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Updated: Mar 20, 2026

Monitoring Kinase and Phosphatase Activities Through the Cell Cycle by Ratiometric FRET
Published on: January 27, 2012
Multiplexed Fluorescence Imaging of ERK and Akt Activities and Cell-cycle Progression
Gembu Maryu1, Michiyuki Matsuda, Kazuhiro Aoki
1Laboratory of Bioimaging and Cell Signaling, Graduate School of Biostudies, Kyoto University.
Abstract:
The Ras-ERK pathway controls cell proliferation and differentiation, whereas the PI3K-Akt pathway plays a role in the process of cell-cycle progression and cell survival. Both pathways are activated by many stimuli such as epidermal growth factor (EGF), and coordinately regulate each other through cross-talk. However, it remains unclear how cells accommodate the dynamics and interplay between the Ras-ERK and PI3K-Akt pathways to regulate cell-fate decisions, mainly because of the lack of good tools to visualize ERK and Akt activities simultaneously in live cells. Here, we developed a multiplexed fluorescence system for imaging ERK and Akt signaling and the cell-cycle status at the single cell level. Based on the principle of the kinase translocation reporter (KTR), we created Akt-FoxO3a-KTR, which shuttled between nucleus and cytoplasm in a manner regulated by Akt phosphorylation. To simultaneously measure ERK, Akt and the cell-cycle status, we generated a polycistronic vector expressing ERK-KTR, Akt-FoxO3a-KTR, a cell-cycle reporter and a nuclear reporter, and applied linear unmixing to these four images to remove spectral overlap among fluorescent proteins. The specificity and sensitivity of ERK-KTR and Akt-FoxO3a-KTR were characterized quantitatively. We examined the cellular heterogeneity of relationship between ERK and Akt activities under a basal or EGF-stimulated condition, and found that ERK and Akt were regulated in a highly cooperative and cell-cycle-dependent manner. Our study provides a useful tool for quantifying the dynamics among ERK and Akt activities and the cell cycle in a live cell, and for addressing the mechanisms underlying intrinsic resistance to molecularly targeted drugs.
Insights
We developed a new imaging tool to simultaneously track ERK and Akt pathway activities in live cells. This reveals how these crucial cell signaling pathways cooperate during cell-cycle progression and fate decisions.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- The Ras-ERK and PI3K-Akt pathways are critical for cell proliferation, survival, and cell-cycle progression.
- These pathways are activated by stimuli like EGF and exhibit cross-talk, but their dynamic interplay in cell-fate decisions is poorly understood due to a lack of visualization tools.
Purpose of the Study:
- To develop a novel multiplexed fluorescence system for simultaneous live-cell imaging of ERK and Akt signaling dynamics.
- To investigate the cooperative regulation and cell-cycle dependence of ERK and Akt activities.
- To provide a tool for studying cell-fate decisions and drug resistance mechanisms.
Main Methods:
- Developed kinase translocation reporters (KTRs) for ERK and Akt (Akt-FoxO3a-KTR).
- Created a polycistronic vector for simultaneous expression of ERK-KTR, Akt-FoxO3a-KTR, and cell-cycle/nuclear reporters.
- Utilized linear unmixing to resolve spectral overlap and quantify signaling in live cells.
Main Results:
- Successfully characterized the specificity and sensitivity of the ERK-KTR and Akt-FoxO3a-KTR reporters.
- Demonstrated that ERK and Akt activities are regulated in a highly cooperative and cell-cycle-dependent manner.
- Revealed cellular heterogeneity in the relationship between ERK and Akt activities under basal and EGF-stimulated conditions.
Conclusions:
- The developed multiplexed fluorescence system enables quantitative analysis of ERK and Akt signaling dynamics and cell-cycle status in live cells.
- This tool facilitates the investigation of cell-fate decisions and the mechanisms of intrinsic resistance to targeted therapies.
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