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Investigation of the Transcriptional Role of a RUNX1 Intronic Silencer by CRISPR/Cas9 Ribonucleoprotein in Acute Myeloid Leukemia Cells
Published on: September 1, 2019
Multi-omics analysis of pediatric minimally differentiated acute myeloid leukemia reveals RUNX1-driven stemness and
Tatsuya Kamitori1,2, Satoshi Saida3, Kazuki Mitani1
1Department of Pediatrics, Graduate School of Medicine, Kyoto University, Kyoto, Japan.
Abstract:
Minimally differentiated acute myeloid leukemia (AML-M0) is a rare and therapeutically challenging subgroup of AML characterized by immature hematopoietic stem cell-like features. To uncover the molecular basis, we conducted a comprehensive multi-omics analysis of 23 pediatric AML-M0 cases and compared them with 1483 leukemia samples. AML-M0 formed a characteristic group that exhibited global DNA hypermethylation and transcriptional suppression, particularly downregulation of genes related to oxidative phosphorylation and ribosome assembly compared to non-M0 AML. Genomic profiling revealed frequent loss-of-function alterations in RUNX1 (26%) and ETV6 (22%), along with activating mutations in signaling pathways (83%), such as RAS, FLT3, and JAK. Notably, RUNX1 alterations were significantly associated with a poor prognosis. Functional analyses using a CRISPR/Cas9-mediated RUNX1 knockout in a pediatric AML-M0 cell line showed stem cell-like transcriptional features and reduced expression of genes related to oxidative phosphorylation and ribosomal pathways. RUNX1 disruption was also associated with reduced in vitro sensitivity to multiple drugs, including cytarabine and anthracyclines. Our study provides the most comprehensive molecular characterization of pediatric AML-M0 to date and identifies RUNX1 alterations as important biological and clinical determinants. These insights highlight the potential strategies for precision therapy, including hypomethylating agents, signaling inhibitors, and metabolic targeting, to improve outcomes.
Insights
Minimally differentiated acute myeloid leukemia (AML-M0) is a rare leukemia subtype. Our multi-omics study reveals RUNX1 alterations are linked to poor prognosis and drug resistance in pediatric AML-M0.
Area of Science:
- Hematology
- Molecular Biology
- Genomics
Background:
- Minimally differentiated acute myeloid leukemia (AML-M0) is a rare and challenging AML subtype.
- AML-M0 exhibits immature hematopoietic stem cell-like features, posing therapeutic difficulties.
Purpose of the Study:
- To comprehensively characterize the molecular landscape of pediatric AML-M0.
- To identify key molecular drivers and potential therapeutic targets in AML-M0.
Main Methods:
- Multi-omics analysis (genomics, transcriptomics, epigenomics) of 23 pediatric AML-M0 cases.
- Comparison with 1483 leukemia samples.
- CRISPR/Cas9-mediated RUNX1 knockout in a pediatric AML-M0 cell line.
Main Results:
- AML-M0 exhibits global DNA hypermethylation and suppressed gene expression, particularly for oxidative phosphorylation and ribosome assembly genes.
- Frequent loss-of-function mutations in RUNX1 (26%) and ETV6 (22%) were observed.
- RUNX1 alterations are associated with poor prognosis, stem cell-like transcriptional features, and reduced sensitivity to chemotherapy.
Conclusions:
- RUNX1 alterations are critical determinants in pediatric AML-M0, impacting prognosis and drug response.
- Precision therapy strategies, including hypomethylating agents, signaling inhibitors, and metabolic targeting, show promise for improving AML-M0 outcomes.
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