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Updated: Oct 25, 2025

Comprehensive DNA Methylation Analysis Using a Methyl-CpG-binding Domain Capture-based Method in Chronic Lymphocytic Leukemia Patients
Published on: June 16, 2017
The impact of gene-body H3K36me3 patterns on gene expression level changes in chronic myelogenous leukemia
Lu-Qiang Zhang1, Jun-Jie Liu1, Li Liu1
1Laboratory of Theoretical Biophysics, School oef Physical Science and Technology, Inner Mongolia University, Hohhot 010021, China.
Insights
Lower gene-body H3K36me3 levels in normal cells correlate with significant gene expression changes during chronic myelogenous leukemia (CML) progression. These findings suggest H3K36me3 may be a biomarker for CML development.
Area of Science:
- Molecular Biology
- Epigenetics
- Cancer Research
Background:
- Chronic myelogenous leukemia (CML) is a hematopoietic stem cell malignancy.
- Histone modifications are implicated in CML progression.
Purpose of the Study:
- To systematically analyze H3K36me3 patterns and gene expression changes in CML.
- To identify potential biomarkers for CML progression.
Main Methods:
- Analysis of H3K36me3 patterns and gene expression levels.
- Regulatory element analysis and Random Forest regression.
- Enrichment analysis of differentially expressed genes.
Main Results:
- Genes with lower H3K36me3 in normal cells show greater expression changes during leukemogenesis (ρ = -0.98, P = 9.30 × 10⁻⁸).
- Findings are conserved across human cancers and mouse CML.
- Specific transcription factors (Hoxd13, Rara, Scl, Smad3, Smad4, Tgif1) up-regulate genes with lower H3K36me3.
- Differentially expressed genes are involved in leukemia-related pathways.
- Six driver genes (Tp53, Wt1, Dnmt3a, Cacna1b, Phactr1, Gbp4) with lower H3K36me3 were identified.
Conclusions:
- Lower gene-body H3K36me3 levels may serve as a biomarker for CML progression.
- Epigenetic alterations in H3K36me3 impact gene expression during leukemogenesis.
Abstract:
Chronic myelogenous leukemia (CML) is a malignant clonal disease of hematopoietic stem cells. Researches have exhibited that the progression of CML is related to histone modifications. Here, we perform the systematic analyses of H3K36me3 patterns and gene expression level changes. We observe that the genes with higher gene-body H3K36me3 levels in normal cells show fewer expression changes during leukemogenesis, while the genes with lower gene-body H3K36me3 levels in normal cells yield obvious expression changes during leukemogenesis (ρ = -0.98, P = 9.30 × 10-8). These findings are conserved in human lung/breast cancers and mouse CML, regardless of gene expression levels and gene lengths. Regulatory element analysis and Random Forest regression display that Hoxd13, Rara, Scl, Smad3, Smad4 and Tgif1 induce the up-regulation of genes with lower H3K36me3 levels (ρ = 0.97, P = 2.35 × 10-56). Enrichment analysis shows that the differentially expressed genes with lower H3K36me3 levels are involved in leukemia-related pathways, such as leukocyte migration and regulation of leukocyte activation. Finally, six driver genes (Tp53, Wt1, Dnmt3a, Cacna1b, Phactr1 and Gbp4) with lower H3K36me3 levels are identified. Our analyses indicate that lower gene-body H3K36me3 levels may serve as a biomarker for the progression of CML.
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