» Articles » PMID: 36209102

The Emerging Role of Pyroptosis in Pediatric Cancers: from Mechanism to Therapy

Overview
Journal J Hematol Oncol
Publisher Biomed Central
Specialties Hematology
Oncology
Date 2022 Oct 8
PMID 36209102
Authors
Affiliations
Soon will be listed here.
Abstract

Pediatric cancers are the driving cause of death for children and adolescents. Due to safety requirements and considerations, treatment strategies and drugs for pediatric cancers have been so far scarcely studied. It is well known that tumor cells tend to progressively evade cell death pathways, which is known as apoptosis resistance, one of the hallmarks of cancer, dominating tumor drug resistance. Recently, treatments targeting nonapoptotic cell death have drawn great attention. Pyroptosis, a newly specialized form of cell death, acts as a critical physiological regulator in inflammatory reaction, cell development, tissue homeostasis and stress response. The action in different forms of pyroptosis is of great significance in the therapy of pediatric cancers. Pyroptosis could be induced and consequently modulate tumorigenesis, progression, and metastasis if treated with local or systemic therapies. However, excessive or uncontrolled cell death might lead to tissue damage, acute inflammation, or even cytokine release syndrome, which facilitates tumor progression or recurrence. Herein, we aimed to describe the molecular mechanisms of pyroptosis, to highlight and discuss the challenges and opportunities for activating pyroptosis pathways through various oncologic therapies in multiple pediatric neoplasms, including osteosarcoma, neuroblastoma, leukemia, lymphoma, and brain tumors.

Citing Articles

Identification and validation of pyroptosis patterns with a novel quantification system for the prediction of prognosis in lung squamous cell carcinoma.

Qin X, Wu J, Qin F, Zheng Y, Chen J, Liu Z Transl Lung Cancer Res. 2025; 13(12):3657-3674.

PMID: 39830751 PMC: 11736615. DOI: 10.21037/tlcr-24-1003.


PGRN protects against serum deprivation-induced cell death by promoting the ROS scavenger system in cervical cancer.

Feng T, Xu X, Wang X, Tang W, Lu Y Cell Death Dis. 2024; 15(12):889.

PMID: 39695087 PMC: 11655951. DOI: 10.1038/s41419-024-07233-0.


Crosstalk of pyroptosis and cytokine in the tumor microenvironment: from mechanisms to clinical implication.

Wang H, Wang T, Yan S, Tang J, Zhang Y, Wang L Mol Cancer. 2024; 23(1):268.

PMID: 39614288 PMC: 11607834. DOI: 10.1186/s12943-024-02183-9.


The Role of Pyroptosis in the Progression and Targeted Therapeutic Approaches for Urological Malignancies.

Cheng W, Chen W, Jia R J Inflamm Res. 2024; 17:9567-9581.

PMID: 39606639 PMC: 11600921. DOI: 10.2147/JIR.S487740.


2,2'- Bipyridine Derivatives Exert Anticancer Effects by Inducing Apoptosis in Hepatocellular Carcinoma (HepG2) Cells.

Priyanka , Mujwar S, Bharti R, Singh T, Khatri N J Hepatocell Carcinoma. 2024; 11:2181-2198.

PMID: 39539640 PMC: 11559256. DOI: 10.2147/JHC.S479463.


References
1.
Yan H, Luo B, Wu X, Guan F, Yu X, Zhao L . Cisplatin Induces Pyroptosis via Activation of MEG3/NLRP3/caspase-1/GSDMD Pathway in Triple-Negative Breast Cancer. Int J Biol Sci. 2021; 17(10):2606-2621. PMC: 8315016. DOI: 10.7150/ijbs.60292. View

2.
Zhang J, Wu H, Yao X, Zhang D, Zhou Y, Fu B . Pyroptotic macrophages stimulate the SARS-CoV-2-associated cytokine storm. Cell Mol Immunol. 2021; 18(5):1305-1307. PMC: 7976727. DOI: 10.1038/s41423-021-00665-0. View

3.
Gonzalez-Herrero I, Rodriguez-Hernandez G, Luengas-Martinez A, Isidro-Hernandez M, Jimenez R, Garcia-Cenador M . The Making of Leukemia. Int J Mol Sci. 2018; 19(5). PMC: 5983781. DOI: 10.3390/ijms19051494. View

4.
David K, Andrabi S, Dawson T, Dawson V . Parthanatos, a messenger of death. Front Biosci (Landmark Ed). 2009; 14(3):1116-28. PMC: 4450718. DOI: 10.2741/3297. View

5.
Wang Y, Peng J, Xie X, Zhang Z, Li M, Yang M . Gasdermin E-mediated programmed cell death: An unpaved path to tumor suppression. J Cancer. 2021; 12(17):5241-5248. PMC: 8317517. DOI: 10.7150/jca.48989. View