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Updated: Aug 14, 2026

Photoactivated Localization Microscopy with Bimolecular Fluorescence Complementation (BiFC-PALM)
Published on: December 22, 2015
Analysis of Ras and Rap activation in living cells using fluorescent Ras binding domains
Trever G Bivona1, Mark R Philips
1Department of Medicine, NYU School of Medicine, 550 First Avenue, New York, NY 10016, USA.
Abstract:
Ras GTPases regulate cellular growth and differentiation and are modulated by myriad stimuli including growth factors, cytokines, antigens, and UV irradiation. Ras GTPases are molecular switches that are active when GTP-bound and inactive when GDP-bound. The ability of these GTPases to signal requires that the GTP-bound form engage downstream effectors, interactions that occur only on the cytosolic surface of cellular membranes. Ras family proteins include H-Ras, N-Ras, K-Ras, and Rap1. Insight into the regulation and signaling properties of these molecules has come largely from in vitro studies relying on cellular extracts prepared following cellular stimulation. Since Ras GTPases are expressed on multiple cellular compartments that include the plasma membrane, vesicles derived from the plasma membrane, and other internal membranes such as the ER and Golgi complex, analysis of how their spatial distribution modulates signaling has remained unknown. We have developed fluorescent, GFP-based probes capable of selectively binding GTP-bound Ras or Rap1 in living cells. We have used these reporters to examine sites of cellular activation of Ras and Rap1 during growth factor stimulation. These studies have revealed new insights into the platforms from which these GTPases signal and have led to the hypothesis that GTPase signaling is modulated in a compartmentalized fashion. Here, we describe the design and implementation of fluorescent probes for Ras and Rap1.
Insights
Researchers developed novel fluorescent probes to visualize Ras and Rap1 GTPases in living cells. This breakthrough allows studying how the spatial distribution of these signaling proteins impacts cellular processes like growth and differentiation.
Area of Science:
- Cellular Biology
- Molecular Signaling
- Biochemistry
Background:
- Ras GTPases act as molecular switches, regulating cell growth and differentiation.
- Their signaling activity depends on GTP binding and localization to cellular membranes.
- Previous studies were limited by in vitro analyses, hindering understanding of spatial signaling dynamics.
Purpose of the Study:
- To develop novel fluorescent probes for visualizing GTP-bound Ras and Rap1 in living cells.
- To investigate the compartmentalized signaling of Ras and Rap1 during cellular activation.
- To explore how spatial distribution influences GTPase signaling pathways.
Main Methods:
- Development of genetically encoded, GFP-based fluorescent probes.
- Selective binding of probes to GTP-bound Ras and Rap1.
- Live-cell imaging to examine Ras and Rap1 activation sites during growth factor stimulation.
Main Results:
- Successful design and implementation of fluorescent reporters for Ras and Rap1.
- Visualization of cellular activation sites for Ras and Rap1 in real-time.
- New insights into the membrane platforms utilized by these GTPases for signaling.
Conclusions:
- GTPase signaling is compartmentalized, with distinct membrane platforms modulating activity.
- Fluorescent probes provide a powerful tool for studying GTPase localization and function in vivo.
- This work advances the understanding of Ras-family GTPase regulation and signaling in cellular contexts.
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