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Published on: March 30, 2019
Small RNA sequencing and functional characterization reveals MicroRNA-143 tumor suppressor activity in liposarcoma
Stacy Ugras1, Elliott Brill, Anders Jacobsen
1Department of Surgery, Sarcoma Biology Laboratory, Sarcoma Disease Management Program, The Rockefeller University, New York, New York, USA.
Abstract:
Liposarcoma remains the most common mesenchymal cancer, with a mortality rate of 60% among patients with this disease. To address the present lack of therapeutic options, we embarked upon a study of microRNA (miRNA) expression alterations associated with liposarcomagenesis with the goal of exploiting differentially expressed miRNAs and the gene products they regulate as potential therapeutic targets. MicroRNA expression was profiled in samples of normal adipose tissue, well-differentiated liposarcoma, and dedifferentiated liposarcoma by both deep sequencing of small RNA libraries and hybridization-based Agilent microarrays. The expression profiles discriminated liposarcoma from normal adipose tissue and well differentiated from dedifferentiated disease. We defined over 40 miRNAs that were dysregulated in dedifferentiated liposarcomas in both the sequencing and the microarray analysis. The upregulated miRNAs included two cancer-associated species (miR-21 and miR-26a), and the downregulated miRNAs included two species that were highly abundant in adipose tissue (miR-143 and miR-145). Restoring miR-143 expression in dedifferentiated liposarcoma cells inhibited proliferation, induced apoptosis, and decreased expression of BCL2, topoisomerase 2A, protein regulator of cytokinesis 1 (PRC1), and polo-like kinase 1 (PLK1). The downregulation of PRC1 and its docking partner PLK1 suggests that miR-143 inhibits cytokinesis in these cells. In support of this idea, treatment with a PLK1 inhibitor potently induced G(2)-M growth arrest and apoptosis in liposarcoma cells. Taken together, our findings suggest that miR-143 re-expression vectors or selective agents directed at miR-143 or its targets may have therapeutic value in dedifferentiated liposarcoma.
Insights
MicroRNA (miRNA) alterations in liposarcoma were studied to find new treatments. Restoring miR-143 in dedifferentiated liposarcoma cells reduced proliferation and induced cell death, suggesting miR-143 as a potential therapeutic target.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Liposarcoma is the most common mesenchymal cancer with a high mortality rate.
- Current therapeutic options for liposarcoma are limited.
- MicroRNA (miRNA) dysregulation is implicated in various cancers.
Purpose of the Study:
- To investigate microRNA expression alterations in liposarcoma development.
- To identify differentially expressed miRNAs as potential therapeutic targets.
- To explore the therapeutic potential of restoring miR-143 in dedifferentiated liposarcoma.
Main Methods:
- Profiling of microRNA expression in normal adipose tissue, well-differentiated liposarcoma, and dedifferentiated liposarcoma.
- Utilized deep sequencing of small RNA libraries and Agilent microarrays for expression analysis.
- Restored miR-143 expression in dedifferentiated liposarcoma cells to assess functional effects.
Main Results:
- Identified over 40 dysregulated miRNAs in dedifferentiated liposarcomas.
- miR-143 and miR-145 were significantly downregulated in liposarcoma, while miR-21 and miR-26a were upregulated.
- Restoring miR-143 inhibited proliferation, induced apoptosis, and decreased expression of BCL2, topoisomerase 2A, PRC1, and PLK1.
- Downregulation of PRC1 and PLK1 suggests miR-143 inhibits cytokinesis.
Conclusions:
- miR-143 re-expression or targeting its downstream effectors may offer therapeutic benefits for dedifferentiated liposarcoma.
- miR-143 plays a crucial role in liposarcoma cell proliferation and survival.
- Targeting miR-143 or its regulated pathways represents a promising strategy for liposarcoma treatment.
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