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Updated: Nov 2, 2025

Analysis of Combinatorial miRNA Treatments to Regulate Cell Cycle and Angiogenesis
Published on: March 30, 2019
MicroRNA-497/195 is tumor suppressive and cooperates with CDKN2A/B in pediatric acute lymphoblastic leukemia
Elena Boldrin1,2, Enrico Gaffo3, Alexandra Niedermayer1
1Department of Pediatrics and Adolescent Medicine, Ulm University Medical Center, Ulm, Germany.
Abstract:
We previously identified an association of rapid engraftment of patient-derived leukemia cells transplanted into NOD/SCID mice with early relapse in B-cell precursor acute lymphoblastic leukemia (BCP-ALL). In a search for the cellular and molecular profiles associated with this phenotype, we investigated the expression of microRNAs (miRNAs) in different engraftment phenotypes and patient outcomes. We found high expression of miR-497 and miR-195 (hereafter miR-497/195) in patient-derived xenograft samples with slow engraftment derived from patients with favorable outcome. In contrast, epigenetic repression and low expression of these miRNAs was observed in rapidly engrafting samples associated with early relapse. Overexpression of miR-497/195 in patient-derived leukemia cells suppressed in vivo growth of leukemia and prolonged recipient survival. Conversely, inhibition of miR-497/195 led to increased leukemia cell growth. Key cell cycle regulators were downregulated upon miR-497/195 overexpression, and we identified cyclin-dependent kinase 4 (CDK4)- and cyclin-D3 (CCND3)-mediated control of G1/S transition as a principal mechanism for the suppression of BCP-ALL progression by miR-497/195. The critical role for miR-497/195-mediated cell cycle regulation was underscored by finding (in an additional independent series of patient samples) that high expression of miR-497/195 together with a full sequence for CDKN2A and CDKN2B (CDKN2A/B) was associated with excellent outcome, whereas deletion of CDKN2A/B together with low expression of miR-497/195 was associated with clearly inferior relapse-free survival. These findings point to the cooperative loss of cell cycle regulators as a new prognostic factor indicating possible therapeutic targets for pediatric BCP-ALL.
Insights
High expression of miR-497/195 microRNAs is linked to slower growth and better outcomes in B-cell precursor acute lymphoblastic leukemia (BCP-ALL). Low expression correlates with rapid growth and early relapse in pediatric BCP-ALL.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Rapid engraftment of patient-derived leukemia cells in mice correlates with early relapse in B-cell precursor acute lymphoblastic leukemia (BCP-ALL).
- Investigating microRNA (miRNA) expression profiles can reveal molecular mechanisms underlying BCP-ALL progression and patient outcomes.
Purpose of the Study:
- To identify microRNAs associated with different engraftment phenotypes and patient outcomes in BCP-ALL.
- To elucidate the role of specific microRNAs, particularly miR-497/195, in regulating leukemia cell growth and progression.
Main Methods:
- Analysis of miRNA expression in patient-derived xenograft samples with varying engraftment rates and patient outcomes.
- In vivo studies involving overexpression or inhibition of miR-497/195 in leukemia cells.
- Identification of downstream targets and regulatory pathways, including cell cycle regulators like CDK4 and CCND3.
Main Results:
- High expression of miR-497/195 was observed in slow-engrafting BCP-ALL samples from patients with favorable outcomes.
- Low expression and epigenetic repression of miR-497/195 were associated with rapid engraftment and early relapse.
- Overexpression of miR-497/195 suppressed leukemia growth and prolonged survival, while inhibition accelerated it.
- miR-497/195 regulates G1/S cell cycle transition via CDK4 and CCND3.
Conclusions:
- miR-497/195 acts as a tumor suppressor in BCP-ALL by controlling cell cycle progression.
- Cooperative loss of miR-497/195 and cell cycle regulators (CDKN2A/B) is a significant prognostic factor in pediatric BCP-ALL.
- These findings highlight miR-497/195 and cell cycle regulators as potential therapeutic targets for BCP-ALL.
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