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用于肿瘤免疫治疗的纳米机械化学协同方法重编程肿瘤相关巨噬细胞

Nano-mechanochemical synergistic approach to reprogram tumor-associated macrophages for tumor immunotherapy.

作者信息

Zhang Xiaoyou, Yang Zichen, Zhi Hui, Chen Shiyu, Yin Weimin, An Lulu, Li Rongjie, Cai Yanni, You Caoyi, Dong Haiqing, Li Yongyong, Li Yan

机构信息

Department of Thoracic-cardiovascular Surgery, Shanghai Tongji Hospital, School of Medicine, Tongji University, Shanghai 200092, China.

Department of Thoracic-cardiovascular Surgery, Shanghai Tongji Hospital, School of Medicine, Tongji University, Shanghai 200092, China.

出版信息

J Control Release. 2025 Sep 10;385:114062. doi: 10.1016/j.jconrel.2025.114062. Epub 2025 Jul 22.

Abstract

Tumor-associated macrophages (TAMs) play a crucial role in tumor progression and therapy resistance. The mechanochemical synergy has emerged as a key mechanism regulating the polarization of TAMs toward the tumor-promoting M2 phenotype. However, whether this synergy can be exploited to reprogram TAMs to a tumor-suppressive M1 phenotype remains an unexplored therapeutic strategy. Here, we report a mechanochemically synergistic nanoplatform, RMSN@EXO, designed to reprogram TAMs efficiently and enhance the anti-tumor immune microenvironment. This nanoplatform is composed of mesoporous silica nanoparticles (MSNs) with tailored elasticity and is loaded with the immunomodulator resiquimod (R848). Both MSNs and R848 were identified through screening based on the M1-specific metabolic marker, lactate. And RMSN is subsequently encapsulated within exosomes derived from M1 macrophage. Surprisingly, this nanoplatform efficiently reprograms TAMs into a pro-inflammatory M1-phenotype more effectively than either R848 or MSNs alone. Benefiting from the superior penetration of mechanically tailored MSNs in the TME and the exosome-mediated tumor targeting, RMSN@EXO exhibits enhanced accumulation in hypoxic regions of solid tumors. In vivo experiments further show that repolarized TAMs in hypoxic areas have a significant inhibitory effect on tumor growth. In conclusion, this study establishes a "nano-mechanochemical synergy" strategy to efficiently reprogram TAMs to enhance robust anti-tumor immunity. It provides a fundamental framework for designing nanomedicines based on mechanical properties to improve cancer immunotherapy.

摘要

肿瘤相关巨噬细胞(TAM)在肿瘤进展和治疗耐药中起关键作用。机械化学协同作用已成为调节TAM向促肿瘤M2表型极化的关键机制。然而,这种协同作用是否可用于将TAM重编程为肿瘤抑制性M1表型仍是一种未被探索的治疗策略。在此,我们报告一种机械化学协同纳米平台RMSN@EXO,其设计用于有效重编程TAM并增强抗肿瘤免疫微环境。该纳米平台由具有定制弹性的介孔二氧化硅纳米颗粒(MSN)组成,并负载免疫调节剂瑞喹莫德(R848)。MSN和R848均基于M1特异性代谢标志物乳酸通过筛选确定。随后,RMSN被封装在源自M1巨噬细胞的外泌体中。令人惊讶的是,该纳米平台比单独的R848或MSN更有效地将TAM有效重编程为促炎性M1表型。受益于机械定制的MSN在肿瘤微环境中的卓越穿透性和外泌体介导的肿瘤靶向性,RMSN@EXO在实体瘤的缺氧区域表现出增强的蓄积。体内实验进一步表明,缺氧区域重极化的TAM对肿瘤生长具有显著抑制作用。总之,本研究建立了一种“纳米机械化学协同”策略,以有效重编程TAM以增强强大的抗肿瘤免疫力。它为基于机械性能设计纳米药物以改善癌症免疫治疗提供了一个基本框架。

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