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负载从辣木种子中提取的异硫氰酸苄酯的纳米结构脂质载体的增强抗真菌功效。 (原英文文本表述稍显混乱,此译文是尽量按照合理逻辑翻译的)

Enhanced and antifungal efficacy against of nanostructured lipid carrier loaded with benzyl isothiocyanate extracted from L. seeds.

作者信息

Zheng Zelin, Li Zijie, Yu Mingqi, Ma Xinyi, Gao Jie, Wang Yan, Wu Jinyan, Yu Xiaodan, Ma Yinzheng, He Xiaowen

机构信息

School of Pharmacy, Hainan Medical University (Hainan Academy of Medical Sciences), Haikou, China.

Research Institute for Science and Technology Development, Hainan Medical University (Hainan Academy of Medical Sciences), Haikou, China.

出版信息

Drug Deliv. 2025 Dec;32(1):2544687. doi: 10.1080/10717544.2025.2544687. Epub 2025 Aug 11.

Abstract

is the most prominent conditional fungal pathogen, which can cause systemic candidiasis when an individual becomes immunocompromised. The widespread and long-term use of azoles like fluconazole (FLC) has led to a significant increase in drug resistance, posing substantial challenges to clinical treatment. In our previous study, benzyl isothiocyanate (BITC) was extracted from L. seed, and it exhibited a notable inhibitory effect against . However, the application of BITC is restricted by its instability, poor water solubility, volatility, and easy degradation. This study aimed to prepare BITC-loaded nanostructured lipid carrier (BITC-NLC) to address these limitations of BITC and enhance antifungal efficacy and against . The results of physicochemical properties showed that BITC-NLC had small particle size, good physical stability, and high encapsulation efficiency. , the antifungal effect of BITC-NLC was better than BITC against both sensitive and resistant and better than FLC against resistant . Moreover, in the experiment using systemic candidiasis mice model induced by resistant , BITC-NLC was more remarkable than BITC and FLC in the increase of the survival rate and the splenic index, the reduction of the fungal burden, and the alleviation of the pathological damage. These findings may be attributed to the enhanced stability and sustained release of BITC. This study highlights the potential of BITC-NLC as a novel and effective formulation for the clinical treatment of drug-resistant infections, thereby expanding the application scope of papaya.

摘要

是最主要的条件致病性真菌病原体,当个体免疫功能低下时可引起系统性念珠菌病。氟康唑(FLC)等唑类药物的广泛长期使用导致耐药性显著增加,给临床治疗带来巨大挑战。在我们之前的研究中,从番木瓜种子中提取了异硫氰酸苄酯(BITC),它对[具体真菌名称未给出]表现出显著的抑制作用。然而,BITC的应用受到其不稳定性、水溶性差、挥发性和易降解性的限制。本研究旨在制备负载BITC的纳米结构脂质载体(BITC-NLC),以解决BITC的这些局限性并增强其对[具体真菌名称未给出]的抗真菌效果。物理化学性质结果表明,BITC-NLC粒径小、物理稳定性好、包封率高。此外,BITC-NLC对敏感和耐药的[具体真菌名称未给出]的抗真菌效果均优于BITC,对耐药的[具体真菌名称未给出]的抗真菌效果优于FLC。而且,在由耐药的[具体真菌名称未给出]诱导的系统性念珠菌病小鼠模型实验中,BITC-NLC在提高存活率和脾脏指数、降低真菌负荷以及减轻病理损伤方面比BITC和FLC更显著。这些发现可能归因于BITC稳定性的增强和持续释放。本研究突出了BITC-NLC作为一种新型有效制剂用于临床治疗耐药[具体真菌名称未给出]感染的潜力,从而扩大了番木瓜的应用范围。

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