ArticleComputational and structural biotechnology journal2026
p53 Orchestrates the Immunogenic-Tolerogenic Pyroptosis Switch in Non-Small Cell Lung Cancer: A Systems Biology Approach.
Article in Computational and structural biotechnology journal, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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5 authors.
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Abstract
Resistance to immunogenic cell death drives therapy failure in non-small cell lung cancer (NSCLC). While the tumor suppressor p53 can activate both canonical (NLRP3-caspase-1-GSDMD) and secondary (caspase-9/3-GSDME) pyroptosis, 2 lytic programs with divergent immunogenicity, the systems-level logic coordinating these parallel execution pathways remains unknown, limiting therapeutic exploitation. Here, we deploy, to our knowledge, the first dynamic Boolean network model of p53-regulated pyroptosis in NSCLC to resolve this decision layer. The model suggests that the terminal caspase-gasdermin axis may be structured as a bistable immunogenic switch, governed by interlocked feedback loops: a double-negative motif (caspase-9-caspase-3-GSDMD) that enables mutual exclusivity and a reinforcing loop (GSDME-caspase-9-caspase-3) that commits to secondary pyroptosis. Within the model, this topology positions GSDME not as a passive executioner but as a critical fate-determining node; its loss, frequent in NSCLC, does not abort death signaling but is predicted to re-route p53-engaged caspase-3 activity toward apoptosis, providing a potential explanation for how tumors may evade immunogenic lysis while retaining apoptotic competence. Model predictions are validated against NSCLC cell-line phenotypes and patient transcriptomics, revealing coordinated repression of pyroptosis-execution genes and identifying
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