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Updated: Nov 1, 2025

Author Spotlight: Integrating BRET-Based Assays and Rare Mutation Analysis to Decipher RAF Kinase Regulation in Live Cells
Published on: March 1, 2024
Development of a High-throughput NanoBRET Screening Platform to Identify Modulators of the RAS/RAF Interaction
David E Durrant1, Emily A Smith2,3, Ekaterina I Goncharova2,4
1Laboratory of Cell and Developmental Signaling, NCI, Frederick, Maryland.
Abstract:
Activating mutations in RAS are found in approximately 30% of human cancers, resulting in the delivery of a persistent signal to critical downstream effectors that drive tumorigenesis. RAS-driven malignancies respond poorly to conventional cancer treatments and inhibitors that target RAS directly are limited; therefore, the identification of new strategies and/or drugs to disrupt RAS signaling in tumor cells remains a pressing therapeutic need. Taking advantage of the live-cell bioluminescence resonance energy transfer (BRET) methodology, we describe the development of a NanoBRET screening platform to identify compounds that modulate binding between activated KRAS and the CRAF kinase, an essential effector of RAS that initiates ERK cascade signaling. Using this strategy, libraries containing synthetic compounds, targeted inhibitors, purified natural products, and natural product extracts were evaluated. These efforts resulted in the identification of compounds that inhibit RAS/RAF binding and in turn suppress RAS-driven ERK activation, but also compounds that have the deleterious effect of enhancing the interaction to upregulate pathway signaling. Among the inhibitor hits identified, the majority were compounds derived from natural products, including ones reported to alter KRAS nanoclustering (ophiobolin A), to impact RAF function (HSP90 inhibitors and ROS inducers) as well as some with unknown targets and activities. These findings demonstrate the potential for this screening platform in natural product drug discovery and in the development of new therapeutic agents to target dysregulated RAS signaling in human disease states such as cancer.
Insights
Researchers developed a NanoBRET screening platform to find compounds that disrupt RAS signaling in cancer. This platform identified natural products that inhibit KRAS/RAF binding, offering new therapeutic strategies for RAS-driven cancers.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Activating RAS mutations drive ~30% of human cancers, leading to persistent pro-tumorigenic signaling.
- RAS-driven cancers exhibit poor response to current treatments, and direct RAS inhibitors are limited.
- Targeting RAS signaling pathways remains a critical unmet need in cancer therapy.
Purpose of the Study:
- To develop a NanoBRET screening platform for identifying compounds that modulate the binding between activated KRAS and CRAF kinase.
- To discover novel therapeutic agents targeting RAS-MAPK signaling in cancer.
Main Methods:
- Utilized live-cell NanoBRET to screen compound libraries for modulators of KRAS-CRAF interaction.
- Evaluated synthetic compounds, targeted inhibitors, natural products, and natural product extracts.
- Assessed compound effects on RAS-driven ERK cascade signaling.
Main Results:
- Identified compounds that inhibit KRAS-CRAF binding and suppress RAS-driven ERK activation.
- Discovered compounds that enhance KRAS-CRAF interaction, leading to pathway upregulation.
- A majority of identified inhibitors were natural products, including ophiobolin A and compounds affecting RAF function.
Conclusions:
- The NanoBRET platform is effective for discovering modulators of RAS-RAF interactions.
- Natural products represent a promising source for novel anti-cancer agents targeting RAS signaling.
- This platform facilitates drug discovery for RAS-driven malignancies and other diseases involving dysregulated RAS signaling.

