Engineered anti-cancer nanomedicine for synergistic ferroptosis-immunotherapy

被引:38
作者
Zhang, Xinyu [2 ]
Ge, Haiyan [1 ]
Ma, Yanling [1 ]
Song, Linlin [1 ]
Ma, Yansong [1 ]
Tian, Guanglong [1 ]
Wang, Lei [2 ]
Meng, Qingwei [2 ]
Sun, Xiao [1 ]
机构
[1] Shandong First Med Univ & Shandong Acad Med Sci, Med Sci & Technol Innovat Ctr, Sch Chem & Pharmaceut Engn, Jinan, Peoples R China
[2] Harbin Med Univ, Canc Hosp, Dept Med Oncol, Harbin, Peoples R China
关键词
Engineered nanomaterials; Ferroptosis; Immune response; Synergistic therapy; TUMOR-ASSOCIATED MACROPHAGES; IMMUNOGENIC CELL-DEATH; ZERO-VALENT IRON; CANCER-THERAPY; GOLD NANOCAGES; MNO2; NANOSHEETS; DRUG-DELIVERY; PHOTODYNAMIC THERAPY; ACQUIRED-RESISTANCE; CHECKPOINT BLOCKADE;
D O I
10.1016/j.cej.2022.140688
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Immunotherapy has been widely used in clinical practice, but the therapeutic effects on many cancers are still poor, possibly because some patients are not sensitive to immunotherapy owing to dose-limiting immune re-sponses. Therefore, there is an urgent need for the selective amplification of the immune response during cancer therapy. Ferroptosis is a non-apoptotic programmed cell death process that can eradicate tumors through reactive oxygen accumulation and iron-dependent pathways. It is highly dependent on the tumor microenvi-ronment, which provides a new opportunity for selectively triggering tumor immunity to overcome tumors. In addition, antitumor immune responses can be amplified through multiple mechanisms, thereby increasing the sensitivity of tumor cells to immunotherapy. Therefore, the combination of ferroptosis and immunotherapy in cancer nanomedicine offers the possibility of eradicating tumors in a safe and effective manner. This review summarizes various engineered nanomaterials for synergistic cancer ferroptosis immunotherapy, including metal oxides, metal-organic frameworks, single metal elements, FePt, ferrous hydrates, endogenous iron substances, liposomes, and polymers. With particular emphasis on the mechanism by which these nanomedicines can improve ferroptosis in tumor cells and mediate antitumor immunity by activating the tumor immune microen-vironment relationship, as well as their application prospects and evaluation of challenges in future cancer treatment, we aim to further promote the development of ferroptosis immunotherapy-based nanomedicine from basic scientific research to clinical transformation.
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页数:21
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共 203 条
[121]   The importance of non-histone protein methylation in cancer therapy [J].
Rodriguez-Paredes, Manuel ;
Lyko, Frank .
NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2019, 20 (10) :569-570
[122]   Induction of ferroptotic cell death for overcoming cisplatin resistance of head and neck cancer [J].
Roh, Jong-Lyel ;
Kim, Eun Hye ;
Jang, Hye Jin ;
Park, Jin Young ;
Shin, Daiha .
CANCER LETTERS, 2016, 381 (01) :96-103
[123]   The Unfolded Protein Response in Immunogenic Cell Death and Cancer Immunotherapy [J].
Rufo, Nicole ;
Garg, Abhishek D. ;
Agostinis, Patrizia .
TRENDS IN CANCER, 2017, 3 (09) :643-658
[124]   Chemically Programmed Vaccines: Iron Catalysis in Nanoparticles Enhances Combination Immunotherapy and Immunotherapy-Promoted Tumor Ferroptosis [J].
Ruiz-de-Angulo, Ane ;
Bilbao-Asensio, Marc ;
Cronin, James ;
Evans, Stephen J. ;
Clift, Martin J. D. ;
Llop, Jordi ;
Feiner, Irene V. J. ;
Beadman, Rhiannon ;
Bascaran, Kepa Zamacola ;
Mareque-Rivas, Juan C. .
ISCIENCE, 2020, 23 (09)
[125]   PCBP1 and NCOA4 regulate erythroid iron storage and heme biosynthesis [J].
Ryu, Moon-Suhn ;
Zhang, Deliang ;
Protchenko, Olga ;
Shakoury-Elizeh, Minoo ;
Philpott, Caroline C. .
JOURNAL OF CLINICAL INVESTIGATION, 2017, 127 (05) :1786-1797
[126]   From Design to Clinic: Engineered Nanobiomaterials for Immune Normalization Therapy of Cancer [J].
Saeed, Madiha ;
Chen, Fangming ;
Ye, Jiayi ;
Shi, Yang ;
Lammers, Twan ;
De Geest, Bruno G. ;
Xu, Zhi Ping ;
Yu, Haijun .
ADVANCED MATERIALS, 2021, 33 (30)
[127]   PEGylated FePt-Fe3O4 composite nanoassemblies (CNAs): in vitro hyperthermia, drug delivery and generation of reactive oxygen species (ROS) [J].
Sahu, Niroj Kumar ;
Gupta, Jagriti ;
Bahadur, Dhirendra .
DALTON TRANSACTIONS, 2015, 44 (19) :9103-9113
[128]   Highly efficient conversion of superoxide to oxygen using hydrophilic carbon clusters [J].
Samuel, Errol L. G. ;
Marcano, Daniela C. ;
Berka, Vladimir ;
Bitner, Brittany R. ;
Wu, Gang ;
Potter, Austin ;
Fabian, Roderic H. ;
Pautler, Robia G. ;
Kent, Thomas A. ;
Tsai, Ah-Lim ;
Tour, James M. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2015, 112 (08) :2343-2348
[129]   A Paradigm Shift in Cancer Immunotherapy: From Enhancement to Normalization [J].
Sanmamed, Miguel F. ;
Chen, Lieping .
CELL, 2018, 175 (02) :313-326
[130]   Ferroptosis-driven nanotherapeutics for cancer treatment [J].
Shan, Xinzhu ;
Li, Shumeng ;
Sun, Bingjun ;
Chen, Qin ;
Sun, Jin ;
He, Zhonggui ;
Luo, Cong .
JOURNAL OF CONTROLLED RELEASE, 2020, 319 :322-332