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March 7, 2026Cancer Research0 citations

Abstract B025: Potential limitation of oncogenic KRAS-targeted therapy in lung cancer due to stromal remodeling

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BHBrock A. HumphriesUniversity of MichiganNKNiloofar KhairkhahANAli NamvarUniversity of Michigan

Key Points

  • To uncover how fibroblasts contribute to resistance in non-small cell lung cancer (NSCLC) following KRAS-targeted therapy.
  • Developed an orthotopic model of KRASG12D-driven NSCLC.
  • Utilized single-cell RNA sequencing of lung tumor tissues from mice with active and inhibited KRAS.
  • Analyzed populations of cancer-associated fibroblasts in response to KRAS inhibition.
  • Identified two distinct populations of cancer-associated fibroblasts with varying activation states.
  • Observed retention of an activated fibroblast population in KRAS-inhibited tumors contributing to therapeutic resistance.
  • Noted unexpected upregulation of EGFR in activated fibroblasts despite KRAS inhibition.

Abstract

Abstract RAS inhibitors have revolutionized personalized therapy for non-small cell lung cancer (NSCLC). However, acquired resistance is common, likely potentiated by alterations in the composition and architecture of the tumor microenvironment (TME). Interactions between tumor cells and stromal fibroblasts profoundly shape NSCLC cell behavior, impacting progression and outcome. Here, we sought to uncover mechanisms by which fibroblasts mediate resistance in NSCLC to inform the development of more effective therapeutic strategies. In our published L-iKRASG12D model of lung cancer, we identified oncogenic KRAS-dependent immune suppression that was partially reversed upon KRAS inhibition (Lasse-Opsahl however, while one cluster showed a less activated phenotype, with lower expression of CAF markers, the other was highly activated, expressing elevated levels of CAF markers, along with genes involved in tumor progression, such as extracellular matrix (ECM) proteins (COL1A1, COL1A2, FN1, TNC, DCN), ECM crosslinking proteins (LOX, LOXL2), proteins involved in TGF-β signaling (INHBA, TGFBR3, ACVR1), and cytokines (CCL2, IL6). These data suggest that CAF populations exhibit functional heterogeneity following KRAS inhibition, with the activated cluster sustaining a pro-tumorigenic phenotype. Genetic KRAS inhibition resulted in near-complete reversal of ECM gene expression (reduced expression of COL1A1, COL1A2, COL3A1, COL5A1, CXCL12 (SDF), FN1, HGF, MMP2, MMP14, LOX, LOXL2, TGFB1, TNC) in the activated CAF cluster. Yet a gene expression profile largely like the ‘ON’ group was retained in RMC-7977 treated tumors, suggesting that RMC-7977 fails to normalize these highly activated CAFs. Notably, EGFR remained upregulated in activated CAFs in RMC-7977-treated lungs compared to the ‘OFF’ group. This was unexpected, as EGFR-mediated resistance is typically attributed to cancer cells, not stromal cells. Our data suggest that the activated CAFs may contribute to persistent therapeutic resistance, introducing a stromal-specific mechanism of drug escape. Our findings reveal major changes in the stroma following KRASG12D inhibition and highlight potential TME-dependent mechanisms of resistance to KRAS inhibitors, which may inform next-generation therapeutic strategies in NSCLC. Citation Format: Brock Humphries, Niloofar Khairkhah, Ali Namvar, Mostafa M H. Ibrahim, Emily L. Lasse-Opsahl, Carlos E. Espinoza, Megan Faunce, Lily Rober, Marina Pasca di Magliano, Stefanie Galban. Potential limitation of oncogenic KRAS-targeted therapy in lung cancer due to stromal remodeling abstract. In: Proceedings of the AACR Special Conference in Cancer Research: RAS Oncogenesis and Therapeutics; 2026 Mar 5-8; Los Angeles, CA. Philadelphia (PA): AACR; Cancer Res 2026;86 (5Suppl₁): Abstract nr B025.

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Cite This Study

Humphries et al. (2026) studied this question.

synapsesocial.com/papers/69abc1955af8044f7a4ea69ehttps://doi.org/10.1158/1538-7445.rasoncother26-b025
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Abstract B023: Identification of TME-dependent resistance and emergence of persister cells to KRAS inhibition2026
  2. 2Abstract B029: Immune checkpoint mediated resistance to KRASG12D inhibition2026
  3. 3Abstract 6841: Mutation specific mechanisms of resistance to oncogenic KRAS inhibition2024
  4. 4Abstract LB088: Identifying mechanisms of immune suppression in KRAS-inhibitor resistance in NSCLC2026
  5. 5Abstract 1214: Investigating therapeutic strategies to promote immune rejection of KRASG12C inhibitor-resistant subpopulations in lung cancer2024