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bioRxiv · 10.1101/2023.07.28.550878

Tumors cells with mismatch repair deficiency induce hyperactivation of Pyroptosis resistant to cell membrane damage but are more sensitive to Co-treatment of IFN-γ and TNF-α to PANoptosis

Abstract

Hypermutated neoantigens in cancers with DNA mismatch repair deficiency (dMMR) are prerequisite for favorable clinical responses to immune-checkpoint blockade (ICB) therapy. However, TMB is not significantly associated with favorable prognosis from Preclinical and clinical studies. It implys that except for TMB, other mechanisms should be needed to contribute to successful cancer immunotherapy. We found that the hyperactivation of PANoptotic effective molecules in dMMR tumor cells caused cell membrane damage, and induced ESCRT mediated membrane repair, and protectd tumor cells from the damage caused by Triton X100, while DNA mismatch repair proficient (pMMR) tumor cells were sensitive to Triton X100 mediating cell membrane damage due to the lack of ESCRT mediated membrane repair. There were hyperactivation of GSDMD, GSDME and p-MLKL in dMMR tumor cells. Co-treatment of IFN-{gamma} and TNF- induced rapid death of dMMR tumor cells by inducing PANoptosis including pyroptosis, apoptosis not necrosis. pMMR tumor cells had defects in PANoptosis pathway and were resistant to co-treatment of IFN-{gamma} and TNF-. In conclusion, we can activate immune cells to release IFN-{gamma} and TNF- to overcome resistance to ICB treatment.

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BibTeXRIS

Li, H., Ni, H., Li, Y., Zhou, A., Qin, X., Che, L., Mo, H., Qin, C., Li, J.. 2023-07-30. Tumors cells with mismatch repair deficiency induce hyperactivation of Pyroptosis resistant to cell membrane damage but are more sensitive to Co-treatment of IFN-γ and TNF-α to PANoptosis. https://doi.org/10.1101/2023.07.28.550878

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