A chemical-genetic interaction between PAF1 and ENL/AF9 YEATS inhibition

Insights

ENL YEATS domain inhibitors show anti-leukemia effects by downregulating target genes. However, this gene suppression alone does not fully explain the anti-proliferative response in leukemia models, even with resistance.

Area of Science:

  • Oncology
  • Molecular Biology
  • Drug Discovery

Background:

  • Transcriptional regulatory proteins, like ENL, are key in oncogenesis and drug development.
  • ENL's YEATS domain is crucial for acute leukemia survival and pathogenesis.
  • ENL YEATS domain inhibitors demonstrate anti-leukemia effects by downregulating target genes.

Purpose of the Study:

  • Investigate the transcriptional effects of ENL YEATS domain inhibitors in leukemia models with intrinsic and acquired resistance.
  • Clarify the link between proximal transcriptional changes and downstream anti-proliferative responses.
  • Determine if ENL target gene suppression is sufficient for anti-leukemia activity.

Main Methods:

  • Utilized models of intrinsic and acquired resistance to ENL YEATS domain inhibitors.
  • Conducted CRISPR/Cas9-based genetic modifier screens to identify resistance mechanisms.
  • Constructed isogenic models using drug-resistance alleles of the transcriptional regulator PAF1.

Main Results:

  • ENL YEATS domain inhibition induced similar transcriptional responses in both sensitive and resistant leukemia models.
  • Identified in-frame deletions in PAF1 as conferring resistance to ENL YEATS domain inhibitors.
  • Observed shared downregulation of ENL target genes in both sensitive and resistant leukemia.

Conclusions:

  • The suppression of ENL target genes is a conserved response across sensitive and resistant leukemia.
  • Downregulation of ENL target genes is insufficient to fully account for the anti-leukemia effects of ENL antagonists.
  • Further research is needed to understand the complete mechanism of action for ENL inhibitors.

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