Musashi RNA-Binding Proteins as Cancer Drivers and Novel Therapeutic Targets

Alexander E Kudinov1, John Karanicolas1, Erica A Golemis1

  • 1Program in Molecular Therapeutics, Fox Chase Cancer Center, Philadelphia, Pennsylvania.

Insights

Musashi-1 (MSI1) and Musashi-2 (MSI2) are RNA-binding proteins that drive cancer by regulating oncogenic proteins. Inhibiting these proteins shows promise as a novel cancer therapy.

Area of Science:

  • Molecular Biology
  • Cancer Research
  • Epigenetics

Background:

  • Aberrant gene expression in cancer can stem from epigenetic dysregulation.
  • Post-transcriptional regulators, like RNA-binding proteins (RBPs), significantly impact oncogenic signaling protein expression.
  • Musashi-1 (MSI1) and Musashi-2 (MSI2) are RBPs implicated in cancer initiation, progression, and drug resistance.

Purpose of the Study:

  • To review the role of Musashi proteins as cancer drivers.
  • To explore Musashi proteins as novel therapeutic targets in oncology.
  • To provide an overview of the regulatory functions of MSI1 and MSI2 in cancer.

Main Methods:

  • Literature review of studies on Musashi proteins in cancer.
  • Analysis of Musashi protein overexpression and prognostic significance in various cancers.
  • Examination of MSI1 and MSI2's regulation of mRNA stability and translation of key oncogenic pathways.

Main Results:

  • MSI1 and MSI2 are overexpressed in numerous cancers (colorectal, lung, pancreatic, glioblastoma, leukemias) and are prognostic of patient outcomes.
  • These proteins regulate critical oncogenic signaling pathways, including NUMB/Notch, PTEN/mTOR, TGFβ/SMAD3, MYC, and cMET.
  • MSI proteins contribute to cancer stem cell maintenance, invasion, metastasis, and drug resistance.

Conclusions:

  • Musashi proteins are crucial regulators in cancer development and progression.
  • Targeting MSI proteins, through inhibitors or RNA interference, presents a promising therapeutic strategy.
  • Understanding MSI function offers insights into mRNA-to-protein expression in tumors and aids in tumor profiling.

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