The human L(3)MBT polycomb group protein is a transcriptional repressor and interacts physically and functionally

Piernicola Boccuni1, Donal MacGrogan, Joseph M Scandura

  • 1Laboratory of Molecular Aspects of Hematopoiesis, Sloan Kettering Institute for Cancer Research, New York, New York 10021, USA.

Insights

Human lethal(3)malignant brain tumor protein (H-L(3)MBT) acts as a transcriptional repressor. It interacts with TEL, enhancing repression and potentially recruiting Polycomb group proteins to stabilize gene silencing.

Area of Science:

  • Molecular Biology
  • Epigenetics
  • Cancer Research

Background:

  • H-L(3)MBT is a human homolog of Drosophila lethal(3)malignant brain tumor protein, a Polycomb group protein.
  • Mutations in Drosophila l(3)mbt cause brain tumors, indicating its tumor suppressor role.
  • H-L(3)MBT maps to a region frequently deleted in myeloid malignancies.

Purpose of the Study:

  • To investigate the transcriptional regulatory function of H-L(3)MBT.
  • To identify interacting partners and functional domains of H-L(3)MBT.
  • To elucidate the mechanism of H-L(3)MBT-mediated transcriptional repression.

Main Methods:

  • Analysis of H-L(3)MBT transcriptional activity.
  • Assessment of trichostatin A sensitivity to determine histone deacetylase independence.
  • In vivo binding assays to identify interacting proteins and map interaction domains.
  • Reporter assays to evaluate the effect of H-L(3)MBT on TEL-mediated repression.

Main Results:

  • H-L(3)MBT functions as a transcriptional repressor, with activity dependent on its MBT repeats.
  • Repression by H-L(3)MBT is independent of histone deacetylase activity.
  • H-L(3)MBT directly binds to the ETS transcription factor TEL via their SPM/SAM domains.
  • H-L(3)MBT enhances TEL-mediated repression of TEL-responsive promoters.

Conclusions:

  • H-L(3)MBT is a histone deacetylase-independent transcriptional repressor.
  • The interaction between H-L(3)MBT and TEL is crucial for enhanced repression.
  • This interaction suggests a mechanism where H-L(3)MBT recruits Polycomb group proteins to TEL-repressed genes, stabilizing their silenced state.

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