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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.
Abstract:
The RAS family of GTPases is among the most frequently mutated proteins in human cancer, creating a high clinical demand for therapies that counteract their signaling activity. An important layer of regulation that could be therapeutically exploited is the proteostatic regulation of the main RAS GTPases KRAS, NRAS, and HRAS, as well as the closely related members, MRAS and RIT1, by the leucine zipper-like transcriptional regulator 1 cullin 3 RING E3 ubiquitin ligase complex (CUL3LZTR1). Genetic inactivation of LZTR1, as observed in different cancer entities and Noonan syndrome leads to enhanced RAS GTPase abundance and altered MAPK pathway activation state. Novel therapeutic approaches to interfere with hyperactive RAS signaling, thereby complementing existing treatments, are highly sought after. Motivated by the growing arsenal of molecular glue degraders, we report the identification of novel chemical fragments that enhance the protein-protein interaction (PPI) of the KRAS-LZTR1 complex. We established a split-luciferase-based reporter assay that monitors the RAS GTPase-LZTR1 interaction in a scalable format, capable of capturing chemical, as well as mutational perturbations. Using this screening system, in combination with a small fragment library, we identified two fragments, C53 and Z86, that enhance the interaction of the KRAS-LZTR1 complex in a dose-dependent manner. Further orthogonal validation experiments using proximity biotinylation (BioID), thermal shift assays, and NMR spectroscopy demonstrated fragment-dependent enhanced recruitment of endogenous LZTR1 and physical engagement of KRAS. The two fragments, which potentiate the KRAS-LZTR1 interaction, serve as starting points for fragment-based drug discovery. Additionally, the assay we introduced is amenable to high-throughput screening to further explore the pharmacological modulation of the CUL3LZTR1-RAS GTPase complex.
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.

