Related Experiment Video
Updated: Dec 27, 2025

Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
Homogeneous Dual-Parametric-Coupled Assay for Simultaneous Nucleotide Exchange and KRAS/RAF-RBD Interaction
Kari Kopra1, Emmiliisa Vuorinen1, Maria Abreu-Blanco2
1Materials Chemistry and Chemical Analysis, University of Turku, Vatselankatu 2, 20500 Turku, Finland.
Abstract:
We have developed a rapid and sensitive single-well dual-parametric method introduced in linked RAS nucleotide exchange and RAS/RAF-RBD interaction assays. RAS mutations are frequent drivers of multiple different human cancers, but the development of therapeutic strategies has been challenging. Traditionally, efforts to disrupt the RAS function have focused on nucleotide exchange inhibitors, GTP-RAS interaction inhibitors, and activators increasing GTPase activity of mutant RAS proteins. As the amount of biological knowledge grows, targeted biochemical assays enabling high-throughput screening have become increasingly interesting. We have previously introduced a homogeneous quenching resonance energy transfer (QRET) assay for nucleotide binding studies with RAS and heterotrimeric G proteins. Here, we introduce a novel homogeneous signaling technique called QTR-FRET, which combine QRET technology and time-resolved Förster resonance energy transfer (TR-FRET). The dual-parametric QTR-FRET technique enables the linking of guanine nucleotide exchange factor-induced Eu3+-GTP association to RAS, monitored at 615 nm, and subsequent Eu3+-GTP-loaded RAS interaction with RAF-RBD-Alexa680 monitored at 730 nm. Both reactions were monitored in a single-well assay applicable for inhibitor screening and real-time reaction monitoring. This homogeneous assay enables separable detection of both nucleotide exchange and RAS/RAF interaction inhibitors using low nanomolar protein concentrations. To demonstrate a wider applicability as a screening and real-time reaction monitoring method, the QTR-FRET technique was also applied for G(i)α GTP-loading and pertussis toxin-catalyzed ADP-ribosylation of G(i)α, for which we synthesized a novel γ-GTP-Eu3+ molecule. The study indicates that the QTR-FRET detection technique presented here can be readily applied to dual-parametric assays for various targets.
Insights
We developed a novel QTR-FRET assay for dual-parametric screening of RAS-targeted cancer drugs. This rapid, sensitive method monitors nucleotide exchange and protein interactions in a single well, aiding drug discovery.
Area of Science:
- Biochemistry
- Molecular Biology
- Drug Discovery
Background:
- RAS mutations are key drivers in many human cancers, posing therapeutic challenges.
- Targeted biochemical assays are crucial for high-throughput screening of potential cancer drugs.
- Previous methods include homogeneous quenching resonance energy transfer (QRET) for nucleotide binding studies.
Purpose of the Study:
- To introduce a novel dual-parametric homogeneous signaling technique, QTR-FRET, for simultaneous monitoring of RAS nucleotide exchange and RAS/RAF-RBD interaction.
- To enable inhibitor screening and real-time reaction monitoring for RAS-related targets.
- To demonstrate the broad applicability of QTR-FRET for various biochemical assays.
Main Methods:
- Development of a dual-parametric time-resolved Förster resonance energy transfer (TR-FRET) assay, termed QTR-FRET.
- Utilizing Eu3+-GTP and Alexa680-labeled proteins for monitoring guanine nucleotide exchange factor-induced GTP association with RAS and subsequent RAS/RAF-RBD interaction.
- Application of the QTR-FRET technique to G(i)α GTP-loading and ADP-ribosylation assays.
Main Results:
- The QTR-FRET assay enables simultaneous, real-time monitoring of two distinct biochemical reactions in a single well.
- Separable detection of nucleotide exchange and protein-protein interaction inhibitors was achieved using low nanomolar protein concentrations.
- The method demonstrated versatility by successfully assaying G(i)α GTP-loading and ADP-ribosylation.
Conclusions:
- The QTR-FRET technique offers a rapid, sensitive, and versatile platform for dual-parametric biochemical assays.
- This method is highly applicable for inhibitor screening and real-time reaction monitoring in drug discovery, particularly for RAS-related pathways.
- The QTR-FRET assay can be readily adapted for diverse biological targets beyond RAS.
More Related Videos
06:44Author Spotlight: Integrating BRET-Based Assays and Rare Mutation Analysis to Decipher RAF Kinase Regulation in Live Cells
Published on: March 1, 2024
07:08Fully Processed Recombinant KRAS4b: Isolating and Characterizing the Farnesylated and Methylated Protein
Published on: January 16, 2020