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A B-cell developmental gene regulatory network is activated in infant AML
Hamid Bolouri1, Rhonda Ries2, Laura Pardo2,3
1Center for Systems Immunology, Benaroya Research Institute, Seattle, WA, United States of America.
Plos One
|November 18, 2021
Summary
Infant Acute Myeloid Leukemia (AML) is driven by a unique B-cell gene network. Targeting this network with specific inhibitors may offer new treatment strategies for infant AML.
Area of Science:
- Pediatric Oncology
- Cancer Genomics
- Hematologic Malignancies
Background:
- Infant Acute Myeloid Leukemia (AML) is a rare but devastating childhood cancer.
- It presents unique genomic features, including age-specific translocations and fewer mutations compared to adult AML.
- Current treatment strategies for infant AML face challenges due to its heterogeneity and distinct biology.
Purpose of the Study:
- To elucidate the molecular mechanisms driving infant AML.
- To identify potential therapeutic targets specific to infant AML.
- To analyze genome-wide gene expression, microRNA, and DNA methylation profiles in infant AML samples.
Main Methods:
- Integrative analysis of genome-wide mRNA, miRNA, and DNA-methylation data from infant AML patient samples.
- Differential gene expression analysis comparing infant AML with other pediatric AML cohorts (~1500 samples).
- Identification and characterization of key genes within infant-specific B-cell regulatory networks.
Main Results:
- Discovery of an activated onco-fetal B-cell developmental gene regulatory network in infant AML.
- Identification of infant-specific genes, including BRD4, POU2AF1, LIN28B, and IGF2BP3, which are hypo-methylated.
- Observation of mutually exclusive expression between micro-RNA Let7a-2 and its target LIN28B.
Conclusions:
- Infant AML exhibits a distinct genomic profile characterized by an onco-fetal B-cell network.
- The identified network components, such as BRD4 and POU2AF1, are potential therapeutic targets.
- Findings suggest potential efficacy of bromodomain inhibitors and B-cell-targeting immunotherapies (e.g., anti-CD19, anti-CD20) for infant AML.
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