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用于增强光动力疗法的靶向富氧纳米平台:体外二维细胞和三维球体模型评估

Targeted and Oxygen-Enriched Nanoplatform for Enhanced Photodynamic Therapy: In Vitro 2D Cell and 3D Spheroid Model Evaluation.

作者信息

Chen Chieh-Yu, Chen Ching-Yi

机构信息

Department of Chemical Engineering, National Chung Cheng University, Chia-Yi County, 62102, Taiwan.

出版信息

Macromol Biosci. 2023 Dec;23(12):e2300196. doi: 10.1002/mabi.202300196. Epub 2023 Aug 24.

Abstract

Hypoxic microenvironment and limited penetration of photosensitizers within solid tumors are two crucial factors that restrict photodynamic therapy (PDT) efficacy. Herein, a new fluorinated mixed micelle (M60@PFC-Ce6) is developed as a tumor-penetrating and oxygen-enriching nanoplatform, which consists of chlorin e6 (Ce6) and perfluorocarbons (PFCs) co-loaded into fluorinated micelles to relieve hypoxia conditions as well as folate as targeting ligand that facilitates the selective biodistribution within tumor solids. The incorporation of fluorinated copolymers into mixed micelles exhibits not only a great increase in the oxygen-loading capacity, but also improves the stability of liquid PFCs emulsion within micelles without leakage. M60@PFC-Ce6 shows excellent oxygen delivery capability, good intracellular reactive oxygen species (ROS) generation, and superior phototoxicity in vitro for both 2D monolayer of cells and 3D multicellular spheroid model. These results indicate the enriched oxygen delivery and increased cellular uptake resulting from folate-targeted ability to enhance ROS production and PDT efficacy. The penetration study of M60@PFC-Ce6 into a 3D spheroid confirms that small micellar size and folate-conjugation are beneficial for micelles to penetrate and accumulate within spheroids. Thus, a new nanoplatform with enriched oxygen-carrying amounts, better drug penetration, and stable micellar properties that relieve tumor hypoxia and improve PDT efficacy is provided.

摘要

缺氧微环境和光敏剂在实体瘤内的穿透受限是限制光动力疗法(PDT)疗效的两个关键因素。在此,一种新型氟化混合胶束(M60@PFC-Ce6)被开发为一种肿瘤穿透性和富氧纳米平台,它由负载在氟化胶束中的二氢卟吩e6(Ce6)和全氟碳化物(PFCs)组成,以缓解缺氧状况,以及叶酸作为靶向配体,促进在肿瘤实体中的选择性生物分布。将氟化共聚物掺入混合胶束不仅使载氧能力大幅提高,而且还提高了胶束内液态PFCs乳液的稳定性,防止泄漏。M60@PFC-Ce6在二维单层细胞和三维多细胞球体模型中均表现出优异的氧输送能力、良好的细胞内活性氧(ROS)生成能力和体外卓越的光毒性。这些结果表明,叶酸靶向能力导致的富氧输送和细胞摄取增加,增强了ROS产生和PDT疗效。M60@PFC-Ce6对三维球体的穿透研究证实,小胶束尺寸和叶酸偶联有利于胶束在球体内穿透和积累。因此,提供了一种新的纳米平台,其具有富氧量、更好的药物穿透性以及稳定的胶束性质,可缓解肿瘤缺氧并提高PDT疗效。

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