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Updated: Jul 20, 2025

Tuning Degradation to Achieve Specific and Efficient Protein Depletion
Published on: July 20, 2019
A novel auxin-inducible degron system for rapid, cell cycle-specific targeted proteolysis
Marina Capece1,2, Anna Tessari1,2, Joseph Mills1,2
1Department of Cancer Biology and Genetics, College of Medicine, The Ohio State University, 43210, Columbus, OH, USA.
Abstract:
The discrimination of protein biological functions in different phases of the cell cycle is limited by the lack of experimental approaches that do not require pre-treatment with compounds affecting the cell cycle progression. Therefore, potential cycle-specific biological functions of a protein of interest could be biased by the effects of cell treatments. The OsTIR1/auxin-inducible degron (AID) system allows "on demand" selective and reversible protein degradation upon exposure to the phytohormone auxin. In the current format, this technology does not allow to study the effect of acute protein depletion selectively in one phase of the cell cycle, as auxin similarly affects all the treated cells irrespectively of their proliferation status. Therefore, the AID system requires coupling with cell synchronization techniques, which can alter the basal biological status of the studied cell population, as with previously available approaches. Here, we introduce a new AID system to Regulate OsTIR1 Levels based on the Cell Cycle Status (ROLECCS system), which induces proteolysis of both exogenously transfected and endogenous gene-edited targets in specific phases of the cell cycle. We validated the ROLECCS technology by down regulating the protein levels of TP53, one of the most studied tumor suppressor genes, with a widely known role in cell cycle progression. By using our novel tool, we observed that TP53 degradation is associated with increased number of micronuclei, and this phenotype is specifically achieved when TP53 is lost in S/G2/M phases of the cell cycle, but not in G1. Therefore, we propose the use of the ROLECCS system as a new improved way of studying the differential roles that target proteins may have in specific phases of the cell cycle.
Insights
A new system, ROLECCS, enables targeted protein degradation in specific cell cycle phases. This method overcomes limitations of existing technologies, allowing precise study of protein functions during cell division without altering cell cycle progression.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Studying cell cycle-specific protein functions is challenging due to experimental limitations.
- Existing methods like the OsTIR1/auxin-inducible degron (AID) system require cell synchronization, potentially biasing results.
- Acute protein depletion in specific cell cycle phases is crucial for understanding protein roles.
Purpose of the Study:
- To introduce a novel AID system, ROLECCS, for cell cycle-specific protein degradation.
- To enable "on demand" proteolysis of target proteins in distinct cell cycle phases.
- To overcome the limitations of current protein depletion technologies.
Main Methods:
- Development of the Regulate OsTIR1 Levels based on the Cell Cycle Status (ROLECCS) system.
- Utilizing the OsTIR1/auxin-inducible degron (AID) technology coupled with cell cycle regulation.
- Validating ROLECCS by downregulating TP53 protein levels in specific cell cycle phases.
Main Results:
- The ROLECCS system successfully induced proteolysis of target proteins in specific cell cycle phases.
- Downregulation of TP53 in S/G2/M phases, but not G1, led to an increased number of micronuclei.
- Demonstrated cell cycle-dependent phenotypes associated with TP53 loss.
Conclusions:
- The ROLECCS system provides an improved method for studying differential protein roles across cell cycle phases.
- This technology allows for precise investigation of protein functions without confounding effects of cell synchronization.
- ROLECCS offers a powerful new tool for cell cycle research and understanding protein regulation.
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