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Structural Information from Single-molecule FRET Experiments Using the Fast Nano-positioning System
Published on: February 9, 2017
Detection of Ras nanoclustering-dependent homo-FRET using fluorescence anisotropy measurements
Ganesh Babu Manoharan1, Camilo Guzmán2, Arafath Kaja Najumudeen3
1Cancer Cell Biology and Drug Discovery group, Department of Life Sciences and Medicine, University of Luxembourg, Esch-sur-Alzette, Luxembourg.
Abstract:
The small GTPase Ras is frequently mutated in cancer and a driver of tumorigenesis. The recent years have shown great progress in drug-targeting Ras and understanding how it operates on the plasma membrane. We now know that Ras is non-randomly organized into proteo-lipid complexes on the membrane, called nanoclusters. Nanoclusters contain only a few Ras proteins and are necessary for the recruitment of downstream effectors, such as Raf. If tagged with fluorescent proteins, the dense packing of Ras in nanoclusters can be analyzed by Förster/ fluorescence resonance energy transfer (FRET). Loss of FRET can therefore report on decreased nanoclustering and any process upstream of it, such as Ras lipid modifications and correct trafficking. Thus, cellular FRET screens employing Ras-derived fluorescence biosensors are potentially powerful tools to discover chemical or genetic modulators of functional Ras membrane organization. Here we implement fluorescence anisotropy-based homo-FRET measurements of Ras-derived constructs labelled with only one fluorescent protein on a confocal microscope and a fluorescence plate reader. We show that homo-FRET of both H-Ras- and K-Ras-derived constructs can sensitively report on Ras-lipidation and -trafficking inhibitors, as well as on genetic perturbations of proteins regulating membrane anchorage. By exploiting the switch I/II-binding Ras-dimerizing compound BI-2852, this assay is also suitable to report on the engagement of the K-Ras switch II pocket by small molecules such as AMG 510. Given that homo-FRET only requires one fluorescent protein tagged Ras construct, this approach has significant advantages to create Ras-nanoclustering FRET-biosensor reporter cell lines, as compared to the more common hetero-FRET approaches.
Insights
This study introduces a new homo- Förster/ fluorescence resonance energy transfer (FRET) method to analyze Ras protein organization in cancer. This technique effectively monitors Ras nanoclustering, crucial for cancer drug development.
Area of Science:
- Cell biology
- Molecular oncology
- Biophysics
Background:
- Ras GTPases are key drivers of cancer, with mutations promoting uncontrolled cell growth.
- Ras proteins form specific membrane nanoclusters essential for signaling and effector recruitment.
- Understanding Ras organization is critical for developing targeted cancer therapies.
Purpose of the Study:
- To develop and validate a novel homo-FRET assay for measuring Ras nanoclustering.
- To assess the utility of this assay in identifying modulators of Ras membrane organization.
- To compare the advantages of homo-FRET over hetero-FRET for Ras biosensor development.
Main Methods:
- Utilized fluorescence anisotropy-based homo-FRET measurements on a confocal microscope and fluorescence plate reader.
- Employed Ras-derived constructs labeled with a single fluorescent protein.
- Tested the assay's sensitivity to lipidation/trafficking inhibitors and genetic perturbations.
Main Results:
- Demonstrated that homo-FRET sensitively reports on Ras lipidation, trafficking, and membrane anchorage.
- Showcased the assay's ability to detect engagement of the K-Ras switch II pocket by small molecules.
- Validated the effectiveness of the homo-FRET approach for both H-Ras and K-Ras.
Conclusions:
- Homo-FRET is a powerful and advantageous tool for creating Ras-nanoclustering FRET-biosensor reporter cell lines.
- This method offers a simplified approach compared to traditional hetero-FRET techniques.
- The assay facilitates the discovery of chemical and genetic modulators of Ras function in cancer.

