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Genome-wide Protein-protein Interaction Screening by Protein-fragment Complementation Assay PCA in Living Cells
Published on: March 3, 2015
A chemical-genetic interaction between PAF1 and ENL/AF9 YEATS inhibition
Abstract:
Transcriptional regulatory proteins are frequent drivers of oncogenesis and common targets for drug discovery. The transcriptional co-activator, ENL, which is localized to chromatin through its acetyllysine-binding YEATS domain, is preferentially required for the survival and pathogenesis of acute leukemia. Small molecules that inhibit the ENL YEATS domain show anti-leukemia effects in preclinical models, which is thought to be caused by the downregulation of pro-leukemic ENL target genes. However, the transcriptional effects of ENL YEATS domain inhibitors have not been studied in models of intrinsic or acquired resistance and, therefore, the connection between proximal transcriptional effects and downstream anti-proliferative response is poorly understood. To address this, we identified models of intrinsic and acquired resistance and used them to study the effects of ENL YEATS domain inhibitors. We first discovered that ENL YEATS domain inhibition produces similar transcriptional responses in naive models of sensitive and resistant leukemia. We then performed a CRISPR/Cas9-based genetic modifier screen and identified in-frame deletions of the essential transcriptional regulator, PAF1, that confer resistance to ENL YEATS domain inhibitors. Using these drug-resistance alleles of PAF1 to construct isogenic models, we again found that the downregulation of ENL target genes is shared in both sensitive and resistant leukemia. Altogether, these data support the conclusion that the suppression of ENL target genes is not sufficient to explain the anti-leukemia effects of ENL antagonists.
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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