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Identification of Cyclin-dependent Kinase 1 Specific Phosphorylation Sites by an In Vitro Kinase Assay
Published on: May 3, 2018
Global mitotic phosphorylation of C2H2 zinc finger protein linker peptides
Raed Rizkallah1, Karen E Alexander, Myra M Hurt
1Department of Biomedical Sciences, Florida State University, Tallahassee, FL, USA.
Abstract:
Cessation of transcriptional activity is a hallmark of cell division. Many biochemical pathways have been shown and proposed over the past few decades to explain the silence of this phase. In particular, many individual transcription factors have been shown to be inactivated by phosphorylation. In this report, we show the simultaneous phosphorylation and mitotic redistribution of a whole class of modified transcription factors. C(2)H(2) zinc finger proteins (ZFPs) represent the largest group of gene expression regulators in the human genome. Despite their diversity, C(2)H(2) ZFPs display striking conservation of small linker peptides joining their adjacent zinc finger modules. These linkers are critical for DNA binding activity. It has been proposed that conserved phosphorylation of these linker peptides could be a common mechanism for the inactivation of the DNA binding activity of C(2)H(2) ZFPs, during mitosis. Using a novel antibody, raised against the phosphorylated form of the most conserved linker peptide sequence, we are able to visualize the massive and simultaneous mitotic phosphorylation of hundreds of these proteins. We show that this wave of phosphorylation is tightly synchronized, starting in mid-prophase right after DNA condensation and before the breakdown of the nuclear envelope. This global phosphorylation is completely reversed in telophase. In addition, the exclusion of the phospho-linker signal from condensed DNA clearly demonstrates a common mechanism for the mitotic inactivation of C(2)H(2) ZFPs.
Insights
Cell division silences gene transcription via widespread phosphorylation of C(2)H(2) zinc finger proteins (ZFPs). This phosphorylation inactivates DNA binding, a process reversed during cell division exit.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Transcriptional activity ceases during cell division.
- Phosphorylation is a known mechanism for inactivating individual transcription factors.
- C(2)H(2) zinc finger proteins (ZFPs) are the largest class of human gene regulators.
Purpose of the Study:
- To investigate if a common phosphorylation mechanism inactivates C(2)H(2) ZFPs during mitosis.
- To visualize the phosphorylation status of C(2)H(2) ZFPs during the cell cycle.
Main Methods:
- Development of a novel antibody against phosphorylated C(2)H(2) ZFP linker peptides.
- Immunofluorescence microscopy to visualize protein localization and phosphorylation.
- Analysis of phosphorylation timing relative to mitotic events (DNA condensation, nuclear envelope breakdown).
Main Results:
- Massive, simultaneous phosphorylation of hundreds of C(2)H(2) ZFPs observed during mitosis.
- Phosphorylation wave is synchronized, beginning in mid-prophase.
- Phosphorylation is completely reversed by telophase.
- Phospho-signal exclusion from condensed DNA indicates inactivation of DNA binding.
Conclusions:
- A conserved phosphorylation mechanism globally inactivates C(2)H(2) ZFPs during mitosis.
- This coordinated inactivation ensures transcriptional silence during cell division.
- Reversal of phosphorylation allows for re-initiation of transcription post-mitosis.
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