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Updated: Jul 8, 2026

MicroRNA Amplification and Recognition through Locked-nucleic-acid In situ Hybridization as a Novel Detection and Quantification Method
Published on: October 7, 2025
MicroRNAs modulate the chemosensitivity of tumor cells
Paul E Blower1, Ji-Hyun Chung, Joseph S Verducci
1Program of Pharmacogenomics, Department of Pharmacology, Ohio State University, 333 West Tenth Street, Columbus, OH 43210, USA. blower.7@osu.edu
Abstract:
MicroRNAs are strongly implicated in such processes as development, carcinogenesis, cell survival, and apoptosis. It is likely, therefore, that they can also modulate sensitivity and resistance to anticancer drugs in substantial ways. To test this hypothesis, we studied the pharmacologic roles of three microRNAs previously implicated in cancer biology (let-7i, mir-16, and mir-21) and also used in silico methods to test pharmacologic microRNA effects more broadly. In the experimental system, we increased the expression of individual microRNAs by transfecting their precursors (which are active) or suppressed the expression by transfection of antisense oligomers. In three NCI-60 human cancer cell lines, a panel of 60 lines used for anticancer drug discovery, we assessed the growth-inhibitory potencies of 14 structurally diverse compounds with known anticancer activities. Changing the cellular levels of let-7i, mir-16, and mir-21 affected the potencies of a number of the anticancer agents by up to 4-fold. The effect was most prominent with mir-21, with 10 of 28 cell-compound pairs showing significant shifts in growth-inhibitory activity. Varying mir-21 levels changed potencies in opposite directions depending on compound class; indicating that different mechanisms determine toxic and protective effects. In silico comparison of drug potencies with microRNA expression profiles across the entire NCI-60 panel revealed that approximately 30 microRNAs, including mir-21, show highly significant correlations with numerous anticancer agents. Ten of those microRNAs have already been implicated in cancer biology. Our results support a substantial role for microRNAs in anticancer drug response, suggesting novel potential approaches to the improvement of chemotherapy.
Insights
MicroRNAs significantly impact anticancer drug response, with specific microRNAs like miR-21 altering drug potency. This suggests microRNAs could be key targets for improving chemotherapy effectiveness.
Area of Science:
- Molecular Biology
- Genetics
- Pharmacology
Background:
- MicroRNAs (miRNAs) are crucial regulators of cellular processes including development, cancer, cell survival, and apoptosis.
- Their potential role in modulating sensitivity and resistance to anticancer drugs is significant but not fully understood.
Purpose of the Study:
- To investigate the pharmacologic roles of specific microRNAs (let-7i, miR-16, miR-21) in modulating anticancer drug response.
- To broadly assess microRNA effects on drug potency using in silico methods across a cancer cell line panel.
Main Methods:
- Experimental manipulation of let-7i, miR-16, and miR-21 levels in NCI-60 human cancer cell lines via precursor or antisense oligomer transfection.
- Assessment of growth-inhibitory potencies of 14 anticancer compounds against these modified cell lines.
- In silico analysis correlating drug potencies with microRNA expression profiles across the NCI-60 panel.
Main Results:
- Altering cellular levels of let-7i, miR-16, and miR-21 modified anticancer agent potencies by up to 4-fold.
- miR-21 showed the most prominent effects, significantly shifting growth-inhibitory activity in 10 of 28 cell-compound pairs.
- In silico analysis identified approximately 30 microRNAs, including miR-21, significantly correlated with anticancer agent potencies, with 10 previously linked to cancer.
Conclusions:
- MicroRNAs play a substantial role in determining anticancer drug response.
- Modulating microRNA expression, particularly miR-21, can significantly impact chemotherapy efficacy.
- These findings suggest novel therapeutic strategies for enhancing chemotherapy through microRNA targeting.
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