DARPins as pan-reactivators of temperature-sensitive p53 cancer mutants

  • Proc Natl Acad Sci U S A. 2026 May 5;123(18):e2531747123. doi: 10.1073/pnas.2531747123.
Philipp Münick  #  1 Dimitrios-Ilias Balourdas  #  2  3 Julianne S Funk  4 Büşra Yüksel  1  5 Danai Mavridi  2  3 Justin Heftel  1  5 Birgit Dreier  6 Jonas V Schaefer  6 Birgit Schäfer  1 Stefan Knapp  2  3 Tümay Telatar  7 Baki Akgül  7 Andreas Plückthun  6 Thorsten Stiewe  4  8  9 Andreas C Joerger  2  3 Volker Dötsch  1
Affiliations
  • 1. Institute of Biophysical Chemistry and Center for Biomolecular Magnetic Resonance, Goethe University, Frankfurt 60438, Germany.
  • 2. Institute of Pharmaceutical Chemistry, Goethe University, Frankfurt 60438, Germany.
  • 3. Structural Genomics Consortium, Buchmann Institute for Molecular Life Sciences, Goethe University, Frankfurt 60438, Germany.
  • 4. Institute of Molecular Oncology, Universities of Giessen and Marburg Lung Center, Member of the German Center for Lung Research, Philipps-University, Marburg 35043, Germany.
  • 5. International Max Planck Research School on Cellular Biophysics, Frankfurt 60438, Germany.
  • 6. Department of Biochemistry, University of Zurich, Zurich 8057, Switzerland.
  • 7. Institute of Virology, Medical Faculty and University Hospital Cologne, University of Cologne, Cologne 50935, Germany.
  • 8. Genomics Core Facility, Philipps-University, Marburg 35043, Germany.
  • 9. Institute for Lung Health, Justus Liebig University, Giessen 35392, Germany.
  • # Contributed equally.
Abstract

The tumor suppressor p53 is the most frequently mutated protein in tumors and a target for drug development. More than 2000 cancer-associated p53 missense mutations have been reported, most of them located in the DNA-binding domain (DBD). Due to the low intrinsic thermostability of the latter, they often lead to unfolding at physiological temperature. Stabilizing the DBD with small molecules has been shown to be effective in reactivating the cavity-creating Cancer mutant Y220C. Unfortunately, the majority of p53 mutants seem to lack druggable binding pockets for small molecules. Here we show that a designed ankyrin repeat protein (DARPin) that binds to the p53 DBD stabilizes temperature-sensitive (TS) p53 Cancer mutants, thereby compensating for mutation-induced loss of stability. We determined high-resolution crystal structures of multiple DARPin-mutant p53 complexes, providing mechanistic insights into this mode of stabilization. Reporter gene assays across a comprehensive panel of cancer-associated mutants revealed reactivation of the majority of TS mutants, whereas DNA-contact mutants and those with local misfolding of the DNA-binding surface remained inactive, as expected. We demonstrate that this reactivation induces the transcription of canonical p53 target genes and elicits antiproliferative effects in Cancer cell lines. A combination of this DARPin with an mRNA/lipid nanoparticle-based transfection approach may have the potential to reactivate most TS p53 mutants and resensitize Cancer cells to chemotherapy.

Keywords
DARPin; cancer; mutation; p53; reactivation.
Products