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.

Analytical Chemistry
|February 29, 2020
PubMed

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.

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