Preparation, optimisation, and properties of O-carboxymethyl chitosan-g-cholesterol succinic acid monoester polymer nanomicelles.

Rui Li, Rui Hao, Chu Xu, Jue Chen, Liyan Lu, Yu Wang, Wenhui Ruan
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Abstract

Polymer nanomicelles have the advantages of small particle size, improved drug solubility, retention effect and enhanced permeability, so they can be used in the treatment of tumour diseases. The aim of this study was to prepare and optimise a nanomicelle which can improve the solubility of insoluble drugs. Firstly, the carboxyl group of cholesterol succinic acid monoester was grafted with the side chain amino group of O-carboxymethyl chitosan-g-cholesterol succinic acid monoester (CCMC), and its structure was characterized by fourier transform infrared spectroscopy (FTIR) and proton nuclear magnetic resonance (1H-NMR). Particle size has an important impact on tissue distribution, cell uptake, permeability and inhibition of tumour tissue. In this study, particle size and polydispersity index (PDI) were selected as indexes to optimise the preparation process of CCMC nanomicelles through single factor experiment, Plackett-Burman experiment, the steepest climbing experiment and response surface design experiment. The optimised CCMC nanomicelles showed an average particle size of 173.9 ± 2.3 nm and a PDI of 0.170 ± 0.053. The Cell Counting Kit-8 assay showed no significant effect on cell viability in the range of 0-1000 μg ml-1concentration. Coumarin-6 (C6) was used as a fluorescent probe to investigate the drug-carrying ability of CCMC nanomicelles. C6-CCMC showed 86.35 ± 0.56% encapsulation efficiency with a drug loading of 9.18 ± 0.32%. Both CCMC and C6-CCMC demonstrated excellent stability in different media. Moreover, under the same conditions, the absorption effect of C6 in C6-CCMC nanomicelles was significantly higher than that of free C6 while also exhibiting good sustained-release properties. Therefore, this study demonstrates CCMC nanomicelles as a promising new drug carrier that can significantly improve insoluble drug absorption.

O-羧甲基壳聚糖-胆固醇-琥珀酸单酯聚合物纳米微孔的制备、优化和特性。
聚合物纳米胶束具有粒径小、提高药物溶解度、保留效果和增强渗透性等优点,因此可用于治疗肿瘤疾病。本研究的目的是制备和优化一种能提高难溶性药物溶解度的纳米颗 粒。首先,将胆固醇琥珀酸单酯(CHS)的羧基与 O-羧甲基壳聚糖(OCMC)的侧链氨基接枝,合成了 CCMC,并通过傅立叶变换红外光谱和 1H-NMR 对其结构进行了表征。颗粒大小对组织分布、细胞吸收、渗透性和对肿瘤组织的抑制作用有重要影响。本研究选择粒度和 PDI 作为指标,通过单因素实验、Plackett-Burman 实验、最陡爬坡实验和响应面设计实验对 CCMC 纳米微孔的制备工艺进行优化。优化后的 CCMC 纳米微孔的平均粒径为 173.9±2.3 nm,PDI 为 0.170±0.053。细胞计数试剂盒-8(CCK-8)测定显示,在 0~1000 μg-mL-1 浓度范围内,对细胞活力无明显影响。用香豆素-6(C6)作为荧光探针来研究 CCMC 纳米微囊的载药能力。C6-CCMC 的包封效率为 86.35±0.56%,载药量为 9.18±0.32%。CCMC 和 C6-CCMC 在不同介质中均表现出良好的稳定性。此外,在相同条件下,C6-CCMC 纳米微囊对 C6 的吸收效果明显高于游离 C6,同时还表现出良好的缓释特性。因此,本研究证明了 CCMC 纳米微囊是一种很有前景的新型药物载体,能显著改善不溶性药物的吸收。
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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