Identification and Characterization of Novel Small-Molecule Enhancers of the CUL3LZTR1 E3 Ligase KRAS Complex

Sophie Piech1, Sven Brüschweiler2, Josepha Westphalen1

  • 1CeMM Research Center for Molecular Medicine of the Austrian Academy of Sciences, 1090 Vienna, Austria.

ACS Chemical Biology
|August 28, 2024
PubMed

Insights

Researchers identified novel chemical fragments that enhance the KRAS-LZTR1 protein-protein interaction, offering new therapeutic strategies for cancers driven by RAS GTPase signaling.

Area of Science:

  • Oncology
  • Molecular Biology
  • Drug Discovery

Background:

  • RAS GTPases are frequently mutated in cancer, driving significant clinical need for targeted therapies.
  • Proteostatic regulation of RAS GTPases by the CUL3LZTR1 complex presents a potential therapeutic target.
  • Cancer and Noonan syndrome linked to LZTR1 inactivation increase RAS GTPase levels and alter MAPK signaling.

Purpose of the Study:

  • To identify novel chemical fragments that modulate the KRAS-LZTR1 protein-protein interaction (PPI).
  • To develop and validate a scalable assay for screening modulators of the RAS GTPase-LZTR1 complex.
  • To establish starting points for fragment-based drug discovery targeting RAS signaling.

Main Methods:

  • Developed a split-luciferase reporter assay to monitor RAS GTPase-LZTR1 interaction.
  • Screened a small fragment library using the reporter assay.
  • Validated hits using proximity biotinylation (BioID), thermal shift assays, and NMR spectroscopy.

Main Results:

  • Identified two fragments, C53 and Z86, that dose-dependently enhance the KRAS-LZTR1 interaction.
  • Confirmed fragment-induced enhanced recruitment of LZTR1 and physical engagement of KRAS.
  • Demonstrated the assay's capability to capture chemical and mutational perturbations.

Conclusions:

  • Novel fragments C53 and Z86 potentiate KRAS-LZTR1 interaction, serving as leads for fragment-based drug discovery.
  • The developed reporter assay is suitable for high-throughput screening of the CUL3LZTR1-RAS GTPase complex.
  • These findings offer new avenues for therapeutic intervention in RAS-driven cancers.