Multifunctional nanoparticle potentiates the in situ vaccination effect of radiation therapy and enhances response to immune checkpoint blockade

多功能纳米颗粒可增强放射疗法的原位疫苗接种效果,并增强对免疫检查点阻断的反应。

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作者:Ying Zhang # ,Raghava N Sriramaneni # ,Paul A Clark ,Justin C Jagodinsky ,Mingzhou Ye ,Wonjong Jin ,Yuyuan Wang ,Amber Bates ,Caroline P Kerr ,Trang Le ,Raad Allawi ,Xiuxiu Wang ,Ruosen Xie ,Thomas C Havighurst ,Ishan Chakravarty ,Alexander L Rakhmilevich ,Kathleen A O'Leary ,Linda A Schuler ,Paul M Sondel ,Kyungmann Kim ,Shaoqin Gong ,Zachary S Morris

Abstract

Radiation therapy (RT) activates an in situ vaccine effect when combined with immune checkpoint blockade (ICB), yet this effect may be limited because RT does not fully optimize tumor antigen presentation or fully overcome suppressive mechanisms in the tumor-immune microenvironment. To overcome this, we develop a multifunctional nanoparticle composed of polylysine, iron oxide, and CpG (PIC) to increase tumor antigen presentation, increase the ratio of M1:M2 tumor-associated macrophages, and enhance stimulation of a type I interferon response in conjunction with RT. In syngeneic immunologically "cold" murine tumor models, the combination of RT, PIC, and ICB significantly improves tumor response and overall survival resulting in cure of many mice and consistent activation of tumor-specific immune memory. Combining RT with PIC to elicit a robust in situ vaccine effect presents a simple and readily translatable strategy to potentiate adaptive anti-tumor immunity and augment response to ICB or potentially other immunotherapies.

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