Focused Acoustic Vortex-Activated Dual-Stimuli Nanoplatform Synergizes with Checkpoint Blockade to Enhance Macrophage Phagocytosis and Antitumor Immunity

吞噬作用 巨噬细胞 CD47型 癌症研究 细胞生物学 免疫系统 免疫疗法 免疫检查点 化学 生物 免疫学 生物化学 体外
作者
Yan Li,Wanlin Jia,Mingting Zhu,Xinru Hu,Zhen Ya,Yichen Liu,Yujin Zong,Shifang Guo,Mingxi Wan
出处
期刊:ACS Nano [American Chemical Society]
卷期号:19 (30): 27957-27976
标识
DOI:10.1021/acsnano.5c10591
摘要

Macrophage activation in tumor immunotherapy is hindered by the "do not eat me" evasion mechanism, mediated by the CD47-SIRPα axis. Current therapeutic strategies that solely block antiphagocytic signals show limited efficacy in solid tumors, indicating the urgent need to simultaneously enhance "eat me" signals. To this end, we developed a focused acoustic vortex (FAV)-triggered dual-stimuli-responsive nanoplatform to enhance macrophage phagocytosis. This nanoplatform consists of a liposome coloaded with Cas9/sgRNA complexes and the sonosensitizer chlorin e6 (Ce6), enabling a FAV-triggered activation cascade. Upon FAV exposure, this system facilitates (1) enhanced cellular uptake by increasing membrane permeability through cavitation; (2) activation of Ce6 to generate reactive oxygen species, inducing calreticulin exposure to enhance "eat-me" signals; and (3) disruption of endosomes/lysosomes to release the Cas9/sgRNA complexes for CD47-specific knockout. This strategy enhanced macrophage phagocytosis of tumor cells, promoted M2-to-M1 macrophage polarization, and activated T-cell-mediated immune responses, resulting in significant antitumor efficacy in the 4T1-tumor-bearing mouse model. Programmed death-ligand 1 (PD-L1) checkpoint blockade following nanoplatform activation amplified systemic immune responses, resulting in 90% inhibition of primary and 80% inhibition of distant 4T1 tumors, and long-term immune memory. This study presents a strategy for precision immunotherapy through spatiotemporally controlled modulation of phagocytic signaling pathways.
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