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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.
Abstract:
KRAS mutations occur in over 90% of pancreatic ductal adenocarcinomas (PDACs). Despite recent advances in targeting oncogenic KRAS, tumors eventually acquire resistance. A more comprehensive understanding of the mechanisms connecting KRAS signaling to tumor progression could facilitate the development of effective therapies to improve the treatment of KRAS-driven malignancies. Here, we dissected how oncogenic KRAS reprograms post-transcriptional regulation in PDAC. Oncogenic KRAS altered AGO2 phosphorylation at tyrosine 393, expanded the miRNA-mRNA interaction network, and impaired both mRNA destabilization and translational repression. Mapping endogenous miRNA-mRNA interactions using AGO2 chimeric eCLIP combined with genome-wide measurements of mRNA stability and translational efficiency using SLAM-seq and Ribo-eCLIP revealed that miRNA targets in KRAS-mutant cells exhibited increased stability and translational efficiency, even when cognate miRNA levels were unchanged. The rewiring enriched pro-tumorigenic transcripts involved in GTPase signaling, autophagy, and metabolism, and it was accompanied by the assembly of enlarged, static processing bodies (P-bodies) in cell lines, mouse models, and patient tumors, an effect that could be reversed by inhibiting oncogenic KRAS. Expression of a phospho-mimetic AGO2 Y393E reproduced the effects of oncogenic KRAS, while a phospho-deficient AGO2 Y393A blocked them. These findings identify a mechanistically distinct post-transcriptional effector arm of KRAS signaling, link AGO2 Y393 phosphorylation to both silencing dysfunction and condensate remodeling, and reveal opportunities to target RNA regulation in PDAC.
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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