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Updated: Nov 6, 2025

Detection of Lung Tumor Progression in Mice by Ultrasound Imaging
Published on: February 27, 2020
AGO2 promotes tumor progression in KRAS-driven mouse models of non-small cell lung cancer
Jean Ching-Yi Tien1,2, Seema Chugh1,2, Andrew E Goodrum1,2
1Michigan Center for Translational Pathology, University of Michigan, Ann Arbor, MI 48109.
Abstract:
Lung cancer is the deadliest malignancy in the United States. Non-small cell lung cancer (NSCLC) accounts for 85% of cases and is frequently driven by activating mutations in the gene encoding the KRAS GTPase (e.g., KRASG12D). Our previous work demonstrated that Argonaute 2 (AGO2)-a component of the RNA-induced silencing complex (RISC)-physically interacts with RAS and promotes its downstream signaling. We therefore hypothesized that AGO2 could promote KRASG12D-dependent NSCLC in vivo. To test the hypothesis, we evaluated the impact of Ago2 knockout in the KPC (LSL-Kras;p53;Cre) mouse model of NSCLC. In KPC mice, intratracheal delivery of adenoviral Cre drives lung-specific expression of a stop-floxed KRASG12D allele and biallelic ablation of p53 Simultaneous biallelic ablation of floxed Ago2 inhibited KPC lung nodule growth while reducing proliferative index and improving pathological grade. We next applied the KPC model, in which the Clara cell-specific CCSP-driven Cre activates KRASG12D and ablates a single p53 allele. In these mice, Ago2 ablation also reduced tumor size and grade. In both models, Ago2 knockout inhibited ERK phosphorylation (pERK) in tumor cells, indicating impaired KRAS signaling. RNA sequencing (RNA-seq) of KPC nodules and nodule-derived organoids demonstrated impaired canonical KRAS signaling with Ago2 ablation. Strikingly, accumulation of pERK in KPC organoids depended on physical interaction of AGO2 and KRAS. Taken together, our data demonstrate a pathogenic role for AGO2 in KRAS-dependent NSCLC. Given the prevalence of this malignancy and current difficulties in therapeutically targeting KRAS signaling, our work may have future translational relevance.
Insights
Argonaute 2 (AGO2) promotes KRAS-driven non-small cell lung cancer (NSCLC). Ablating AGO2 in mouse models significantly reduced tumor growth and impaired KRAS signaling, suggesting AGO2 as a potential therapeutic target for NSCLC.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Non-small cell lung cancer (NSCLC) is a leading cause of cancer death, often driven by KRAS mutations.
- Argonaute 2 (AGO2), a key component of the RNA-induced silencing complex, has been shown to interact with RAS and promote its signaling.
Purpose of the Study:
- To investigate the role of AGO2 in KRASG12D-driven NSCLC.
- To determine if AGO2 ablation impacts tumor growth and KRAS signaling in vivo.
Main Methods:
- Utilized two genetically engineered mouse models of NSCLC: KPC (LSL-Kras;p53;Cre) and KP C (CCSP-driven Cre).
- Performed Ago2 knockout in these models.
- Analyzed tumor growth, proliferation, pathological grade, and ERK phosphorylation (pERK).
- Conducted RNA sequencing (RNA-seq) on tumor nodules and organoids.
Main Results:
- Ago2 knockout significantly inhibited lung nodule growth, reduced proliferation, and improved pathological grade in both NSCLC models.
- AGO2 ablation led to decreased ERK phosphorylation (pERK), indicating impaired KRAS signaling.
- RNA-seq revealed impaired canonical KRAS signaling upon Ago2 ablation.
- pERK accumulation in KPC organoids was dependent on the physical interaction between AGO2 and KRAS.
Conclusions:
- AGO2 plays a pathogenic role in KRAS-dependent NSCLC.
- Targeting AGO2 may represent a novel therapeutic strategy for NSCLC, particularly given the challenges in directly targeting KRAS mutations.
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