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Characterization of the Akt2 domain essential for binding nuclear p21cip1 to promote cell cycle arrest during
Lisa Heron-Milhavet1, Celine Franckhauser, Anne Fernandez
1Cell Cycle and Myogenesis, Institute of Human Genetics, CNRS-UPR1142, Montpellier, France.
Abstract:
The binding of the cdk inhibitor p21cip1 to Akt2 in the nucleus is an essential component in determining the specific role of Akt2 in the cell cycle arrest that precedes myogenic differentiation. Here, through a combination of biochemical and cell biology approaches, we have addressed the molecular basis of this binding. Using amino-terminal truncation of Akt2, we show that p21cip1 binds at the carboxy terminal of Akt2 since deletion of the first 400 amino acids did not affect the interaction between Akt2 and p21cip1. Pull down using carboxy terminal-truncated Akt2 protein revealed the importance of the region between amino acids 400 and 445 for the binding to p21cip1. Since Akt2_400-445 and Akt2_420-445 peptides could both bind p21cip1, this refines the binding domain on Akt2 between amino acids 420 and 445. In order to confirm these data in living cells, we developed a protocol to synchronize myoblasts at the cell cycle exit point when p21cip1 expression is induced by MyoD before myogenic differentiation. When a synthetic Akt2 peptide spanning the region (410-437) was microinjected in p21-expressing myoblasts, p21cip1 no longer localized exclusively in the nucleus, instead being redistributed throughout the cell, thus showing that injected peptide 410-437 acts to compete with the binding of endogenous Akt2 to p21cip1. Taken together, our data suggest that this 27 amino acid sequence on Akt2 is necessary and sufficient to bind p21cip1 both in vitro and in living cells.
Insights
The cyclin-dependent kinase inhibitor p21 binds to Akt2 in the nucleus, regulating cell cycle arrest during muscle cell development. A specific 27-amino acid region on Akt2 is identified as crucial for this interaction.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- The interaction between cyclin-dependent kinase inhibitor p21 (p21cip1) and Akt2 is critical for nuclear events leading to cell cycle arrest.
- Understanding the molecular basis of this binding is essential for elucidating Akt2's role in myogenic differentiation.
Purpose of the Study:
- To determine the molecular basis of the interaction between p21cip1 and Akt2.
- To identify the specific binding domain of p21cip1 on Akt2.
Main Methods:
- Biochemical approaches including amino-terminal and carboxy-terminal truncation of Akt2.
- Pull-down assays to identify binding regions.
- Cell biology techniques involving synchronized myoblasts and microinjection of synthetic Akt2 peptides.
Main Results:
- p21cip1 binds to the carboxy-terminal region of Akt2.
- The binding domain for p21cip1 on Akt2 is refined to amino acids 420-445.
- A synthetic Akt2 peptide (410-437) competed with endogenous Akt2 binding to p21cip1 in living cells, causing p21cip1 redistribution.
Conclusions:
- A 27-amino acid sequence (410-437) within Akt2 is both necessary and sufficient for binding p21cip1.
- This interaction is confirmed both in vitro and in vivo, highlighting its significance in cellular processes.
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