"SMAC"-down for the apoptosis-restoring drug, Xevinapant: What does its story reveal?

Pablo Jimenez-Labaig1, Oriol Mirallas2, Charleen Chan Wah Hak3

  • 1Royal Marsden NHS Foundation Trust London, Greater London United Kingdom.

Insights

Xevinapant, a SMAC-mimetic drug, initially showed promise in sensitizing cancer cells to chemoradiation for head and neck cancer. However, a phase III trial revealed detrimental effects, halting development and highlighting risks of apoptosis-directed therapies.

Area of Science:

  • Oncology
  • Molecular Biology
  • Drug Development

Background:

  • Xevinapant is a SMAC-mimetic drug designed to restore apoptosis in cancer cells by antagonizing inhibitor of apoptosis proteins (IAPs).
  • Preclinical data suggested synergistic potential as a radiosensitizer, particularly in head and neck squamous cell carcinoma (HNSCC).

Purpose of the Study:

  • To review the trajectory of xevinapant, evaluating its promise and risks in cancer therapy.
  • To extract lessons for future oncology drug development concerning apoptosis-directed agents.

Main Methods:

  • Review of preclinical evidence, pharmacodynamic biomarkers, and clinical trial data (Phase II Debio1143-201 and Phase III TrilynX).
  • Examination of trial design, interpretation, and challenges with narrow therapeutic index agents.

Main Results:

  • Phase II trial in HNSCC showed improved locoregional control and survival with xevinapant plus chemoradiation.
  • Phase III TrilynX trial was negative, demonstrating detrimental survival effects and increased toxicity, leading to halted development.
  • High drug exposure was confirmed, but pharmacodynamic data relied on indirect peripheral biomarkers.

Conclusions:

  • Apoptosis-directed therapies, like SMAC mimetics, carry significant risks alongside potential benefits.
  • Future development requires robust pharmacodynamic biomarkers, careful trial design, and consideration of therapeutic index for agents targeting cell death pathways.

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