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Comprehensive DNA Methylation Analysis Using a Methyl-CpG-binding Domain Capture-based Method in Chronic Lymphocytic Leukemia Patients
Published on: June 16, 2017
The DNA methylome of pediatric acute lymphoblastic leukemia
Josef Davidsson1, Henrik Lilljebjörn, Anna Andersson
1Department of Clinical Genetics, Lund University Hospital, Lund University, SE-221 85 Lund, Sweden. josef.davidsson@med.lu.se
Insights
Aberrant DNA methylation, particularly hypermethylation of key genes, plays a significant role in childhood acute lymphoblastic leukemia (ALL) development. This epigenetic change, alongside genetic alterations, contributes to leukemogenesis and disease progression.
Area of Science:
- Epigenetics
- Pediatric Oncology
- Molecular Biology
Background:
- Acute lymphoblastic leukemia (ALL) is the most common childhood cancer.
- High hyperdiploidy and ETV6/RUNX1 fusion are frequent genetic abnormalities in ALL.
- The role of gene dysregulation via hypermethylation in ALL pathogenesis is not well understood.
Purpose of the Study:
- To investigate genome-wide DNA methylation patterns in high hyperdiploid and ETV6/RUNX1-positive ALL.
- To identify genes dysregulated by hypermethylation and their association with gene expression.
- To explore the role of aberrant methylation in leukemogenesis.
Main Methods:
- Genome-wide methylation profiling using bacterial artificial chromosome arrays.
- Promoter-specific CpG island analyses.
- Global gene expression analysis.
- Unsupervised cluster and principal component analyses.
Main Results:
- Methylome profiling successfully subgrouped the two main genetic types of ALL.
- Several B-cell and neoplasia-associated genes were found to be hypermethylated and underexpressed.
- Decreased methylation was observed on gained chromosomes in high hyperdiploid ALL, a novel finding.
Conclusions:
- Aberrant DNA methylation, especially hypermethylation, is a significant factor in childhood ALL pathogenesis.
- Epigenetic dysregulation contributes to leukemogenesis alongside known genetic alterations.
- The decreased methylation of gained chromosomes in high hyperdiploid ALL warrants further investigation for its role in disease and other chromosomal disorders.
Abstract:
Acute lymphoblastic leukemia (ALL) is the most common childhood malignancy, with high hyperdiploidy [51-67 chromosomes] and the t(12;21)(p13;q22) [ETV6/RUNX1 fusion] representing the most frequent abnormalities. Although these arise in utero, there is long latency before overt ALL, showing that additional changes are needed. Gene dysregulation through hypermethylation may be such an event; however, this has not previously been investigated in a detailed fashion. We performed genome-wide methylation profiling using bacterial artificial chromosome arrays and promoter-specific analyses of high hyperdiploid and ETV6/RUNX1-positive ALLs. In addition, global gene expression analyses were performed to identify associated expression patterns. Unsupervised cluster and principal component analyses of the chromosome-wide methylome profiles could successfully subgroup the two genetic ALL types. Analysis of all currently known promoter-specific CpG islands demonstrated that several B-cell- and neoplasia-associated genes were hypermethylated and underexpressed, indicating that aberrant methylation plays a significant leukemogenic role. Interestingly, methylation hotspots were associated with chromosome bands predicted to harbor imprinted genes and the tri-/tetrasomic chromosomes in the high hyperdiploid ALLs were less methylated than their disomic counterparts. Decreased methylation of gained chromosomes is a previously unknown phenomenon that may have ramifications not only for the pathogenesis of high hyperdiploid ALL but also for other disorders with acquired or constitutional numerical chromosome anomalies.
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