Immunogenic Radiation Therapy for Enhanced Antitumor Immunity via a Core-Shell Nanosensitizer-Mediated Immunosuppressive Tumor Microenvironment Modulation

被引:11
|
作者
Huang, Naihan [1 ]
Tang, Xiao-Yan [2 ]
Meng, Wei [1 ]
Lai, Ye-Hua [1 ]
Zhou, Xuan [1 ]
Yu, Xue-Zhao [1 ]
Zhang, Wen-Hua [3 ]
Chen, Jin-Xiang [1 ]
机构
[1] Southern Med Univ, Guangdong Prov Key Lab New Drug Screening, NMPA Key Lab Res & Evaluat Drug Metab, Sch Pharmaceut Sci,Guangzhou Key Lab Drug Res Emer, Guangzhou 510515, Peoples R China
[2] Changshu Inst Technol, Sch Chem & Mat Engn, Jiangsu Key Lab Adv Funct Mat, Changshu 215500, Peoples R China
[3] Soochow Univ, Coll Chem Chem Engn & Mat Sci, Suzhou 215123, Peoples R China
关键词
immunosuppressive TMEmodulation; antitumor immunity; core-shellnanosensitizer; radiation therapy; immunogenic celldeath; BREAST-CANCER; HYPOXIA; RESISTANCE;
D O I
10.1021/acsnano.3c04189
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Due to the immunosuppressive tumor microenvironment (TME) and weak radiation absorption, the immune response triggered by radiation therapy (RT) is limited. Herein, a core-shell nanosensitizer UiO@MnS (denoted as UM) was genuinely constructed for the amplification of RT efficacy and induction of immunogenicity via integrating MnS-reprogrammed TME with Hf-based UiO-sensitized RT. The acid-sensitive MnS would produce H2S under acidic TME to improve oxygenation through inhibition mitochondrial respiration and reducing metabolic oxygen consumption, leading to decreased HIF-1 alpha expression and enhanced radiosensitization. In addition, the generated H2S inhibited the catalase activity to increase the H2O2 level, which subsequently enhanced the Mn2+-mediated Fenton-like reaction, resulting in G2/M cell cycle arrest to improve the cellular sensitivity for radiation. This impressive tumor oxygenation, cell cycle arrest, and radiosensitization procedure boosted RT efficacy and resulted in strong antitumor immunogenicity. Taken together, combining the immunosuppressive TME modulation with a sensitizing radiation strategy shows great promise for magnifying immunogenic RT outputs.
引用
收藏
页码:19853 / 19864
页数:12
相关论文
共 47 条
  • [31] Modulation of tumor immune microenvironment by TAS-115, a multi-receptor tyrosine kinase inhibitor, promotes antitumor immunity and contributes anti-PD-1 antibody therapy
    Toshihiro Shibutani
    Risa Goto
    Isao Miyazaki
    Akihiro Hashimoto
    Takamasa Suzuki
    Keiji Ishida
    Tomonori Haruma
    Toshihiro Osada
    Takafumi Harada
    Hidenori Fujita
    Shuichi Ohkubo
    Scientific Reports, 13
  • [32] Oxygen Production of Modified Core-Shell CuO@ZrO2 Nanocomposites by Microwave Radiation to Alleviate Cancer Hypoxia for Enhanced Chemo-Microwave Thermal Therapy
    Chen, Zengzhen
    Niu, Meng
    Chen, Gen
    Wu, Qiong
    Tan, Longfei
    Fu, Changhui
    Ren, Xiangling
    Zhong, Hongshan
    Xu, Ke
    Meng, Xianwei
    ACS NANO, 2018, 12 (12) : 12721 - 12732
  • [33] Enhanced highly toxic reactive oxygen species levels from iron oxide core-shell mesoporous silica nanocarrier-mediated Fenton reactions for cancer therapy
    Sun, Kai
    Gao, Zhiguo
    Zhang, Yu
    Wu, Hongshuai
    You, Chaoqun
    Wang, Senlin
    An, Peijing
    Sun, Chen
    Sun, Baiwang
    JOURNAL OF MATERIALS CHEMISTRY B, 2018, 6 (37) : 5876 - 5887
  • [34] Preclinical Assessment of Enhanced Chemodynamic Therapy by an FeMnO x -Based Nanocarrier: Tumor-Microenvironment-Mediated Fenton Reaction and ROS-Induced Chemotherapeutic for Boosted Antitumor Activity
    Dirersa, Worku Batu
    Kan, Tzu-Chun
    Getachew, Girum
    Wibrianto, Aswandi
    Ochirbat, Sonjid
    Rasal, Akash
    Chang, Jungshan
    Chang, Jia-Yaw
    ACS APPLIED MATERIALS & INTERFACES, 2023, 15 (48) : 55258 - 55275
  • [35] Facile synthesis of Pd@Pt core-shell nanocubes with low Pt content via direct seed-mediated growth and their enhanced activity for formic acid oxidation
    Xiao, Xiangyun
    Jeong, Hwakyeung
    Song, Joseph
    Ahn, Jae-Pyung
    Kim, Jongwon
    Yu, Taekyung
    CHEMICAL COMMUNICATIONS, 2019, 55 (79) : 11952 - 11955
  • [36] Stereotactic Radiation Therapy Augments Antigen-Specific PD-1-Mediated Antitumor Immune Responses via Cross-Presentation of Tumor Antigen
    Sharabi, Andrew B.
    Nirschl, Christopher J.
    Kochel, Christina M.
    Nirschl, Thomas R.
    Francica, Brian J.
    Velarde, Esteban
    Deweese, Theodore L.
    Drake, Charles G.
    CANCER IMMUNOLOGY RESEARCH, 2015, 3 (04) : 345 - U130
  • [37] Author Correction: Modulation of tumor immune microenvironment by TAS-115, a multi-receptor tyrosine kinase inhibitor, promotes antitumor immunity and contributes anti-PD-1 antibody therapy
    Toshihiro Shibutani
    Risa Goto
    Isao Miyazaki
    Akihiro Hashimoto
    Takamasa Suzuki
    Keiji Ishida
    Tomonori Haruma
    Toshihiro Osada
    Takafumi Harada
    Hidenori Fujita
    Shuichi Ohkubo
    Scientific Reports, 14
  • [38] Combination therapy with anti-programmed cell death 1 antibody plus angiokinase inhibitor exerts synergistic antitumor effect against malignant mesothelioma via tumor microenvironment modulation
    Tada, Akio
    Minami, Toshiyuki
    Kitai, Hidemi
    Higashiguchi, Yoko
    Tokuda, Mayuko
    Higashiyama, Tomoki
    Negi, Yoshiki
    Horio, Daisuke
    Nakajima, Yasuhiro
    Otsuki, Taiichiro
    Mikami, Koji
    Takahashi, Ryo
    Nakamura, Akifumi
    Kitajima, Kazuhiro
    Ohmuraya, Masaki
    Kuribayashi, Kozo
    Kijima, Takashi
    LUNG CANCER, 2023, 180
  • [39] Fibronectin-Coated Metal-Phenolic Networks for Cooperative Tumor Chemo-/Chemodynamic/Immune Therapy via Enhanced Ferroptosis-Mediated Immunogenic Cell Death
    Xu, Yao
    Guo, Yunqi
    Zhang, Changchang
    Zhan, Mengsi
    Jia, Liang
    Song, Shaoli
    Jiang, Chunjuan
    Shen, Mingwu
    Shi, Xiangyang
    ACS NANO, 2022, 16 (01) : 984 - 996
  • [40] DNAzyme-adsorbed polydopamine@MnO2 core-shell nanocomposites for enhanced photothermal therapy via the self-activated suppression of heat shock protein 70
    Xi, Yang
    Xie, Xin
    Peng, Ying
    Liu, Peng
    Ding, Jinsong
    Zhou, Wenhu
    NANOSCALE, 2021, 13 (09) : 5125 - 5135