Oncogenic KRAS Rewires mRNA Stability and Translation through AGO2-Mediated Disruption of the miRNA pathway

Ziyue Z Yang1, Angelina S Bortoletto1, Mara G Cardenas1

  • 1Baylor College of Medicine Houston, TX United States.

Cancer Research
|August 24, 2026
PubMed

Insights

Oncogenic KRAS rewires RNA regulation in pancreatic cancer by altering AGO2 protein function. This leads to increased stability and translation of tumor-promoting genes, offering new therapeutic targets.

Area of Science:

  • Molecular Biology
  • Cancer Biology
  • RNA Biology

Background:

  • KRAS mutations are prevalent in pancreatic ductal adenocarcinomas (PDAC) and drive tumor progression.
  • Acquired resistance to KRAS-targeted therapies necessitates understanding downstream signaling pathways.
  • Post-transcriptional regulation is a critical layer of control in KRAS-driven cancers.

Purpose of the Study:

  • To investigate how oncogenic KRAS reprograms post-transcriptional regulation in PDAC.
  • To elucidate the role of AGO2 phosphorylation in KRAS-mediated RNA regulation.
  • To identify therapeutic strategies targeting RNA regulation in KRAS-mutant PDAC.

Main Methods:

  • AGO2 chimeric eCLIP to map miRNA-mRNA interactions.
  • SLAM-seq and Ribo-eCLIP for genome-wide mRNA stability and translation efficiency.
  • Cell lines, mouse models, and patient tumors were analyzed.
  • Expression of phospho-mimetic and phospho-deficient AGO2 mutants.

Main Results:

  • Oncogenic KRAS alters AGO2 phosphorylation at Y393, expanding miRNA-mRNA networks.
  • KRAS-mutant cells show increased mRNA stability and translation efficiency of miRNA targets.
  • Enlarged, static processing bodies (P-bodies) were observed in KRAS-mutant contexts.
  • Inhibition of oncogenic KRAS reversed these effects, including P-body remodeling.

Conclusions:

  • Oncogenic KRAS utilizes a distinct post-transcriptional effector pathway involving AGO2.
  • AGO2 Y393 phosphorylation links KRAS signaling to RNA silencing dysfunction and P-body changes.
  • Targeting RNA regulation, particularly AGO2 phosphorylation, presents a promising therapeutic avenue for PDAC.

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