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Preprint WatchModerateOctober 1st, 2026

The Smac mimetic drug Xevinapant sensitizes triple negative breast cancer to radiotherapy-induced cell death in a TNFα dependent manner

Faye, M. D.; Lafontaine, J.; Wong, P.; Menard, C.

The Smac mimetic xevinapant radiosensitises triple-negative breast cancer cells through a TNF-alpha dependent apoptotic mechanism, with a dose-enhancing factor of 1.57 in the presence of TNF.

Moderate contradiction

1 prior failure

Two documented clinical failures match this mechanism, or a single Phase 3 failure is on record.

This preprint reports that xevinapant radiosensitisation of triple-negative breast cancer cell lines depends on TNF, with a dose-enhancing factor of 1.57 when TNF is present, positioning TNF as a required co-factor rather than a target to be removed. The single TNF programme in the Claidex graph ran in the opposite direction and failed: INB03 was a soluble TNF antagonist stopped for futility in COVID-19 acute respiratory distress (inb03-soluble-tnf-covid19-ards-futility). The two are different diseases and different directions of pharmacology, so this is not a contradiction. It is flagged because it is a reminder that TNF is contextually required for apoptotic efficacy in at least one oncology setting, which argues against combining TNF-directed blockade with therapies whose mechanism depends on the cytokine. The evidence here is in vitro only, with no in vivo or clinical confirmation reported.

Abstract excerpt

Purpose: There is an unmet need in the treatment of triple-negative breast cancer (TNBC), as recurrence rates remain high; thus, novel treatment strategies are warranted to improve outcomes for patients. Smac mimetics (SMs) are small molecules that inhibit the inhibitors of apoptosis. In this study, we investigated the properties of the SM Xevinapant (AT406) as a radiosensitizer in TNBC. Methods: TNBC cell lines were treated with Xevinapant (AT406) in the presence or absence of ionizing RT and cell viability and apoptosis measured in vitro. Clonogenic assays were performed to confirm radiosensitization. We also assessed xevinapant radiosensitization in the presence of the Tumor Necrosis Factor (TNF) cytokine, which has been shown to enhance SM-induced apoptosis. Radiosensitization mechanisms were further validated by western blotting, flow cytometry and cell cycle analysis. Results: We show that Xevinapant increased cell death in a panel of irradiated TNBC cell lines. In clonogenic assays, Xevinapant sensitized MDA-MB-231 cells to RT-induced cell death, and this was significantly enhanced in the presence of TNF, with a dose-enhancing factor (DEF) of 1.57. We also show that Xevinapant radiosensitization is mediated by TNF-dependent apoptosis. Conclusions: Xevinapant is a radiosensitizer that enhances RT-induced cell death in TNBC cells, and TNF is central to this process through activation of apoptosis. These results are promising for combining RT with Xevinapant to improve local control in TNBC.

Matching Claidex post-mortems

1 of 1 indexed

This is an automated contradiction flag, not an editorial judgment on the preprint's quality. Flags identify where the preclinical literature and the clinical failure record diverge.