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Monitoring Activation of the Antiviral Pattern Recognition Receptors RIG-I And PKR By Limited Protease Digestion and Native PAGE
Published on: July 29, 2014
A novel checkpoint and RPA inhibitory pathway regulated by Rif1
Yuan Xue1, Michael D Rushton, Laura Maringele
1Institute for Ageing and Health, Newcastle University, Newcastle upon Tyne, United Kingdom.
Abstract:
Cells accumulate single-stranded DNA (ssDNA) when telomere capping, DNA replication, or DNA repair is impeded. This accumulation leads to cell cycle arrest through activating the DNA-damage checkpoints involved in cancer protection. Hence, ssDNA accumulation could be an anti-cancer mechanism. However, ssDNA has to accumulate above a certain threshold to activate checkpoints. What determines this checkpoint-activation threshold is an important, yet unanswered question. Here we identify Rif1 (Rap1-Interacting Factor 1) as a threshold-setter. Following telomere uncapping, we show that budding yeast Rif1 has unprecedented effects for a protein, inhibiting the recruitment of checkpoint proteins and RPA (Replication Protein A) to damaged chromosome regions, without significantly affecting the accumulation of ssDNA at those regions. Using chromatin immuno-precipitation, we provide evidence that Rif1 acts as a molecular "band-aid" for ssDNA lesions, associating with DNA damage independently of Rap1. In consequence, small or incipient lesions are protected from RPA and checkpoint proteins. When longer stretches of ssDNA are generated, they extend beyond the junction-proximal Rif1-protected regions. In consequence, the damage is detected and checkpoint signals are fired, resulting in cell cycle arrest. However, increased Rif1 expression raises the checkpoint-activation threshold to the point it simulates a checkpoint knockout and can also terminate a checkpoint arrest, despite persistent telomere deficiency. Our work has important implications for understanding the checkpoint and RPA-dependent DNA-damage responses in eukaryotic cells.
Insights
Rif1 protein acts as a molecular band-aid, preventing DNA-damage checkpoint activation by shielding single-stranded DNA (ssDNA) lesions. This regulates the threshold for cell cycle arrest, impacting cancer protection mechanisms.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Single-stranded DNA (ssDNA) accumulates when DNA replication, repair, or telomere capping is impaired.
- ssDNA accumulation triggers DNA-damage checkpoints, acting as a cancer protection mechanism.
- The threshold for checkpoint activation by ssDNA remains poorly understood.
Purpose of the Study:
- To identify the molecular mechanisms determining the ssDNA checkpoint activation threshold.
- To investigate the role of Rif1 (Rap1-Interacting Factor 1) in regulating DNA-damage responses.
Main Methods:
- Chromatin immunoprecipitation in budding yeast.
- Analysis of checkpoint protein and RPA recruitment to damaged DNA.
- Assessment of cell cycle arrest in response to telomere uncapping and Rif1 expression levels.
Main Results:
- Rif1 inhibits the recruitment of checkpoint proteins and RPA to ssDNA lesions without affecting ssDNA accumulation.
- Rif1 acts as a protective "band-aid" for small ssDNA lesions.
- Increased Rif1 expression raises the checkpoint activation threshold, potentially simulating checkpoint deficiency.
Conclusions:
- Rif1 functions as a critical regulator of the DNA-damage checkpoint activation threshold.
- Rif1's mechanism of shielding ssDNA lesions has significant implications for understanding DNA-damage responses and cancer biology.
- Targeting Rif1 could offer novel therapeutic strategies for cancer treatment.
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