Mitochondrial Localized In Situ Self‐Assembly Reprogramming Tumor Immune and Metabolic Microenvironment for Enhanced Cancer Therapy

Author:

Wang Zhilong1,Wang Qian1,Cao Hongmei1,Wang Zhongyan1,Wang Dianyu1,Liu Jinjian1,Gao Tongxin1,Ren Chunhua1,Liu Jianfeng1ORCID

Affiliation:

1. Key Laboratory of Radiopharmacokinetics for Innovative Drugs Chinese Academy of Medical Sciences Tianjin Key Laboratory of Radiation Medicine and Molecular Nuclear Medicine Institute of Radiation Medicine Chinese Academy of Medical Sciences & Peking Union Medical College Tianjin 300192 P. R. China

Abstract

AbstractThe inherent immune and metabolic tumor microenvironment (TME) of most solid tumors adversely affect the antitumor efficacy of various treatments, which is an urgent issue to be solved in clinical cancer therapy. In this study, a mitochondrial localized in situ self‐assembly system is constructed to remodel the TME by improving immunogenicity and disrupting the metabolic plasticity of cancer cells. The peptide‐based drug delivery system can be pre‐assembled into nanomicelles in vitro and form functional nanofibers on mitochondria through a cascade‐responsive process involving reductive release, targeted enrichment, and in situ self‐assembly. The organelle‐specific in situ self‐assemblyeffectively switches the role of mitophagy from pro‐survival to pro‐death, which finally induces intense endoplasmic reticulum stress and atypical type II immunogenic cell death. Disintegration of the mitochondrial ultrastructure also impedes the metabolic plasticity of tumor cells, which greatly promotes the immunosuppresive TME remodeling into an immunostimulatory TME. Ultimately, the mitochondrial localized in situ self‐assembly system effectively suppresses tumor metastases, and converts cold tumors into hot tumors with enhanced sensitivity to radiotherapy and immune checkpoint blockade therapy. This study offers a universal strategy for spatiotemporally controlling supramolecular self‐assembly on sub‐organelles to determine cancer cell fate and enhance cancer therapy.

Funder

National Natural Science Foundation of China

National Science Fund for Distinguished Young Scholars

Fundamental Research Funds for the Central Universities

Chinese Academy of Medical Sciences

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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