Advances in Nanoplatforms for Immunotherapy Applications Targeting the Tumor Microenvironment

被引:1
作者
Zhang, Nannan [1 ]
Zhou, Junyu [1 ]
Li, Shun [1 ]
Cai, Wenjun [1 ]
Ru, Bin [1 ]
Hu, Jiaqi [1 ]
Liu, Wenlong [1 ]
Liu, Xuanxi [1 ]
Tong, Xiangmin [1 ,2 ]
Zheng, Xiaoyan [3 ]
机构
[1] Hangzhou Med Coll, Zhejiang Prov Peoples Hosp, Affiliated Peoples Hosp, Lab Med Ctr,Clin Res Inst, Hangzhou 310014, Zhejiang, Peoples R China
[2] Westlake Univ, Sch Med, Affiliated Hangzhou Peoples Hosp 1, Hangzhou 310006, Zhejiang, Peoples R China
[3] Wenzhou Med Univ, Quzhou Affiliated Hosp, Quzhou Peoples Hosp, Dept Clin Lab, Quzhou 324000, Zhejiang, Peoples R China
关键词
tumor microenvironment; hypoxia; lactate; cancer immunotherapy; nanoplatforms; CANCER-IMMUNOTHERAPY; INORGANIC NANOPARTICLES; OXIDATIVE STRESS; NITRIC-OXIDE; CELLS; ROS; CHEMOTHERAPY; COMBINATION; HYPOXIA; MACROPHAGES;
D O I
10.1021/acs.molpharmaceut.3c00846
中图分类号
R-3 [医学研究方法]; R3 [基础医学];
学科分类号
1001 ;
摘要
Cancer immunotherapy is a treatment method that activates or enhances the autoimmune response of the body to fight tumor growth and metastasis, has fewer toxic side effects and a longer-lasting efficacy than radiotherapy and chemotherapy, and has become an important means for the clinical treatment of cancer. However, clinical results from immunotherapy have shown that most patients lack responsiveness to immunotherapy and cannot benefit from this treatment strategy. The tumor microenvironment (TME) plays a critical role in the response to immunotherapy. The TME typically prevents effective lymphocyte activation, reducing their infiltration, and inhibiting the infiltration of effector T cells. According to the characteristic differences between the TME and normal tissues, various nanoplatforms with TME targeting and regulation properties have been developed for more precise regulation of the TME and have the ability to codeliver a variety of active pharmaceutical ingredients, thereby reducing systemic toxicity and improving the therapeutic effect of antitumor. In addition, the precise structural design of the nanoplatform can integrate specific functional motifs, such as surface-targeted ligands, degradable backbones, and TME stimulus-responsive components, into nanomedicines, thereby reshaping the tumor microenvironment, improving the body's immunosuppressive state, and enhancing the permeability of drugs in tumor tissues, in order to achieve controlled and stimulus-triggered release of load cargo. In this review, the physiological characteristics of the TME and the latest research regarding the application of TME-regulated nanoplatforms in improving antitumor immunotherapy will be described. Furthermore, the existing problems and further applications perspectives of TME-regulated platforms for cancer immunotherapy will also be discussed.
引用
收藏
页码:410 / 426
页数:17
相关论文
共 124 条
  • [1] Human Tumor-Lymphatic Microfluidic Model Reveals Differential Conditioning of Lymphatic Vessels by Breast Cancer Cells
    Ayuso, Jose M.
    Gong, Max M.
    Skala, Melissa C.
    Harari, Paul M.
    Beebe, David J.
    [J]. ADVANCED HEALTHCARE MATERIALS, 2020, 9 (03)
  • [2] Conserved pan-cancer microenvironment subtypes predict response to immunotherapy
    Bagaev, Alexander
    Kotlov, Nikita
    Nomie, Krystle
    Svekolkin, Viktor
    Gafurov, Azamat
    Isaeva, Olga
    Osokin, Nikita
    Kozlov, Ivan
    Frenkel, Felix
    Gancharova, Olga
    Almog, Nava
    Tsiper, Maria
    Ataullakhanov, Ravshan
    Fowler, Nathan
    [J]. CANCER CELL, 2021, 39 (06) : 845 - +
  • [3] Potential applications of nanoparticles for tumor microenvironment remodeling to ameliorate cancer immunotherapy
    Bai, Yuzhuo
    Wang, Yun
    Zhang, Xudong
    Fu, Jianhua
    Xing, Xiuli
    Wang, Chunlan
    Gao, Longlan
    Liu, Yu
    Shi, Li
    [J]. INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2019, 570
  • [4] A Mechanism of Hypoxia-Mediated Escape from Adaptive Immunity in Cancer Cells
    Barsoum, Ivraym B.
    Smallwood, Chelsea A.
    Siemens, D. Robert
    Graham, Charles H.
    [J]. CANCER RESEARCH, 2014, 74 (03) : 665 - 674
  • [5] Lactate/GPR81 signaling and proton motive force in cancer: Role in angiogenesis, immune escape, nutrition, and Warburg phenomenon
    Brown, Timothy P.
    Ganapathy, Vadivel
    [J]. PHARMACOLOGY & THERAPEUTICS, 2020, 206
  • [6] Mitochondrial ROS in myocardial ischemia reperfusion and remodeling
    Bugger, Heiko
    Pfeil, Katharina
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA-MOLECULAR BASIS OF DISEASE, 2020, 1866 (07):
  • [7] Lactate oxidase nanocapsules boost T cell immunity and efficacy of cancer immunotherapy
    Cao, Zheng
    Xu, Duo
    Harding, Jeffrey
    Chen, Wenting
    Liu, Xiangsheng
    Wang, Zi
    Wang, Lan
    Qi, Tong
    Chen, Shilin
    Guo, Xinheng
    Chen, Irvin S. Y.
    Guo, Jimin
    Lu, Yunfeng
    Wen, Jing
    [J]. SCIENCE TRANSLATIONAL MEDICINE, 2023, 15 (717)
  • [8] Targeting macrophages: therapeutic approaches in cancer
    Cassetta, Luca
    Pollard, Jeffrey W.
    [J]. NATURE REVIEWS DRUG DISCOVERY, 2018, 17 (12) : 887 - 904
  • [9] Lactate modulation of immune responses in inflammatory versus tumour microenvironments
    Certo, Michelangelo
    Tsai, Chin-Hsien
    Pucino, Valentina
    Ho, Ping-Chih
    Mauro, Claudio
    [J]. NATURE REVIEWS IMMUNOLOGY, 2021, 21 (03) : 151 - 161
  • [10] Recent Advances in Hyperthermia Therapy-Based Synergistic Immunotherapy
    Chang, Mengyu
    Hou, Zhiyao
    Wang, Man
    Li, Chunxia
    Lin, Jun
    [J]. ADVANCED MATERIALS, 2021, 33 (04)