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Disrupting a Convergent Acetylation Circuit Collapses Leukemic Identity Across AML Subtypes
Anagha Deshpande1, Cho-Ying Chiang1, Marlenne Perales1
1Sanford Burnham Prebys Medical Discovery Institute, NCI Designated Cancer Center, La Jolla, CA, USA.
This study reveals an acetylation circuit controlling the Super Elongation Complex (SEC) integrity. Disrupting this circuit via KAT2A/B degradation shows broad anti-leukemic effects in acute myeloid leukemia (AML).
Area of Science:
- Molecular Biology
- Gene Regulation
- Cancer Biology
Background:
- Transcriptional condensates regulate gene expression but their assembly is poorly understood.
- The Super Elongation Complex (SEC) is crucial for transcriptional elongation.
- Regulation of SEC integrity is vital for understanding gene expression control.
Purpose of the Study:
- To identify regulatory mechanisms governing transcriptional condensate integrity.
- To investigate the role of acetylation in SEC function.
- To explore KAT2A/B degradation as a therapeutic strategy for acute myeloid leukemia (AML).
Main Methods:
- Utilized a PROTAC (GSK983/GSK699) to degrade KAT2A/KAT2B.
- Assessed histone H3 lysine 9 acetylation (H3K9ac) and SEC component acetylation.
- Analyzed displacement of the chromatin reader ENL and dissolution of transcriptional condensates.
- Employed genome-scale dependency data to evaluate SAGA complex dependency in AML.
Main Results:
- Identified an acetylation-dependent feed-forward circuit controlling SEC integrity.
- KAT2A/KAT2B license dual acetylation of H3K9ac and SEC components (ENL, AFF1, AFF3).
- KAT2A/B degradation displaced ENL, dissolved condensates, and disrupted SEC-dependent transcription.
- SAGA complex is a selective dependency in AML; KAT2A/B degradation showed pan-AML anti-leukemic activity.
Conclusions:
- KAT2A/B degradation dismantles ENL-anchored condensates and depletes H3K9ac at AML oncogene loci.
- KAT2A/B licenses SEC acetylation and ENL interaction, crucial for transcriptional regulation.
- The SAGA complex is essential in hematological malignancies, particularly AML.
- KAT2A/B degradation represents a mechanism-based, pan-AML therapeutic strategy.
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