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TLK1B mediated phosphorylation of Rad9 regulates its nuclear/cytoplasmic localization and cell cycle checkpoint
Sanket Awate1, Arrigo De Benedetti2
1Department of Biochemistry and Molecular Biology, Louisiana State University Health Sciences Center, 1501 Kings Highway, Shreveport, LA, 71130, USA. sawate@lsuhsc.edu.
Background:
The Tousled like kinase 1B (TLK1B) is critical for DNA repair and survival of cells. Upon DNA damage, Chk1 phosphorylates TLK1B at S457 leading to its transient inhibition. Once TLK1B regains its kinase activity it phosphorylates Rad9 at S328. In this work we investigated the significance of this mechanism by overexpressing mutant TLK1B in which the inhibitory phosphorylation site was eliminated.
Results And Discussion:
These cells expressing TLK1B resistant to DNA damage showed constitutive phosphorylation of Rad9 S328 that occurred even in the presence of hydroxyurea (HU), and this resulted in a delayed checkpoint recovery. One possible explanation was that premature phosphorylation of Rad9 caused its dissociation from 9-1-1 at stalled replication forks, resulting in their collapse and prolonged activation of the S-phase checkpoint. We found that phosphorylation of Rad9 at S328 results in its dissociation from chromatin and redistribution to the cytoplasm. This results in double stranded breaks formation with concomitant activation of ATM and phosphorylation of H2AX. Furthermore, a Rad9 (S328D) phosphomimic mutant was exclusively localized to the cytoplasm and not the chromatin. Another Rad9 phosphomimic mutant (T355D), which is also a site phosphorylated by TLK1, localized normally. In cells expressing the mutant TLK1B treated with HU, Rad9 association with Hus1 and WRN was greatly reduced, suggesting again that its phosphorylation causes its premature release from stalled forks.
Conclusions:
We propose that normally, the inactivation of TLK1B following replication arrest and genotoxic stress functions to allow the retention of 9-1-1 at the sites of damage or stalled forks. Following reactivation of TLK1B, whose synthesis is concomitantly induced by genotoxins, Rad9 is hyperphosphorylated at S328, resulting in its dissociation and inactivation of the checkpoint that occurs once repair is complete.
Insights
Tousled-like kinase 1B (TLK1B) regulates DNA repair. Eliminating TLK1B’s inhibitory phosphorylation site caused premature Rad9 phosphorylation, leading to DNA damage and delayed checkpoint recovery.
Area of Science:
- Cellular biology
- Molecular biology
- DNA repair mechanisms
Background:
- Tousled-like kinase 1B (TLK1B) is crucial for DNA repair and cell survival.
- Chk1 phosphorylates TLK1B at S457, transiently inhibiting its activity upon DNA damage.
- Reactivated TLK1B phosphorylates Rad9 at S328.
Purpose of the Study:
- Investigate the significance of the TLK1B-Rad9 phosphorylation mechanism.
- Overexpress a mutant TLK1B lacking the inhibitory phosphorylation site (S457) to study its effects on DNA repair and checkpoint control.
Main Methods:
- Overexpression of a mutant TLK1B (S457A).
- Treatment with hydroxyurea (HU) to induce replication stress.
- Analysis of Rad9 phosphorylation, localization (chromatin vs. cytoplasm), and association with other proteins (9-1-1 complex, Hus1, WRN).
- Assessment of DNA double-strand breaks and ATM/H2AX activation.
Main Results:
- Cells expressing mutant TLK1B showed constitutive Rad9 S328 phosphorylation, even with HU.
- This premature phosphorylation caused Rad9 dissociation from chromatin and cytoplasmic redistribution.
- Reduced association of Rad9 with Hus1 and WRN at stalled replication forks.
- Increased double-strand breaks and prolonged S-phase checkpoint activation.
Conclusions:
- The inhibitory phosphorylation of TLK1B is essential for retaining the 9-1-1 complex at stalled replication forks.
- Premature Rad9 phosphorylation by reactivated TLK1B leads to its dissociation, DNA damage, and delayed checkpoint recovery.
- This mechanism highlights a regulatory role of TLK1B in controlling checkpoint inactivation after DNA repair completion.
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