RET Kinase-Regulated MicroRNA-153-3p Improves Therapeutic Efficacy in Medullary Thyroid Carcinoma

Lauren Jin Suk Joo1,2, Jocelyn Weiss3, Anthony J Gill2,4

  • 11 Cancer Genetics Laboratory, Kolling Institute, Northern Sydney Local Health District, Sydney, Australia.

Insights

MicroRNA-153-3p acts as a tumor suppressor in medullary thyroid cancer. Systemic delivery of this microRNA, combined with tyrosine kinase inhibitors, shows promise for treating advanced MTC and overcoming resistance.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • Medullary thyroid carcinoma (MTC) causes significant cancer deaths due to limited treatment options.
  • Activating mutations in the REarranged during Transfection (RET) proto-oncogene drive MTC tumorigenesis.
  • Current tyrosine kinase inhibitors (TKIs) targeting RET show disappointing clinical outcomes.

Purpose of the Study:

  • To identify microRNAs (miRNAs) regulated by RET signaling in MTC.
  • To explore the therapeutic potential of these RET-regulated miRNAs.
  • To investigate miRNA replacement therapy combined with TKIs for MTC treatment.

Main Methods:

  • Small RNA sequencing of MTC cells before and after RET inhibition.
  • In vitro gain-of-function studies to assess miRNA effects on cell phenotypes.
  • Systemic delivery of miRNA using EDV™ nanocells in MTC xenografts to evaluate therapeutic efficacy and TKI response modulation.

Main Results:

  • Identified microRNA-153-3p (miR-153-3p) as a tumor-suppressive miRNA in MTC.
  • Targeted intravenous delivery of miR-153-3p inhibited MTC xenograft tumor growth.
  • Combined miR-153-3p and cabozantinib treatment enhanced tumor growth inhibition and reversed cabozantinib resistance.
  • miR-153-3p targets RPS6KB1 in the mTOR signaling pathway, reducing phosphorylation of Bcl-2 associated death promoter.

Conclusions:

  • miR-153-3p demonstrates significant tumor-suppressive activity in MTC.
  • Systemic miRNA replacement therapy combined with TKIs represents a novel therapeutic strategy for metastatic and progressive MTC.
  • This approach may overcome resistance to existing TKI treatments in MTC.

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