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Use of Hematopoietic Stem Cell Transplantation to Assess the Origin of Myelodysplastic Syndrome
Published on: October 3, 2018
Disrupted miRNA Biogenesis Machinery Reveals Common Molecular Pathways and Diagnostic Potential in MDS and AML
Kenan Çevik1, Mustafa Ertan Ay1, Anıl Tombak2
1Department of Medical Biology and Genetics, Faculty of Medicine, Mersin University, 33343 Mersin, Türkiye.
Abstract:
Background: Myelodysplastic syndromes (MDS) and acute myeloid leukemia (AML) are clonal stem cell disorders in which disrupted post-transcriptional regulation contributes to aberrant hematopoiesis and leukemic transformation. The miRNA biogenesis machinery, which comprises Drosha, DGCR8, Dicer, TARBP2, and AGO1, ensures the precise maturation of miRNAs that control lineage commitment and proliferation. However, the extent to which alterations in this pathway reshape hematopoietic gene networks during myeloid disease evolution remains largely unexplored. Methods: Bone marrow samples from newly diagnosed, untreated MDS and AML patients and matched healthy controls were analyzed for the expression of five key miRNA biogenesis genes using quantitative real-time PCR. Statistical comparisons, correlation matrices, and ROC analyses were performed to characterize gene-expression differences. These results were integrated with multigene logistic modeling, decision-curve analysis, and exploratory random forest/SHAP approaches to evaluate molecular interactions and diagnostic relevance. Results: DROSHA, DICER1, and TARBP2 were significantly downregulated in both MDS and AML, suggesting impaired miRNA maturation and a loss of global post-transcriptional control. DGCR8 expression increased across higher-risk MDS groups, suggesting compensatory activation of the Microprocessor complex, whereas AGO1 levels remained relatively stable, consistent with partial maintenance of RISC function. Correlation analyses revealed a co-regulated DROSHA-TARBP2-AGO1 module. ROC, logistic, and machine learning models identified DGCR8 and DICER1 as the strongest diagnostic discriminators. The integrated five-gene signature achieved high discriminative performance (AUC ≈ 0.98) and showed promise but remains preliminary potential for clinical application. Conclusions: Our findings suggest that defects in miRNA biogenesis disrupt hematopoietic homeostasis, reflecting common mechanisms in MDS and AML. The dysregulation of DICER1, DGCR8, and TARBP2 offers insights into miRNA-driven leukemogenesis and may pave the way for miRNA-based diagnostic and therapeutic strategies, pending validation in larger cohorts. Although transcript-level data are provided, future studies should include functional validation to determine the impact on downstream miRNA processing and hematopoietic pathways.
Insights
Dysregulation of miRNA biogenesis genes like DICER1 and DGCR8 is common in myelodysplastic syndromes (MDS) and acute myeloid leukemia (AML), impacting hematopoietic gene networks and offering potential diagnostic markers.
Area of Science:
- Hematology
- Molecular Biology
- Oncology
Background:
- Myelodysplastic syndromes (MDS) and acute myeloid leukemia (AML) are clonal stem cell disorders characterized by aberrant hematopoiesis.
- Disrupted post-transcriptional regulation, particularly miRNA biogenesis, is implicated in myeloid disease evolution.
- The role of miRNA biogenesis machinery alterations in reshaping hematopoietic gene networks in MDS and AML is not fully understood.
Purpose of the Study:
- To investigate the expression patterns of key miRNA biogenesis genes (Drosha, DGCR8, Dicer, TARBP2, AGO1) in MDS and AML.
- To explore the diagnostic relevance of these genes and their integrated signature in distinguishing myeloid malignancies.
- To elucidate the impact of miRNA biogenesis defects on hematopoietic homeostasis and leukemogenesis.
Main Methods:
- Quantitative real-time PCR was used to analyze miRNA biogenesis gene expression in bone marrow samples from MDS/AML patients and healthy controls.
- Statistical analyses, including correlation matrices, ROC analysis, and machine learning models (random forest/SHAP), were employed.
- Multigene logistic modeling and decision-curve analysis were utilized to assess diagnostic performance and molecular interactions.
Main Results:
- Significant downregulation of DROSHA, DICER1, and TARBP2 was observed in both MDS and AML, indicating impaired miRNA maturation.
- DGCR8 expression was elevated in higher-risk MDS, suggesting compensatory Microprocessor complex activation.
- An integrated five-gene signature demonstrated high diagnostic performance (AUC ≈ 0.98), with DGCR8 and DICER1 identified as key discriminators.
Conclusions:
- Defects in miRNA biogenesis are common mechanisms disrupting hematopoietic homeostasis in MDS and AML.
- Dysregulation of DICER1, DGCR8, and TARBP2 provides insights into miRNA-driven leukemogenesis.
- These findings suggest potential for miRNA-based diagnostic and therapeutic strategies, requiring further validation.
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