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Analysis of Combinatorial miRNA Treatments to Regulate Cell Cycle and Angiogenesis
Published on: March 30, 2019
Small Molecule Inhibition of microRNA-210 Reprograms an Oncogenic Hypoxic Circuit
Matthew G Costales1, Christopher L Haga1, Sai Pradeep Velagapudi1
1Department of Chemistry, ‡Department of Molecular Therapeutics, and §Department of Neuroscience, The Scripps Research Institute , 130 Scripps Way, Jupiter, Florida 33458, United States.
Abstract:
A hypoxic state is critical to the metastatic and invasive characteristics of cancer. Numerous pathways play critical roles in cancer maintenance, many of which include noncoding RNAs such as microRNA (miR)-210 that regulates hypoxia inducible factors (HIFs). Herein, we describe the identification of a small molecule named Targapremir-210 that binds to the Dicer site of the miR-210 hairpin precursor. This interaction inhibits production of the mature miRNA, derepresses glycerol-3-phosphate dehydrogenase 1-like enzyme (GPD1L), a hypoxia-associated protein negatively regulated by miR-210, decreases HIF-1α, and triggers apoptosis of triple negative breast cancer cells only under hypoxic conditions. Further, Targapremir-210 inhibits tumorigenesis in a mouse xenograft model of hypoxic triple negative breast cancer. Many factors govern molecular recognition of biological targets by small molecules. For protein, chemoproteomics and activity-based protein profiling are invaluable tools to study small molecule target engagement and selectivity in cells. Such approaches are lacking for RNA, leaving a void in the understanding of its druggability. We applied Chemical Cross-Linking and Isolation by Pull Down (Chem-CLIP) to study the cellular selectivity and the on- and off-targets of Targapremir-210. Targapremir-210 selectively recognizes the miR-210 precursor and can differentially recognize RNAs in cells that have the same target motif but have different expression levels, revealing this important feature for selectively drugging RNAs for the first time. These studies show that small molecules can be rapidly designed to selectively target RNAs and affect cellular responses to environmental conditions, resulting in favorable benefits against cancer. Further, they help define rules for identifying druggable targets in the transcriptome.
Insights
A novel small molecule, Targapremir-210, selectively targets microRNA-210 (miR-210) precursors. This inhibits cancer cell growth and triggers apoptosis specifically in hypoxic triple-negative breast cancer.
Area of Science:
- Molecular Biology
- Cancer Research
- RNA Therapeutics
Background:
- Hypoxia is crucial for cancer metastasis and invasion.
- MicroRNA-210 (miR-210) regulates hypoxia-inducible factors (HIFs), impacting cancer progression.
- Targeting RNA offers a new frontier in cancer therapy, but methods for studying RNA-small molecule interactions are limited.
Purpose of the Study:
- To identify and characterize a small molecule inhibitor of miR-210.
- To investigate the mechanism of action and cellular selectivity of the small molecule.
- To evaluate the therapeutic potential of the small molecule against hypoxic triple-negative breast cancer.
Main Methods:
- Chemical Cross-Linking and Isolation by Pull Down (Chem-CLIP) was used to study small molecule-RNA interactions.
- The small molecule Targapremir-210 was designed to bind the miR-210 precursor hairpin.
- In vitro and in vivo models of hypoxic triple-negative breast cancer were utilized.
Main Results:
- Targapremir-210 selectively binds to the miR-210 precursor, inhibiting mature miR-210 production.
- This leads to derepression of GPD1L, decreased HIF-1α, and apoptosis in cancer cells under hypoxia.
- Targapremir-210 demonstrated efficacy in inhibiting tumor growth in a mouse xenograft model.
- Chem-CLIP revealed Targapremir-210's ability to selectively recognize RNAs based on expression levels.
Conclusions:
- Small molecules can be designed to selectively target specific RNAs, offering therapeutic benefits.
- Targapremir-210 represents a promising therapeutic strategy for hypoxic triple-negative breast cancer.
- This study defines new rules for identifying druggable RNA targets within the transcriptome.
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