Controlled delivery of nikkomycin by PEG coated PLGA nanoparticles inhibits chitin synthase to prevent growth of Aspergillus flavus and Aspergillus fumigatus.

IF 1.8 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Kamal Mayattu, Vandana Ghormade
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引用次数: 0

Abstract

Aspergillosis is one of the most common fungal infections that can threaten individuals with immune compromised condition. Due to the increasing resistance of pathogens to the existing antifungal drugs, it is difficult to tackle such disease conditions. Whereas, nikkomycin is an emerging safe and effective antifungal drug which causes fungal cell wall disruption by inhibiting chitin synthase. Hence, the study aims at the development of nikkomycin loaded PEG coated PLGA nanoparticles for its increased antifungal efficiency and inhibiting Aspergillus infections. The P-PLGA-Nik NPs were synthesized by w/o/w double emulsification method which resulted in a particle size of 208.3 ± 15 nm with a drug loading of 52.97 %. The NPs showed first order diffusion-controlled drug release which was sustained for 24 h. These nanoparticle's antifungal efficacy was tested using the CLSI - M61 guidelines and the MIC50 defined against Aspergillus flavus and Aspergillus fumigatus was found to be >32 μg/ml which was similar to the nikkomycin MIC. The hyphal tip bursting showed the fungal cell wall disruption. The non-cytotoxic and non-haemolytic nature highlights the drug safety profile.

聚乙二醇(PEG)包覆的聚乳酸(PLGA)纳米颗粒可控地输送尼可霉素,抑制几丁质合成酶,防止黄曲霉和烟曲霉生长。
曲霉菌病是最常见的真菌感染之一,可威胁免疫力低下的人。由于病原体对现有抗真菌药物的抗药性越来越强,因此很难解决这类疾病。而尼可霉素是一种新兴的安全有效的抗真菌药物,它通过抑制几丁质合成酶来破坏真菌细胞壁。因此,本研究旨在开发负载尼可霉素的 PEG 涂层 PLGA 纳米粒子,以提高其抗真菌效率,抑制曲霉菌感染。该研究采用 w/o/w 双乳化法合成了 P-PLGA-Nik NPs,粒径为 208.3 ± 15 nm,载药量为 52.97 %。这种纳米粒子呈现出一阶扩散控制的药物释放特性,并可持续释放 24 小时。根据 CLSI - M61 指南对这些纳米粒子的抗真菌功效进行了测试,发现其对黄曲霉和烟曲霉的 MIC50 值大于 32 μg/ml,与尼克霉素的 MIC 值相似。菌尖破裂表明真菌细胞壁被破坏。无细胞毒性和无溶血性的特性突出了该药物的安全性。
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
CiteScore
4.10
自引率
5.00%
发文量
55
期刊介绍: A Journal of Biosciences: Zeitschrift für Naturforschung C (ZNC) is an international scientific journal and a community resource for the emerging field of natural and natural-like products. The journal publishes original research on the isolation (including structure elucidation), bio-chemical synthesis and bioactivities of natural products, their biochemistry, pharmacology, biotechnology, and their biological activity and innovative developed computational methods for predicting the structure and/or function of natural products. A Journal of Biosciences: Zeitschrift für Naturforschung C (ZNC) welcomes research papers in fields on the chemistry-biology boundary which address scientific ideas and approaches to generate and understand natural compounds on a molecular level and/or use them to stimulate and manipulate biological processes.
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