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Targeted Degradation of the Oncogenic MicroRNA 17-92 Cluster by Structure-Targeting Ligands
Xiaohui Liu1, Hafeez S Haniff1, Jessica L Childs-Disney1
1Department of Chemistry, The Scripps Research Institute, 130 Scripps Way, Jupiter, Florida 33458, United States.
Abstract:
Many RNAs are processed into biologically active transcripts, the aberrant expression of which can contribute to disease phenotypes. For example, the primary microRNA-17-92 (pri-miR-17-92) cluster contains six microRNAs (miRNAs) that collectively act in several disease settings. Herein, we used sequence-based design of structure-specific ligands to target a common structure in the Dicer processing sites of three miRNAs in the cluster, miR-17, miR-18a, and miR-20a, thereby inhibiting their biogenesis. The compound was optimized to afford a dimeric molecule that binds the Dicer processing site and an adjacent bulge, affording a 100-fold increase in potency. The dimer's mode of action was then extended from simple binding to direct cleavage by conjugation to bleomycin A5 in a manner that imparts RNA-selective cleavage or to indirect cleavage by recruiting an endogenous nuclease, or a ribonuclease targeting chimera (RIBOTAC). Interestingly, the dimer-bleomycin conjugate cleaves the entire pri-miR-17-92 cluster and hence functionally inhibits all six miRNAs emanating from it. The compound selectively reduced levels of the cluster in three disease models: polycystic kidney disease, prostate cancer, and breast cancer, rescuing disease-associated phenotypes in the latter two. Further, the bleomycin conjugate exerted selective effects on the miRNome and proteome in prostate cancer cells. In contrast, the RIBOTAC only depleted levels of pre- and mature miR-17, -18a, and 20a, with no effect on the primary transcript, in accordance with the cocellular localization of RNase L, the pre-miRNA targets, and the compound. These studies demonstrate a strategy to tune RNA structure-targeting compounds to the cellular localization of the target.
Insights
Researchers developed novel RNA-targeting compounds to inhibit the microRNA-17-92 cluster, a key player in diseases like cancer. These compounds selectively reduced disease-associated microRNA levels and rescued phenotypes in preclinical models.
Area of Science:
- Molecular Biology
- RNA Therapeutics
- Medicinal Chemistry
Background:
- Aberrant RNA expression contributes to disease.
- The microRNA-17-92 (pri-miR-17-92) cluster is implicated in various diseases.
- Targeting miRNA biogenesis offers a therapeutic strategy.
Purpose of the Study:
- To design sequence-specific ligands targeting the pri-miR-17-92 cluster.
- To inhibit the biogenesis of specific miRNAs within the cluster.
- To develop RNA-targeting compounds for therapeutic applications.
Main Methods:
- Sequence-based design of structure-specific RNA ligands.
- Optimization of ligands into dimeric molecules for enhanced binding.
- Conjugation of ligands to bleomycin A5 or development of ribonuclease targeting chimeras (RIBOTACs).
- Evaluation of compound efficacy in disease models.
Main Results:
- A dimeric molecule targeting Dicer processing sites of miR-17, miR-18a, and miR-20a was developed with 100-fold increased potency.
- The dimer-bleomycin conjugate cleaved the entire pri-miR-17-92 cluster, inhibiting all six miRNAs.
- Selective reduction of pri-miR-17-92 levels and rescue of disease phenotypes in polycystic kidney disease, prostate cancer, and breast cancer models.
- Bleomycin conjugate showed selective miRNome and proteome effects in prostate cancer cells.
- RIBOTAC selectively depleted pre- and mature miRNAs but not the primary transcript.
Conclusions:
- RNA structure-targeting compounds can be tuned for specific therapeutic effects.
- Targeting the pri-miR-17-92 cluster is a viable strategy for treating associated diseases.
- The developed compounds demonstrate potential for selective RNA cleavage and therapeutic intervention.
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