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Updated: May 12, 2026

A Multiplexed Luciferase-based Screening Platform for Interrogating Cancer-associated Signal Transduction in Cultured Cells
Published on: July 3, 2013
Novel split-luciferase-based genetically encoded biosensors for noninvasive visualization of Rho GTPases
Weibing Leng1, Xiaohui Pang, Hongwei Xia
1Department of Medical Oncology, West China Hospital, Sichuan University, Chengdu, Sichuan, China.
Abstract:
Rho family GTPases are critical regulators of many important cellular processes and the dysregulation of their activities is implicated in a variety of human diseases including oncogenesis and propagation of malignancy. The traditional methods, such as "pull-down" or two-hybrid procedures, are poorly suited to dynamically evaluate the activity of Rho GTPases, especially in living mammalian cells. To provide a novel alternative approach to analyzing Rho GTPase-associated signaling pathways in vivo, we developed a series of bioluminescent biosensors based on the genetically engineered firefly luciferase. These split-luciferase-based biosensors enable non-invasive visualization and quantification of the activity of Rho GTPases in living subjects. The strategy is to reasonably split the gene of firefly luciferase protein into two inactive fragments and then respectively fuse the two fragments to Rho GTPase and the GTPase-binding domain (GBD) of the specific effector. Upon Rho GTPase interacting with the binding domain in a GTP-dependent manner, these two luciferase fragments are brought into close proximity, leading to luciferase reconstitution and photon production in the presence of the substrate. Using these bimolecular luminescence complementation (BiLC) biosensors, we successfully visualized and quantified the activities of the three best characterized Rho GTPases by measuring the luminescence in living cells. We also experimentally investigated the sensitivity of these Rho GTPase biosensors to upstream regulatory proteins and extracellular ligands without lysing cells and doing labor-intensive works. By virtue of the unique functional characteristics of bioluminescence imaging, the BiLC-based biosensors provide an enormous potential for in vivo imaging of Rho GTPase signaling pathways and high-throughput screening of therapeutic drugs targeted to Rho GTPases and (or) upstream molecules in the near future.
Insights
Researchers developed novel bioluminescent biosensors to dynamically track Rho GTPase activity in living cells. This breakthrough allows for non-invasive visualization and quantification of Rho GTPase signaling, aiding disease research and drug discovery.
Area of Science:
- Molecular Biology
- Cell Signaling
- Biotechnology
Background:
- Rho family GTPases are crucial for cellular functions, and their dysregulation contributes to diseases like cancer.
- Existing methods for assessing Rho GTPase activity are often unsuitable for dynamic, real-time analysis in living cells.
Purpose of the Study:
- To develop a novel, non-invasive method for visualizing and quantifying Rho GTPase activity in vivo.
- To create bioluminescent biosensors for real-time monitoring of Rho GTPase signaling pathways.
Main Methods:
- Engineered firefly luciferase into two inactive fragments, fused to Rho GTPase and its effector's GTPase-binding domain (GBD).
- Utilized bimolecular luminescence complementation (BiLC) where fragment proximity upon GTP-dependent interaction reconstitutes luciferase activity.
- Measured luminescence in living cells to visualize and quantify Rho GTPase activity and its response to regulators.
Main Results:
- Successfully developed and applied BiLC biosensors to visualize and quantify the activity of three key Rho GTPases in living cells.
- Demonstrated the biosensors' sensitivity to upstream regulatory proteins and extracellular ligands without cell lysis.
- Validated the non-invasive and dynamic assessment of Rho GTPase signaling pathways.
Conclusions:
- The developed BiLC-based bioluminescent biosensors offer a powerful tool for in vivo imaging of Rho GTPase signaling.
- These biosensors hold significant potential for high-throughput screening of therapeutic drugs targeting Rho GTPases and related pathways.
