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.

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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