Epigenetic modifier directed therapeutics to unleash healthy genes in unhealthy cells

Babal K Jha1, Yogen Saunthararajah1

  • 1Department of Translational Hematology and Oncology Research, Taussig Cancer Institute, Cleveland Clinic, Cleveland, OH.

Seminars in Hematology
|January 29, 2021
PubMed

Insights

Targeting epigenetic enzymes offers a new therapeutic strategy for both cancer and genetic diseases. Inhibiting these "off" enzymes can restore normal cell function by correcting gene expression imbalances.

Area of Science:

  • Epigenetics and molecular biology
  • Cancer biology
  • Genetic disease mechanisms

Background:

  • Genetic mutations can lead to diseases by altering cell fates and functions.
  • Epigenetic enzymes regulate gene access by modifying DNA and histones.
  • These enzymes are classified as 'on' (coactivators) or 'off' (corepressors) for gene transcription.

Discussion:

  • In cancer, mutations disrupt the balance of coactivators and corepressors, leading to aberrant gene expression.
  • Inhibiting corepressor enzymes with small molecules can restore the proper balance.
  • This approach aims to guide cancer cells toward their intended lineage fates.
  • For nonmalignant diseases like beta-hemoglobinopathies, corepressor inhibition can activate beneficial genes, such as fetal globin.

Key Insights:

  • Epigenetic enzymes are druggable targets for a range of diseases.
  • Restoring the balance between coactivators and corepressors is a key therapeutic strategy.
  • Master transcription factors, influenced by epigenetic enzymes, are central to cell fate and function.

Outlook:

  • Pharmacological inhibition of corepressors presents a promising avenue for treating genetic and malignant diseases.
  • Harnessing natural cellular mechanisms through epigenetic drug targets offers a novel healing approach.
  • Further research into specific epigenetic enzyme targets could unlock new treatments.

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