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Updated: Aug 5, 2026

Monitoring Kinase and Phosphatase Activities Through the Cell Cycle by Ratiometric FRET
Published on: January 27, 2012
Monitoring Chk1 kinase activity dynamics in live single cell imaging assays
Vivianne Lebrec1, Olivier Gavet2
1Division of Cancer Biology, The Institute of Cancer Research, London, United Kingdom.
Abstract:
The ATR/Chk1 pathway is an important regulator of cell cycle progression, notably upon genotoxic stress where it can detect a large variety of DNA alterations and induce a transient cell cycle arrest that promotes DNA repair. In addition to its role in DNA damage response (DDR), Chk1 is also active during a non-perturbed S phase and contributes to prevent a premature entry into mitosis with an incompletely replicated genome, meaning the ATR/Chk1 pathway is an integral part of the cell cycle machinery that preserves genome integrity during cell growth. We recently developed a FRET-based Chk1 kinase activity reporter to directly monitor and quantify the kinetics of Chk1 activation in live single cell imaging assays with unprecedented sensitivity and time resolution. This tool allowed us to monitor Chk1 activity dynamics over time during a normal S phase and following genotoxic stress, and to elucidate the underlying mechanisms leading to its activation. Here, we review available fluorescent tools to study the interplay of cell cycle progression, DNA damage and DDR in individual live cells, and present the full protocol and image analysis pipeline to monitor Chk1 activity in two imaging assays.
Insights
The ATR/Chk1 pathway regulates cell cycle progression and DNA repair. A new FRET reporter allows precise monitoring of Chk1 kinase activity in live cells during normal growth and DNA damage responses.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- The ATR/Chk1 pathway is crucial for cell cycle control, DNA damage response (DDR), and maintaining genome integrity.
- Chk1 kinase is active during normal S phase and in response to genotoxic stress, preventing premature mitosis with unreplicated DNA.
Approach:
- Developed a Förster Resonance Energy Transfer (FRET)-based reporter for Chk1 kinase activity.
- Utilized live single-cell imaging assays for high-sensitivity, time-resolved monitoring of Chk1 activation kinetics.
- Established a comprehensive image analysis pipeline for quantifying Chk1 activity.
Key Points:
- Directly monitored Chk1 activity dynamics during unperturbed S phase and following genotoxic stress.
- Elucidated the mechanisms underlying Chk1 activation in real-time.
- Demonstrated the utility of FRET reporters for studying cell cycle and DDR interplay.
Conclusions:
- The FRET reporter provides unprecedented sensitivity and temporal resolution for studying Chk1 kinase activity.
- This tool facilitates a deeper understanding of cell cycle regulation and DNA repair mechanisms.
- The presented methodology and analysis pipeline enable robust investigation of Chk1 dynamics in live cells.
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