun, Irina Rosca, Dragos Peptanariu, Mariana Pinteala
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引用次数: 0

摘要

针对念珠菌相关感染改进疗法的必要性日益凸显,这对全球医疗保健产生了重大影响。目前的抗真菌药物数量有限,主要针对特定途径,但耐药性仍然是一个令人担忧的问题。氟胞嘧啶(5FC)具有抗真菌活性,特别是对念珠菌。然而,单一疗法的疗效有限,因此需要联合疗法。在此,我们报告了用于装载 5FC 的 PEG 化角鲨烷基纳米载体,旨在提高其对念珠菌菌株的单药疗效。5FC在胶束中的负载是通过超声辅助溶剂蒸发法实现的。对载入 5FC 的胶束和未载入 5FC 的胶束进行了全面的表征和分析。STEM 和 DLS 分析证实了具有纳米尺寸的核壳形态,同时提高了胶体稳定性。利用紫外可见光技术计算了药物负载效率和药物负载能力。模拟生理条件下的体外药物释放研究表明,药物可在 48 小时内持续释放。此外,利用数学模型计算的释放动力学表明,在模拟生理条件下,药物释放机制为菲氏扩散,扩散速度较慢。对白色念珠菌、光滑念珠菌和副丝状念珠菌进行了体外抗真菌活性测试。结果表明,该纳米疗法的抗真菌活性有所提高,而对正常细胞的体外毒性不变,这表明 5FC 疗法有望取得进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing Flucytosine Anticandidal Activity Using PEGylated Squalene Nanocarrier.

There is an emerging necessity for improved therapies against Candida-related infections, with significant implications for global healthcare. Current antifungal agents, limited in number, target specific pathways, but resistance remains a concern. Flucytosine (5FC) exhibits antifungal activity, particularly against Candida. However, monotherapy efficacy is limited, necessitating combination treatments. Herein, we report PEGylated squalene-based nanocarriers for 5FC loading, aiming to enhance its monotherapy efficacy against Candida strains. The loading of 5FC within micelles was achieved using the ultrasound-assisted solvent evaporation method. The 5FC-loaded micelles, together with non-loaded micelles, were thoroughly characterized and analyzed. STEM and DLS analysis confirmed the core-shell morphology with nanometric dimensions along with improved colloidal stability. The quantification of drug loading efficiency and drug loading capacity was calculated using the UV-Vis technique. The in vitro drug-release studies in simulated physiological conditions showed sustained release within 48 hours. Moreover, the release kinetics calculated using mathematical models showed a Fickian diffusion drug release mechanism in simulated physiological conditions with a slower diffusion rate. The in vitro antifungal activity was tested on Candida albicans, Candida glabrata, and Candida parapsilosis. The results showed improved antifungal activity for the nanotherapeutic and unchanged in vitro toxicity toward normal cells, suggesting promising advancements in 5FC therapy.

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来源期刊
ChemMedChem
ChemMedChem 医学-药学
CiteScore
6.70
自引率
2.90%
发文量
280
审稿时长
1 months
期刊介绍: Quality research. Outstanding publications. With an impact factor of 3.124 (2019), ChemMedChem is a top journal for research at the interface of chemistry, biology and medicine. It is published on behalf of Chemistry Europe, an association of 16 European chemical societies. ChemMedChem publishes primary as well as critical secondary and tertiary information from authors across and for the world. Its mission is to integrate the wide and flourishing field of medicinal and pharmaceutical sciences, ranging from drug design and discovery to drug development and delivery, from molecular modeling to combinatorial chemistry, from target validation to lead generation and ADMET studies. ChemMedChem typically covers topics on small molecules, therapeutic macromolecules, peptides, peptidomimetics, and aptamers, protein-drug conjugates, nucleic acid therapies, and beginning 2017, nanomedicine, particularly 1) targeted nanodelivery, 2) theranostic nanoparticles, and 3) nanodrugs. Contents ChemMedChem publishes an attractive mixture of: Full Papers and Communications Reviews and Minireviews Patent Reviews Highlights and Concepts Book and Multimedia Reviews.
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