Literature DB >> 34290111

Inflammatory Cell Death, PANoptosis, Mediated by Cytokines in Diverse Cancer Lineages Inhibits Tumor Growth.

R K Subbarao Malireddi1, Rajendra Karki1, Balamurugan Sundaram1, Balabhaskararao Kancharana1, SangJoon Lee1, Parimal Samir1, Thirumala-Devi Kanneganti2.   

Abstract

Resistance to cell death is a hallmark of cancer. Immunotherapy, particularly immune checkpoint blockade therapy, drives immune-mediated cell death and has greatly improved treatment outcomes for some patients with cancer, but it often fails clinically. Its success relies on the cytokines and cytotoxic functions of effector immune cells to bypass the resistance to cell death and eliminate cancer cells. However, the specific cytokines capable of inducing cell death in tumors and the mechanisms that connect cytokines to cell death across cancer cell types remain unknown. In this study, we analyzed expression of several cytokines that are modulated in tumors and found correlations between cytokine expression and mortality. Of several cytokines tested for their ability to kill cancer cells, only TNF-α and IFN-γ together were able to induce cell death in 13 distinct human cancer cell lines derived from colon and lung cancer, melanoma, and leukemia. Further evaluation of the specific programmed cell death pathways activated by TNF-α and IFN-γ in these cancer lines identified PANoptosis, a form of inflammatory cell death that was previously shown to be activated by contemporaneous engagement of components from pyroptosis, apoptosis, and/or necroptosis. Specifically, TNF-α and IFN-γ triggered activation of gasdermin D, gasdermin E, caspase-8, caspase-3, caspase-7, and MLKL. Furthermore, the intratumoral administration of TNF-α and IFN-γ suppressed the growth of transplanted xenograft tumors in an NSG mouse model. Overall, this study shows that PANoptosis, induced by synergism of TNF-α and IFN-γ, is an important mechanism to kill cancer cells and suppress tumor growth that could be therapeutically targeted.
Copyright © 2021 The Authors.

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Year:  2021        PMID: 34290111      PMCID: PMC8522052          DOI: 10.4049/immunohorizons.2100059

Source DB:  PubMed          Journal:  Immunohorizons        ISSN: 2573-7732


  95 in total

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3.  Chemotherapy drugs induce pyroptosis through caspase-3 cleavage of a gasdermin.

Authors:  Yupeng Wang; Wenqing Gao; Xuyan Shi; Jingjin Ding; Wang Liu; Huabin He; Kun Wang; Feng Shao
Journal:  Nature       Date:  2017-05-01       Impact factor: 49.962

4.  Granzyme A from cytotoxic lymphocytes cleaves GSDMB to trigger pyroptosis in target cells.

Authors:  Zhiwei Zhou; Huabin He; Kun Wang; Xuyan Shi; Yupeng Wang; Ya Su; Yao Wang; Da Li; Wang Liu; Yongliang Zhang; Lianjun Shen; Weidong Han; Lin Shen; Jingjin Ding; Feng Shao
Journal:  Science       Date:  2020-04-16       Impact factor: 47.728

5.  Toward a Shared Vision for Cancer Genomic Data.

Authors:  Robert L Grossman; Allison P Heath; Vincent Ferretti; Harold E Varmus; Douglas R Lowy; Warren A Kibbe; Louis M Staudt
Journal:  N Engl J Med       Date:  2016-09-22       Impact factor: 91.245

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Journal:  Clin Cancer Res       Date:  1996-01       Impact factor: 12.531

7.  Demonstration of an interferon gamma-dependent tumor surveillance system in immunocompetent mice.

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Journal:  Proc Natl Acad Sci U S A       Date:  1998-06-23       Impact factor: 11.205

Review 8.  Cytokines in clinical cancer immunotherapy.

Authors:  Pedro Berraondo; Miguel F Sanmamed; María C Ochoa; Iñaki Etxeberria; Maria A Aznar; José Luis Pérez-Gracia; María E Rodríguez-Ruiz; Mariano Ponz-Sarvise; Eduardo Castañón; Ignacio Melero
Journal:  Br J Cancer       Date:  2018-11-09       Impact factor: 7.640

9.  ZBP1 promotes fungi-induced inflammasome activation and pyroptosis, apoptosis, and necroptosis (PANoptosis).

Authors:  Balaji Banoth; Shraddha Tuladhar; Rajendra Karki; Bhesh Raj Sharma; Benoit Briard; Sannula Kesavardhana; Amanda Burton; Thirumala-Devi Kanneganti
Journal:  J Biol Chem       Date:  2020-10-27       Impact factor: 5.157

Review 10.  Consensus guidelines for the definition, detection and interpretation of immunogenic cell death.

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Journal:  J Immunother Cancer       Date:  2020-03       Impact factor: 13.751

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  20 in total

Review 1.  Programming inflammatory cell death for therapy.

Authors:  Shelbi Christgen; Rebecca E Tweedell; Thirumala-Devi Kanneganti
Journal:  Pharmacol Ther       Date:  2021-10-04       Impact factor: 12.310

2.  ADAR1 restricts ZBP1-mediated immune response and PANoptosis to promote tumorigenesis.

Authors:  Rajendra Karki; Balamurugan Sundaram; Bhesh Raj Sharma; SangJoon Lee; R K Subbarao Malireddi; Lam Nhat Nguyen; Shelbi Christgen; Min Zheng; Yaqiu Wang; Parimal Samir; Geoffrey Neale; Peter Vogel; Thirumala-Devi Kanneganti
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3.  Single cell analysis of PANoptosome cell death complexes through an expansion microscopy method.

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Review 4.  Context-dependent functions of pattern recognition receptors in cancer.

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5.  NLRC4 Deficiency Leads to Enhanced Phosphorylation of MLKL and Necroptosis.

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Review 6.  Pyroptosis and pyroptosis-inducing cancer drugs.

Authors:  Fan Yang; Sahana N Bettadapura; Mark S Smeltzer; Hua Zhu; Shanzhi Wang
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Review 7.  PANoptosis: A Unique Innate Immune Inflammatory Cell Death Modality.

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Journal:  J Immunol       Date:  2022-11-01       Impact factor: 5.426

Review 8.  Innate immunity: the first line of defense against SARS-CoV-2.

Authors:  Michael S Diamond; Thirumala-Devi Kanneganti
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Review 9.  PANoptosis: A New Insight Into Oral Infectious Diseases.

Authors:  Weiyi Jiang; Zilong Deng; Xingzhu Dai; Wanghong Zhao
Journal:  Front Immunol       Date:  2021-12-14       Impact factor: 7.561

Review 10.  Coronavirus Infection-Associated Cell Death Signaling and Potential Therapeutic Targets.

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