The cancer-associated CTCFL/BORIS protein targets multiple classes of genomic repeats, with a distinct binding and

Elena M Pugacheva1, Evgeny Teplyakov2, Qiongfang Wu2

  • 1Laboratory of Immunogenetics, NIH, NIAID, Rockville, MD 20852 USA.

Epigenetics & Chromatin
|September 3, 2016
PubMed
Abstract

Insights

The germline-specific transcription factor BORIS (Brother Of Regulator Of Imprinted Sites) regulates and represses SVA repeats, a young class of transposable elements in cancer cells. This uncovers a new role for BORIS in controlling mobile DNA elements.

Area of Science:

  • Genomics
  • Epigenetics
  • Cancer Biology

Background:

  • Cancer cells often activate germline-specific proteins like BORIS (Brother Of Regulator Of Imprinted Sites), a CTCF paralog, leading to aberrant transcription.
  • Genomic repeats change expression in malignancies, potentially altering gene transcription and causing mutations via transposition.
  • The role of BORIS in regulating transposable elements and genomic repeats remains unassessed.

Purpose of the Study:

  • To investigate the binding of BORIS and CTCF to DNA repeats in cancer cells.
  • To determine BORIS's role in the regulation of SVA (Short variable tandem repeat) repeats, a young class of transposable elements.

Main Methods:

  • ChIP-chip and ChIP-seq were used to analyze BORIS and CTCF binding to DNA repeats in K562 cancer cells.
  • RNA-seq was employed to assess the impact of BORIS on SVA repeat expression.

Main Results:

  • BORIS and CTCF exhibit distinct binding patterns across different repeat classes, with co-binding at tandem repeats and BORIS-specific binding at SVA repeats.
  • BORIS preferentially binds to the VNTR region of SVA repeats, suggesting a regulatory role.
  • RNA-seq data indicate BORIS primarily represses SVA expression, alongside epigenetic modifications, except when SVA elements capture promoters.

Conclusions:

  • BORIS directly binds to and regulates SVA repeats, which function as mobile CpG islands, through clustered binding sites.
  • This study reveals a novel function for BORIS in regulating and repressing the youngest class of actively transposing human genomic elements.
  • BORIS's regulatory role on SVA repeats in cancer cells likely mirrors its function in the germline.

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