Pyroptosis Provides New Strategies for the Treatment of Cancer

被引:49
作者
Jia, Yuming [1 ]
Wang, Xin [2 ]
Deng, Yanli [3 ]
Li, Shengchao [1 ]
Xu, Xiaowu [4 ,5 ]
Qin, Yi [4 ,5 ]
Peng, Li [1 ]
机构
[1] Hebei Med Univ, Hosp 4, Dept Hepatobiliary Surg, Shijiazhuang, Peoples R China
[2] Hebei Med Univ, Hosp 4, Emergency Dept, Shijiazhuang, Peoples R China
[3] Hebei Med Univ, Hosp 4, Dept Clin Lab, Shijiazhuang, Peoples R China
[4] Fudan Univ, Shanghai Canc Ctr, Dept Pancreat & Hepatobiliary Surg, Shanghai, Peoples R China
[5] Fudan Univ, Pancreat Canc Inst, Shanghai, Peoples R China
来源
JOURNAL OF CANCER | 2023年 / 14卷 / 01期
关键词
Key words; pyroptosis; cancer; tumor immunity; gasdermin; tumor treatment; CELL-DEATH; INFLAMMASOME ACTIVATION; NLRP3; INFLAMMASOME; HEPATOCELLULAR-CARCINOMA; MOLECULAR-MECHANISMS; INDUCE PYROPTOSIS; LUNG-CANCER; GASDERMIN D; INTERLEUKIN-18; CHEMOTHERAPY;
D O I
10.7150/jca.77965
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Cancer is an important cause of death worldwide. The main types of cancer treatment are still surgery, chemotherapy and radiotherapy, and immunotherapy is becoming an important cancer treatment. Pyroptosis is a type of programmed cell death that accompanies an inflammatory response. This paper reviews the recent research progress in pyroptosis in tumors. Pyroptosis has been observed since 1986 and until recently has been recognized as programmed cell death mediated by GSDM family proteins. The molecular pathway of pyroptosis depends on the inflammasome-mediated caspase-1/GSDMD pathway, which is the canonical pathway, and the caspase-4/5/11/GSDMD pathway, which is the noncanonical pathway. Other pathways include caspase3/GSDME. Pyroptosis is a double-edged sword that is closely related to the tumor immune microenvironment. On the one hand, pyroptosis produces a chronic inflammatory environment, promotes the transition of normal cells to tumor cells, helps tumor cells achieve immune escape, and promotes tumor growth and metastasis. On the other hand, some tumor cell treatments can induce pyroptosis, which is a nonapoptotic form of cell death. Additionally, pyroptosis releases inflammatory molecules that promote lymphocyte recruitment and enhance the immune system's ability to kill tumor cells. With the advent of immunotherapy, pyroptosis has been shown to enhance the antitumor efficacy of immune checkpoint inhibitors. Some antineoplastic agents, such as chemotherapeutic agents, can also exert antineoplastic effects through the pyroptosis pathway. Pyroptosis, which is a programmed cell death mode, has been the focus of research in recent years, and the relationship between pyroptosis, tumors and tumor immunity has attracted attention, but there are still some questions to be answered regarding the specific mechanism. Further study of pyroptosis would aid in developing new antitumor therapies and has great clinical prospects.
引用
收藏
页码:140 / 151
页数:12
相关论文
共 113 条
[21]   Interleukin-18: a regulator of cancer and autoimmune diseases [J].
Esmailbeig, Maryam ;
Ghaderi, Abbas .
EUROPEAN CYTOKINE NETWORK, 2017, 28 (04) :127-140
[22]   Epigenetics-Based Tumor Cells Pyroptosis for Enhancing the Immunological Effect of Chemotherapeutic Nanocarriers [J].
Fan, Jin-Xuan ;
Deng, Rong-Hui ;
Wang, He ;
Liu, Xin-Hua ;
Wang, Xia-Nan ;
Qin, Ran ;
Jin, Xin ;
Lei, Tian-Run ;
Zheng, Diwei ;
Zhou, Pang-Hu ;
Sun, Yunxia ;
Zhang, Xian-Zheng .
NANO LETTERS, 2019, 19 (11) :8049-8058
[23]   Pyroptosis: A new frontier in cancer [J].
Fang, Yuan ;
Tian, Shengwang ;
Pan, Yutian ;
Li, Wei ;
Wang, Qiming ;
Tang, Yu ;
Yu, Tao ;
Wu, Xi ;
Shi, Yongkang ;
Ma, Pei ;
Shu, Yongqian .
BIOMEDICINE & PHARMACOTHERAPY, 2020, 121
[24]   Estimating the global cancer incidence and mortality in 2018: GLOBOCAN sources and methods [J].
Ferlay, J. ;
Colombet, M. ;
Soerjomataram, I. ;
Mathers, C. ;
Parkin, D. M. ;
Pineros, M. ;
Znaor, A. ;
Bray, F. .
INTERNATIONAL JOURNAL OF CANCER, 2019, 144 (08) :1941-1953
[25]   Apoptosis, pyroptosis, and necrosis: Mechanistic description of dead and dying eukaryotic cells [J].
Fink, SL ;
Cookson, BT .
INFECTION AND IMMUNITY, 2005, 73 (04) :1907-1916
[26]  
FRIEDLANDER AM, 1986, J BIOL CHEM, V261, P7123
[27]   Molecular mechanisms of cell death: recommendations of the Nomenclature Committee on Cell Death 2018 [J].
Galluzzi, Lorenzo ;
Vitale, Ilio ;
Aaronson, Stuart A. ;
Abrams, John M. ;
Adam, Dieter ;
Agostinis, Patrizia ;
Alnemri, Emad S. ;
Altucci, Lucia ;
Amelio, Ivano ;
Andrews, David W. ;
Annicchiarico-Petruzzelli, Margherita ;
Antonov, Alexey V. ;
Arama, Eli ;
Baehrecke, Eric H. ;
Barlev, Nickolai A. ;
Bazan, Nicolas G. ;
Bernassola, Francesca ;
Bertrand, Mathieu J. M. ;
Bianchi, Katiuscia ;
Blagosklonny, Mikhail V. ;
Blomgren, Klas ;
Borner, Christoph ;
Boya, Patricia ;
Brenner, Catherine ;
Campanella, Michelangelo ;
Candi, Eleonora ;
Carmona-Gutierrez, Didac ;
Cecconi, Francesco ;
Chan, Francis K. -M. ;
Chandel, Navdeep S. ;
Cheng, Emily H. ;
Chipuk, Jerry E. ;
Cidlowski, John A. ;
Ciechanover, Aaron ;
Cohen, Gerald M. ;
Conrad, Marcus ;
Cubillos-Ruiz, Juan R. ;
Czabotar, Peter E. ;
D'Angiolella, Vincenzo ;
Dawson, Ted M. ;
Dawson, Valina L. ;
De laurenzi, Vincenzo ;
De Maria, Ruggero ;
Debatin, Klaus-Michael ;
DeBerardinis, Ralph J. ;
Deshmukh, Mohanish ;
Di Daniele, Nicola ;
Di Virgilio, Francesco ;
Dixit, Vishva M. ;
Dixon, Scott J. .
CELL DEATH AND DIFFERENTIATION, 2018, 25 (03) :486-541
[28]   Cell death and immunity in cancer: From danger signals to mimicry of pathogen defense responses [J].
Garg, Abhishek D. ;
Agostinis, Patrizia .
IMMUNOLOGICAL REVIEWS, 2017, 280 (01) :126-148
[29]   Cancer immunotherapy with immunoadjuvants, nanoparticles, and checkpoint inhibitors: Recent progress and challenges in treatment and tracking response to immunotherapy [J].
Gorbet, Michael-Joseph ;
Ranjan, Ashish .
PHARMACOLOGY & THERAPEUTICS, 2020, 207
[30]   A real-time fluorometric method for the simultaneous detection of cell death type and rate [J].
Grootjans, Sasker ;
Hassannia, Behrouz ;
Delrue, Iris ;
Goossens, Vera ;
Wiernicki, Bartosz ;
Dondelinger, Yves ;
Bertrand, Mathieu J. M. ;
Krysko, Dmitri V. ;
Vuylsteke, Marnik ;
Vandenabeele, Peter ;
Vanden Berghe, Tom .
NATURE PROTOCOLS, 2016, 11 (08) :1444-1454