Unit

UNIT 19.30 Bioluminescence Resonance Energy Transfer (BRET)-Based Synthetic Sensor Platform for Drug Discovery

  1. Jongchan Woo,
  2. Jason Hong,
  3. Savithramma P. Dinesh-Kumar

Published Online: 3 APR 2017

DOI: 10.1002/cpps.30

Current Protocols in Protein Science

Current Protocols in Protein Science

How to Cite

Woo, J., Hong, J., & Dinesh-Kumar, S.P. (2017). Bioluminescence resonance energy transfer (BRET)-based synthetic sensor platform for drug discovery. Current Protocols in Protein Science, 88, 19.30.119.30.12. doi: 10.1002/cpps.30

Author Information

  1. Department of Plant Biology and the Genome Center, College of Biological Sciences, University of California, Davis, California

Publication History

  1. Published Online: 3 APR 2017

Abstract

Bioluminescence resonance energy transfer (BRET) is a technique that analyzes protein-protein interactions (PPIs). The unique feature of BRET delineates that the resonance energy is generated by the resonance energy donor, Renilla luciferase by the oxidative decarboxylation of coelenterazine substrate. BRET is superior to FRET where issues such as autofluorescence, photobleaching, and light scattering can occur. Recently, BRET has been applied to design synthetic biosensors for monitoring autophagy in vivo and in vitro. Here, we report the methods for constructing a biosensor of human HsLC3a as a probe for autophagy biogenesis and the optimization of the intramolecular BRET assay that allows for high-throughput screening of chemical modulators of autophagy. User-friendly working interface with the BRET-based synthetic sensor of HsLC3a makes drug discovery easy and amenable for high-throughput. The BRET protocol described here could be easily applicable to generate other biosensors for monitoring PPIs by measurement of intermolecular BRET. © 2017 by John Wiley & Sons, Inc.

Keywords:

  • autophagy;
  • bioluminescence resonance energy transfer (BRET);
  • drug discovery;
  • HsLC3a;
  • HsATG4;
  • and luciferase;
  • protein-protein interactions (PPIs)