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Updated: Jul 21, 2026

Analysis of Cell Cycle Position in Mammalian Cells
Published on: January 21, 2012
Cellular ras and cyclin D1 are required during different cell cycle periods in cycling NIH 3T3 cells
1Department of Molecular Biology, The Lerner Research Institute, The Cleveland Clinic Foundation, Cleveland, Ohio 44195, USA.
Abstract:
Novel techniques were used to determine when in the cell cycle of proliferating NIH 3T3 cells cellular Ras and cyclin D1 are required. For comparison, in quiescent cells, all four of the inhibitors of cell cycle progression tested (anti-Ras, anti-cyclin D1, serum removal, and cycloheximide) became ineffective at essentially the same point in G1 phase, approximately 4 h prior to the beginning of DNA synthesis. To extend these studies to cycling cells, a time-lapse approach was used to determine the approximate cell cycle position of individual cells in an asynchronous culture at the time of inhibitor treatment and then to determine the effects of the inhibitor upon recipient cells. With this approach, anti-Ras antibody efficiently inhibited entry into S phase only when introduced into cells prior to the preceding mitosis, several hours before the beginning of S phase. Anti-cyclin D1, on the other hand, was an efficient inhibitor when introduced up until just before the initiation of DNA synthesis. Cycloheximide treatment, like anti-cyclin D1 microinjection, was inhibitory throughout G1 phase (which lasts a total of 4 to 5 h in these cells). Finally, serum removal blocked entry into S phase only during the first hour following mitosis. Kinetic analysis and a novel dual-labeling technique were used to confirm the differences in cell cycle requirements for Ras, cyclin D1, and cycloheximide. These studies demonstrate a fundamental difference in mitogenic signal transduction between quiescent and cycling NIH 3T3 cells and reveal a sequence of signaling events required for cell cycle progression in proliferating NIH 3T3 cells.
Insights
Cellular Ras and cyclin D1 are required at different times during the cell cycle in NIH 3T3 cells. These findings reveal distinct signaling events for cell cycle progression in proliferating versus quiescent cells.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Cell cycle progression is regulated by complex signaling pathways.
- Understanding the precise timing of molecular requirements is crucial for cell cycle control.
Purpose of the Study:
- To determine the cell cycle-specific requirements for cellular Ras and cyclin D1 in proliferating NIH 3T3 cells.
- To compare these requirements with those in quiescent cells.
Main Methods:
- Utilized novel techniques including time-lapse microscopy and dual-labeling.
- Administered inhibitors (anti-Ras, anti-cyclin D1, cycloheximide, serum removal) at specific cell cycle points.
- Analyzed effects on entry into S phase and DNA synthesis.
Main Results:
- In quiescent cells, inhibitors were ineffective at the same G1 phase point, ~4h before S phase.
- In cycling cells, anti-Ras was effective only before mitosis; anti-cyclin D1 and cycloheximide were effective throughout G1.
- Serum removal blocked entry into S phase only within the first hour post-mitosis.
Conclusions:
- Demonstrated fundamental differences in mitogenic signal transduction between quiescent and cycling NIH 3T3 cells.
- Revealed a specific sequence of signaling events essential for cell cycle progression in proliferating cells.
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