不同阳离子聚合物胶束对薯蓣皂苷角膜行为及抗白内障作用的影响。

IF 4.9 3区 医学 Q1 PHARMACOLOGY & PHARMACY
Jing Zhang, Min Zha, Anping Wan, Satya Siva Kishan Yalamarty, Nina Filipczak, Xiang Li
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引用次数: 0

摘要

尽管聚合物纳米载体用于眼科药物递送的研究很多,但很少有人深入探讨涂层成分与性能之间的关系。本研究旨在评价三种常用阳离子聚合物-二硬脂酰磷脂酰乙醇胺-聚乙二醇1000-聚(氨基胺)(DSPE-PEG1000-PAMAM)、三甲基壳聚糖(TMC)和(2,3-二聚氧基氧丙基)三甲基氯化铵(DOTAP)对负载diometin (DIO)胶束(分别为D-M-P、D-M-T和D-M-D)的角膜行为和抗白内障疗效的影响。方法采用薄膜分散法制备二氧化氧负载胶束,并通过疏水相互作用和静电吸附与三种聚合物结合。通过TEM成像和粒度分析仪对其结构进行了表征。采用透析法检测其体外释放行为。CCK-8法检测D-M-P、D-M-T和D-M-D在L929细胞上的细胞活力,以香豆素6为荧光指示剂进行细胞摄取。通过体内显像系统观察这三个囊泡的角膜前滞留行为。采用改进的Franz扩散法测定经角膜通透性,并对囊泡的渗透途径进行了研究。建立亚硒酸盐致白内障模型。通过观察晶状体混浊度和抗氧化酶活性来评价三种不同负载二氧化氮胶束的抗白内障作用。使用Draize试验和角膜H&E染色来估计不同制剂中DIO对眼睛的刺激。结果负载DIO胶束的结构表征表明,微泡呈球形,粒径分布均匀,约为28 nm,表面电位相近,约为6.0 mV, DIO包封效率高达95%左右。与DIO混悬液相比,三种配方均表现出显著的缓释效果。它们在L929细胞中没有表现出刺激的迹象,并且显示出IC50值的增加,表明生物相容性得到改善。使用共聚焦激光扫描显微镜评估人晶状体上皮细胞(HLECs)的细胞摄取。C-M-T显示出最高的荧光信号,细胞内化程度是溶液组的3.2倍。与cu -6溶液相比,C-M-T和C-M-P均能使角膜表面的囊泡保留率提高至少47.8%。此外,TMC促进了囊泡的细胞旁转运到角膜最深处,并通过角膜传递DIO,其Papp值分别是D-M-D和D-M-P的3.11倍和1.49倍。在治疗效果方面,D-M-T表现出最显著的晶状体混浊的衰减,同时增强抗氧化酶活性和抑制脂质过氧化。结论不同阳离子聚合物对胶束囊泡的修饰对其眼部给药性能有显著影响。在测试的配方中,D-M-T因其多重优势而脱颖而出,包括经角膜给药增强、对DIO的治疗效果和安全性,使其成为眼科应用中最有希望的候选药物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Influence of Different Cationic Polymer-Based Micelles on the Corneal Behavior and Anti-Cataract Effect of Diosmetin.

Background Despite many studies on polymer-incorporated nanocarriers for ophthalmic drug delivery, few have thoroughly explored the relationship between coating composition and performance. This study aimed to evaluate the effects of three commonly used cationic polymers-distearoyl phosphatidylethanolamine-polyethylene glycol 1000-poly(amidoamine) (DSPE-PEG1000-PAMAM), trimethyl chitosan (TMC), and (2,3-dioleoyloxypropyl) trimethylammonium chloride (DOTAP)-on the corneal behaviors and anti-cataract efficacy of diosmetin (DIO)-loaded micelles (D-M-P, D-M-T, and D-M-D, respectively). Methods The DIO-loaded micelles were prepared using the thin-film dispersion method and incorporated with the three polymers through hydrophobic interactions and electrostatic adsorption. Structural characterization was demonstrated by TEM imaging and particle size analyzer. In vitro release behavior was detected by the dialysis method. Cell viability of D-M-P, D-M-T, and D-M-D on L929 cells was detected by CCK-8 assays, with cellular uptake performed using coumarin 6 as the fluorescence indicator. Precorneal retention behaviors of these three vesicles were observed by In Vivo Imaging System. Transcorneal permeability was determined by modified Franz diffusion method and the permeation routes of the vesicles are investigated. Selenite-induced cataract model was established. The anti-cataract effects of three different DIO-loaded micelles were evaluated by the observation of lens opacity and antioxidant enzyme activities. Eye Irritation of the DIO in different preparations was estimated using the Draize test, along with H&E staining of the corneas. Results Structural characterization of DIO-loaded micelles revealed that the vesicles were spherical, with a uniform size distribution of around 28 nm, a similar surface potential of approximately 6.0 mV, and a high DIO entrapment efficiency of about 95%. Compared to the DIO suspension, all three formulations exhibited a significant sustained-release effect. They showed no signs of irritation and demonstrated increased IC50 values in L929 cells, indicating improved biocompatibility. Cellular uptake in human lens epithelial cells (HLECs) was assessed using confocal laser scanning microscopy. C-M-T displayed the highest fluorescence signals, with a cellular internalization 3.2 times greater than that of the solution group. Both C-M-T and C-M-P enhanced vesicle retention on the corneal surface by at least 47.8% compared to the Cou-6 solution. Furthermore, TMC facilitated the paracellular transport of vesicles into the deepest layers of the cornea and delivered DIO across the cornea, with a Papp value 3.11 times and 1.49 times those of D-M-D and D-M-P, respectively. In terms of therapeutic efficacy, D-M-T demonstrated the most significant attenuation of lens opacity, along with enhanced antioxidant enzyme activities and inhibition of lipid peroxidation. Conclusion The modification of micelle vesicles with different cationic polymers significantly influences their performance in ocular drug delivery. Among the tested formulations, D-M-T stands out due to its multiple advantages, including enhanced transcorneal drug delivery, therapeutic efficacy for DIO, and safety, making it the most promising candidate for ophthalmic applications.

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来源期刊
Pharmaceutics
Pharmaceutics Pharmacology, Toxicology and Pharmaceutics-Pharmaceutical Science
CiteScore
7.90
自引率
11.10%
发文量
2379
审稿时长
16.41 days
期刊介绍: Pharmaceutics (ISSN 1999-4923) is an open access journal which provides an advanced forum for the science and technology of pharmaceutics and biopharmaceutics. It publishes reviews, regular research papers, communications,  and short notes. Covered topics include pharmacokinetics, toxicokinetics, pharmacodynamics, pharmacogenetics and pharmacogenomics, and pharmaceutical formulation. Our aim is to encourage scientists to publish their experimental and theoretical details in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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