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Two- and Three-Dimensional Live Cell Imaging of DNA Damage Response Proteins
Published on: September 28, 2012
Pds5A and Pds5B Display Non-redundant Functions in Mitosis and Their Loss Triggers Chk1 Activation
Naif Al-Jomah1,2, Lubinda Mukololo1,3, Awais Anjum1,4
1Department of Molecular and Cell Biology, University of Leicester, Leicester, United Kingdom.
Background:
Pds5 is an abundant HEAT-repeat-containing protein that binds to cohesin and mediates sister chromatid cohesion. In vertebrates, Pds5A and Pds5B are known to protect DNA replication fork, as their loss leads to DNA damage. Pds5 interacts directly with Wapl, to remove cohesin during mitosis.
Aim:
To analyze the effects of the loss of Pds5 proteins-mediated DNA damage on the cell cycle checkpoints and to examine the possibility that Pds5 proteins have an overlapping function.
Methods:
We first analyzed the cell cycle regulation of Pds5 proteins and defects in S-phase; DNA damage was confirmed after Pds5A/B knockdown. The activation of cell cycle checkpoints and apoptosis were examined by the level of p-Chk1S317, MAD2 localization, and the level of pro-apoptotic markers, respectively.
Results:
Pds5 proteins dissociated from chromatin in a stepwise manner, and their loss led to activation of pro-apoptotic markers associated with the phosphorylation of Chk1S317 due to DNA damage. Depletion of either Pds5A or Pds5B alone increased Smc3 acetylation in perturbed cell cycle, while depletion of both proteins severely impaired Smc3 acetylation. Moreover, the loss of Pds5A/Pds5B activated the SAC in an ATR-Chk1-dependent manner and stabilized Wapl on chromatin. The depletion of Chk1 rescued the S-phase delay associated with Pds5 depletion and significantly increased mitotic catastrophe.
Conclusion:
Pds5A and Pds5B display overlapping functions in facilitating Smc3 acetylation. Somewhat paradoxically, they also have non-redundant functions in terms of cohesin removal due to the activated surveillance mechanism that leads to phosphorylation of Chk1S317.
Insights
Pds5 proteins (Pds5A and Pds5B) are crucial for sister chromatid cohesion and DNA replication fork protection. Their loss causes DNA damage, activating cell cycle checkpoints and apoptosis, revealing overlapping and non-redundant functions.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Pds5 proteins are essential for sister chromatid cohesion by binding to cohesin.
- Pds5A and Pds5B protect DNA replication forks, and their absence causes DNA damage.
- Pds5 interacts with Wapl to regulate cohesin removal during mitosis.
Purpose of the Study:
- To investigate the impact of Pds5 loss-induced DNA damage on cell cycle checkpoints.
- To explore the functional overlap between Pds5A and Pds5B.
Main Methods:
- Analysis of cell cycle regulation and S-phase defects following Pds5A/B knockdown.
- Assessment of cell cycle checkpoint activation and apoptosis via p-Chk1S317, MAD2, and pro-apoptotic markers.
Main Results:
- Pds5 loss activated pro-apoptotic markers and Chk1S317 phosphorylation due to DNA damage.
- Depletion of Pds5A or Pds5B affected Smc3 acetylation, with combined depletion causing severe impairment.
- Pds5A/B loss activated the spindle assembly checkpoint (SAC) in an ATR-Chk1-dependent manner, stabilizing Wapl.
Conclusions:
- Pds5A and Pds5B share overlapping roles in Smc3 acetylation.
- Pds5A and Pds5B possess non-redundant functions in cohesin removal, mediated by an activated surveillance mechanism involving Chk1S317 phosphorylation.
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