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Updated: May 22, 2026

Two- and Three-Dimensional Live Cell Imaging of DNA Damage Response Proteins
Published on: September 28, 2012
Phospho-Bcl-x(L)(Ser62) plays a key role at DNA damage-induced G(2) checkpoint
Jianfang Wang1, Myriam Beauchemin, Richard Bertrand
1Centre de recherche, Centre hospitalier de l'Université of Montréal (CRCHUM) - Hôpital Notre-Dame and Institut du Cancer de Montréal, Montréal, Québec, Canada.
Abstract:
Accumulating evidence suggests that Bcl-xL, an anti-apoptotic member of the Bcl-2 family, also functions in cell cycle progression and cell cycle checkpoints. Analysis of a series of phosphorylation site mutants reveals that cells expressing Bcl-xL(Ser62Ala) mutant are less stable at the G 2 checkpoint and enter mitosis more rapidly than cells expressing wild-type Bcl-xL or Bcl-xL phosphorylation site mutants, including Thr41Ala, Ser43Ala, Thr47Ala, Ser56Ala and Thr115Ala. Analysis of the dynamic phosphorylation and location of phospho-Bcl-xL(Ser62) in unperturbed, synchronized cells and during DNA damage-induced G 2 arrest discloses that a pool of phospho-Bcl-xL(Ser62) accumulates into nucleolar structures in etoposide-exposed cells during G 2 arrest. In a series of in vitro kinase assays, pharmacological inhibitors and specific siRNAs experiments, we found that Polo kinase 1 and MAPK9/JNK2 are major protein kinases involved in Bcl-xL(Ser62) phosphorylation and accumulation into nucleolar structures during the G 2 checkpoint. In nucleoli, phospho-Bcl-xL(Ser62) binds to and co-localizes with Cdk1(cdc2), the key cyclin-dependent kinase required for entry into mitosis. These data indicate that during G 2 checkpoint, phospho-Bcl-xL(Ser62) stabilizes G 2 arrest by timely trapping of Cdk1(cdc2) in nucleolar structures to slow mitotic entry. It also highlights that DNA damage affects the dynamic composition of the nucleolus, which now emerges as a piece of the DNA damage response.
Insights
Phospho-Bcl-xL(Ser62) stabilizes the G2 checkpoint by trapping Cdk1 in nucleoli, slowing mitosis entry. This highlights the nucleolus
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Bcl-xL, an anti-apoptotic protein, also regulates cell cycle progression and checkpoints.
- The role of Bcl-xL phosphorylation in these functions is not fully understood.
Purpose of the Study:
- To investigate the role of Bcl-xL phosphorylation at Serine 62 (Ser62) in G2 checkpoint control.
- To identify kinases responsible for Bcl-xL(Ser62) phosphorylation and its subcellular localization during DNA damage response.
Main Methods:
- Analysis of Bcl-xL phosphorylation site mutants.
- Cell synchronization and DNA damage induction (etoposide).
- Immunofluorescence microscopy to track protein localization.
- In vitro kinase assays, pharmacological inhibitors, and siRNA experiments.
Main Results:
- Bcl-xL(Ser62Ala) mutant cells exhibit reduced G2 checkpoint stability and faster mitotic entry.
- Phospho-Bcl-xL(Ser62) accumulates in nucleoli during etoposide-induced G2 arrest.
- Polo kinase 1 and MAPK9/JNK2 phosphorylate Bcl-xL at Ser62.
- Phospho-Bcl-xL(Ser62) binds and co-localizes with Cdk1(cdc2) in nucleoli.
Conclusions:
- Phospho-Bcl-xL(Ser62) stabilizes the G2 checkpoint by sequestering Cdk1(cdc2) in nucleoli, delaying mitotic entry.
- DNA damage alters nucleolar composition, implicating the nucleolus in the DNA damage response.
- This study reveals a novel mechanism for cell cycle regulation by Bcl-xL during DNA damage.
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