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Updated: Jun 15, 2025

Monitoring of Nanodrug Accumulation in Murine Breast Cancer Metastases
Published on: August 23, 2024
Inhibition of miR-10b treats metastatic breast cancer by targeting stem cell-like properties
Alan Halim1, Nasreen Al-Qadi1, Elizabeth Kenyon1,2
1Precision Health Program, Michigan State University, East Lansing, MI 48824, USA.
Abstract:
Despite advances in breast cancer screening and treatment, prognosis for metastatic disease remains dismal at 30% five-year survival. This is due, in large, to the failure of current therapeutics to target properties unique to metastatic cells. One of the drivers of metastasis is miR-10b, a small noncoding RNA implicated in cancer cell invasion, migration, viability, and proliferation. We have developed a nanodrug, termed MN-anti-miR10b, that delivers anti-miR-10b antisense oligomers to cancer cells. In mouse models of metastatic triple-negative breast cancer, MN-anti-miR10b has been shown to prevent onset of metastasis and eliminate existing metastases in combination with chemotherapy, even after treatment has been stopped. Recent studies have implicated miR-10b in conferring stem cell-like properties onto cancer cells, such as chemoresistance. In this study, we show transcriptional evidence that inhibition of miR-10b with MN-anti-miR10b activates developmental processes in cancer cells and that stem-like cancer cells have increased miR-10b expression. We then demonstrate that treatment of breast cancer cells with MN-anti-miR10b reduces their stemness, confirming that these properties make metastatic cells susceptible to the nanodrug actions. Collectively, these findings indicate that inhibition of miR-10b functions to impair breast cancer cell stemness, positioning MN-anti-miR10b as an effective treatment option for stem-like breast cancer subtypes.
Insights
A novel nanodrug, MN-anti-miR10b, effectively targets miR-10b to reduce cancer stemness and chemoresistance in metastatic breast cancer, offering a promising new therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Nanomedicine
Background:
- Metastatic breast cancer survival remains low due to lack of targeted therapies.
- MicroRNA-10b (miR-10b) drives cancer invasion, migration, and proliferation.
- miR-10b is linked to cancer stem cell properties, including chemoresistance.
Purpose of the Study:
- To investigate the role of miR-10b in breast cancer stemness.
- To evaluate the efficacy of MN-anti-miR10b in targeting miR-10b and reducing cancer stemness.
Main Methods:
- Developed MN-anti-miR10b nanodrug for targeted delivery of anti-miR-10b oligomers.
- Utilized mouse models of metastatic triple-negative breast cancer.
- Analyzed transcriptional changes and cancer cell stemness markers post-treatment.
Main Results:
- MN-anti-miR10b prevented and eliminated metastases in mouse models, even after cessation of treatment.
- Inhibition of miR-10b with MN-anti-miR10b activated developmental processes.
- Cancer cells with stem-like properties exhibited increased miR-10b expression.
- MN-anti-miR10b treatment reduced cancer cell stemness and chemoresistance.
Conclusions:
- miR-10b inhibition impairs breast cancer cell stemness.
- MN-anti-miR10b is a potential therapeutic for stem-like breast cancer subtypes.
- Targeting miR-10b offers a novel strategy against metastatic and chemoresistant breast cancer.
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