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.

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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