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Identification of Dormancy-Associated MicroRNAs for the Design of Osteosarcoma-Targeted Dendritic Polyglycerol
Galia Tiram1, Ehud Segal1, Adva Krivitsky1
1Department of Physiology and Pharmacology, Sackler Faculty of Medicine, Tel Aviv University , Tel Aviv 69978, Israel.
Abstract:
The presence of dormant, microscopic cancerous lesions poses a major obstacle for the treatment of metastatic and recurrent cancers. While it is well-established that microRNAs play a major role in tumorigenesis, their involvement in tumor dormancy has yet to be fully elucidated. We established and comprehensively characterized pairs of dormant and fast-growing human osteosarcoma models. Using these pairs of mouse tumor models, we identified three novel regulators of osteosarcoma dormancy: miR-34a, miR-93, and miR-200c. This report shows that loss of these microRNAs occurs during the switch from dormant avascular into fast-growing angiogenic phenotype. We validated their downregulation in patients' tumor samples compared to normal bone, making them attractive candidates for osteosarcoma therapy. Successful delivery of miRNAs is a challenge; hence, we synthesized an aminated polyglycerol dendritic nanocarrier, dPG-NH2, and designed dPG-NH2-microRNA polyplexes to target cancer. Reconstitution of these microRNAs using dPG-NH2 polyplexes into Saos-2 and MG-63 cells, which generate fast-growing osteosarcomas, reduced the levels of their target genes, MET proto-oncogene, hypoxia-inducible factor 1α, and moesin, critical to cancer angiogenesis and cancer cells' migration. We further demonstrate that these microRNAs attenuate the angiogenic capabilities of fast-growing osteosarcomas in vitro and in vivo. Treatment with each of these microRNAs using dPG-NH2 significantly prolonged the dormancy period of fast-growing osteosarcomas in vivo. Taken together, these findings suggest that nanocarrier-mediated delivery of microRNAs involved in osteosarcoma tumor-host interactions can induce a dormant-like state.
Insights
Researchers identified three microRNAs (miR-34a, miR-93, miR-200c) that regulate osteosarcoma tumor dormancy. Nanocarrier delivery of these microRNAs can re-induce a dormant state in fast-growing tumors, offering a potential new therapy.
Area of Science:
- Oncology
- Molecular Biology
- Nanotechnology
Background:
- Microscopic cancerous lesions present a significant challenge in treating metastatic and recurrent cancers.
- MicroRNAs are known to influence tumorigenesis, but their role in tumor dormancy requires further investigation.
Purpose of the Study:
- To identify novel microRNAs regulating osteosarcoma dormancy.
- To develop a nanocarrier-based delivery system for therapeutic microRNAs in osteosarcoma.
Main Methods:
- Established and characterized paired dormant and fast-growing human osteosarcoma mouse models.
- Identified miR-34a, miR-93, and miR-200c as key regulators of osteosarcoma dormancy.
- Synthesized aminated polyglycerol dendritic nanocarrier (dPG-NH2) for microRNA delivery.
Main Results:
- Downregulation of miR-34a, miR-93, and miR-200c was observed during the transition from dormant to fast-growing osteosarcoma.
- Nanocarrier-mediated delivery of these microRNAs reduced target genes (MET, HIF-1α, moesin) involved in angiogenesis and migration.
- Treatment with microRNA-dPG-NH2 polyplexes attenuated angiogenesis and prolonged tumor dormancy in vivo.
Conclusions:
- miR-34a, miR-93, and miR-200c are novel regulators of osteosarcoma dormancy.
- Nanocarrier-mediated delivery of these microRNAs shows therapeutic potential for inducing a dormant-like state in osteosarcoma.
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