针对非黑色素瘤皮肤癌的 siRNA/抗癌药物输送系统。第一部分:JAK1siRNA/5-FU 脂质体纳米复合物的开发与基因沉默。

IF 4.4 2区 医学 Q1 PHARMACOLOGY & PHARMACY
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引用次数: 0

摘要

非黑色素瘤皮肤癌(NMSC)是发病率最高的癌症之一,由于治疗方案有限且缺乏有效的治疗方法,导致死亡率居高不下。Janus 激酶(JAK1)是一种非受体酪氨酸激酶家族成员,参与各种细胞过程,包括分化、细胞增殖和存活,在癌症进展中起着至关重要的作用。本研究旨在利用脂质体纳米复合物作为给药载体,在沉默JAK1基因的同时给药5-氟尿嘧啶(5-FU),从而更有效地治疗NMSC。利用RNA干扰(RNAi)技术,用聚乙烯亚胺(PEI)修饰的脂质体纳米复合物与靶向JAK1的siRNA分子共轭,并装载5-FU。所制备的制剂(NL-PEI)在理化性质、形态、包封效率、体外药物释放和稳定性方面均具有特征。在人源非黑色素瘤表皮样癌细胞(A-431)中评估了细胞毒性、细胞摄取和基因敲除效率。高对比度透射电子显微镜(CTEM)图像和动态光散射(DLS)测量结果表明,纳米复合物呈球形,大小均匀,范围在 80-120 nm 之间。阳离子 NL-PEI 纳米复合物成功地在 A-431 细胞质中内化,输送 siRNA 以实现特定序列结合和 JAK1 基因沉默。在药物/脂质比为0.2的情况下,5-FU被包裹在纳米复合物中。经 NL-PEI 处理 24、48 和 72 小时后,细胞存活率超过 80%,浓度高达 8.5 × 101 µg/mL。值得注意的是,在 5-FU 浓度为 5 µM 及以上时,通过纳米脂质体制剂递送 5-FU 会显著降低细胞活力(p
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Therapeutic targeting of siRNA/anti-cancer drug delivery system for non-melanoma skin cancer. Part I: Development and gene silencing of JAK1siRNA/5-FU loaded liposome nanocomplexes

Therapeutic targeting of siRNA/anti-cancer drug delivery system for non-melanoma skin cancer. Part I: Development and gene silencing of JAK1siRNA/5-FU loaded liposome nanocomplexes

Non-melanoma skin cancer (NMSC) is one of the most prevalent cancers, leading to significant mortality rates due to limited treatment options and a lack of effective therapeutics. Janus kinase (JAK1), a non-receptor tyrosine kinase family member, is involved in various cellular processes, including differentiation, cell proliferation and survival, playing a crucial role in cancer progression. This study aims to provide a more effective treatment for NMSC by concurrently silencing the JAK1 gene and administering 5-Fluorouracil (5-FU) using liposome nanocomplexes as delivery vehicles. Utilizing RNA interference (RNAi) technology, liposome nanocomplexes modified with polyethylene imine (PEI) were conjugated with siRNA molecule targeting JAK1 and loaded with 5-FU. The prepared formulations (NL-PEI) were characterized in terms of their physicochemical properties, morphology, encapsulation efficiency, in vitro drug release, and stability. Cell cytotoxicity, cell uptake and knockdown efficiency were evaluated in human-derived non-melanoma epidermoid carcinoma cells (A-431). High contrast transmission electron microscopy (CTEM) images and dynamic light scattering (DLS) measurements revealed that the nanocomplexes formed spherical morphology with uniform sizes ranging from 80-120 nm. The cationic NL-PEI nanocomplexes successfully internalized within the cytoplasm of A-431, delivering siRNA for specific sequence binding and JAK1 gene silencing. The encapsulation of 5-FU in the nanocomplexes was achieved at 0.2 drug/lipid ratio. Post-treatment with NL-PEI for 24, 48 and 72 h showed cell viability above 80 % at concentrations up to 8.5 × 101 µg/mL. Notably, 5-FU delivery via nanoliposome formulations significantly reduced cell viability at 5-FU concentration of 5 µM and above (p < 0.05) after 24 h of incubation. The NL-PEI nanocomplexes effectively silenced the JAK1 gene in vitro, reducing its expression by 50 %. Correspondingly, JAK1 protein level decreased after transfection with JAK1 siRNA-conjugated liposome nanocomplexes, leading to a 37 % reduction in pERK (phosphor extracellular signal-regulated kinase) protein expression. These findings suggest that the combined delivery of JAK1 siRNA and 5-FU via liposomal formulations offers a promising and novel treatment strategy for targeting genes and other identified targets in NMSC therapy.

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来源期刊
CiteScore
8.80
自引率
4.10%
发文量
211
审稿时长
36 days
期刊介绍: The European Journal of Pharmaceutics and Biopharmaceutics provides a medium for the publication of novel, innovative and hypothesis-driven research from the areas of Pharmaceutics and Biopharmaceutics. Topics covered include for example: Design and development of drug delivery systems for pharmaceuticals and biopharmaceuticals (small molecules, proteins, nucleic acids) Aspects of manufacturing process design Biomedical aspects of drug product design Strategies and formulations for controlled drug transport across biological barriers Physicochemical aspects of drug product development Novel excipients for drug product design Drug delivery and controlled release systems for systemic and local applications Nanomaterials for therapeutic and diagnostic purposes Advanced therapy medicinal products Medical devices supporting a distinct pharmacological effect.
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