Mn-based cGAS-STING activation for tumor therapy

被引:0
|
作者
Aiping Huang [1 ]
Wenhu Zhou [1 ,2 ]
机构
[1] Xiangya School of Pharmaceutical Sciences, Central South University
[2] Changsha Medical University,Academician Workstation
基金
中国国家自然科学基金;
关键词
Tumor immunity; metal ions; combinatorial therapy; targeting; nanoparticles;
D O I
暂无
中图分类号
R730.5 [肿瘤治疗学];
学科分类号
摘要
Immunotherapy has efficiently revolutionized the treatment of human neoplastic diseases. However, the overall responsive rate of current immunotherapy is still unsatisfactory, benefiting only a small proportion of patients.Therefore, significant attention has been paid to the modulation of tumor microenvironment(TME) for the enhancement of immunotherapy. Interestingly, recent studies have shown that cyclic GMP-AMP synthasestimulator of interferon gene(cGAS-STING) was initially found as an innate immune sensor to recognize cytoplasmic DNA(such as bacterial, viral, micronuclei, and mitochondrial). It is a promising signaling pathway to activate antitumor immune responses via type I interferon production. Notably, Mn2+was found to be a critical molecule to sensitize the activation of the cGAS-STING pathway for better immunotherapy. This activation led to the development of Mn2+-based strategies for tumor immunotherapy via the activation of the cGAS-STING pathway. In this critical review, we aimed to summarize the recent progress of this field, focusing on the following three aspects. First, we briefly introduced the signaling pathway of cGAS-STING activation, and its regulation effect on the antitumor immunity cycle has been discussed. Along with this, several agonists of the cGAS-STING pathway were introduced with their potential as immunotherapeutic drugs. Then, the basic biological functions of Mn2+have been illustrated, focusing on its critical roles in the cGAS-STING pathway activation. Next, we systematically reviewed the Mn2+-based strategies for tumor immunotherapy, which can be classified by the methods based on Mn2+alone or Mn2+combined with other therapeutic modalities. We finally speculated the future perspectives of the field and provided rational suggestions to develop better Mn2+-based therapeutics.
引用
收藏
页码:19 / 43
页数:25
相关论文
共 50 条
  • [41] cGAS-STING signaling in cardiovascular diseases
    Zhang, Qianxin
    Shen, Lijuan
    Ruan, Hongbiao
    Huang, Zhouqing
    FRONTIERS IN IMMUNOLOGY, 2024, 15
  • [42] cGAS-STING: mechanisms and therapeutic opportunities
    Zhang, Mengyuan
    Wu, Changxin
    Lu, Defen
    Wang, Xing
    Shang, Guijun
    SCIENCE CHINA-LIFE SCIENCES, 2025,
  • [43] Phase separation in cGAS-STING signaling
    Quanjin Li
    Pu Gao
    Frontiers of Medicine, 2023, 17 : 855 - 866
  • [44] cGAS-STING activation contributes to podocyte injury in diabetic kidney disease
    Zang, Nan
    Cui, Chen
    Guo, Xinghong
    Song, Jia
    Hu, Huiqing
    Yang, Mengmeng
    Xu, Mingyue
    Wang, Lingshu
    Hou, Xinguo
    He, Qin
    Sun, Zheng
    Wang, Chuan
    Chen, Li
    ISCIENCE, 2022, 25 (10)
  • [45] Nanomotors activating both cGAS-STING pathway and immune checkpoint blockade for tumor therapy and bioimaging
    Jing, Dan
    Zhang, Ji
    Li, Ziyi
    Yan, Wennan
    Guo, Yingshu
    TALANTA, 2025, 284
  • [46] Molecular mechanisms of mitochondrial DNA release and activation of the cGAS-STING pathway
    Jeonghan Kim
    Ho-Shik Kim
    Jay H. Chung
    Experimental & Molecular Medicine, 2023, 55 : 510 - 519
  • [47] Cellular functions of cGAS-STING signaling
    Chen, Chen
    Xu, Pinglong
    TRENDS IN CELL BIOLOGY, 2023, 33 (08) : 630 - 648
  • [48] The cGAS-STING Pathway for DNA Sensing
    Xiao, T. Sam
    Fitzgerald, Katherine A.
    MOLECULAR CELL, 2013, 51 (02) : 135 - 139
  • [49] cGAS-STING pathway in cancer biotherapy
    Wang, Yang
    Luo, Jingwen
    Alu, Aqu
    Han, Xuejiao
    Wei, Yuquan
    Wei, Xiawei
    MOLECULAR CANCER, 2020, 19 (01)
  • [50] Molecular mechanisms of mitochondrial DNA release and activation of the cGAS-STING pathway
    Kim, Jeonghan
    Kim, Ho-Shik
    Chung, Jay. H. H.
    EXPERIMENTAL AND MOLECULAR MEDICINE, 2023, 55 (03): : 510 - 519