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Transfer of Manipulated Tumor-associated Neutrophils into Tumor-Bearing Mice to Study their Angiogenic Potential In Vivo
Published on: July 20, 2019
Type I interferon signaling pathway enhances immune-checkpoint inhibition in KRAS mutant lung tumors
Fernando Fernández-García1, Ana Fernández-Rodríguez1, Coral Fustero-Torre2
1Experimental Oncology Group, Molecular Oncology Program, Centro Nacional de Investigaciones Oncológicas, Madrid 28029, Spain.
Abstract:
Lung cancer is the leading cause of cancer mortality worldwide. KRAS oncogenes are responsible for at least a quarter of lung adenocarcinomas, the main subtype of lung cancer. After four decades of intense research, selective inhibitors of KRAS oncoproteins are finally reaching the clinic. Yet, their effect on overall survival is limited due to the rapid appearance of drug resistance, a likely consequence of the high intratumoral heterogeneity characteristic of these tumors. In this study, we have attempted to identify those functional alterations that result from KRAS oncoprotein expression during the earliest stages of tumor development. Such functional changes are likely to be maintained during the entire process of tumor progression regardless of additional co-occurring mutations. Single-cell RNA sequencing analysis of murine alveolar type 2 cells expressing a resident Kras oncogene revealed impairment of the type I interferon pathway, a feature maintained throughout tumor progression. This alteration was also present in advanced murine and human tumors harboring additional mutations in the p53 or LKB1 tumor suppressors. Restoration of type I interferon (IFN) signaling by IFN-β or constitutive active stimulator of interferon genes (STING) expression had a profound influence on the tumor microenvironment, switching them from immunologically "cold" to immunologically "hot" tumors. Therefore, enhancement of the type I IFN pathway predisposes KRAS mutant lung tumors to immunotherapy treatments, regardless of co-occurring mutations in p53 or LKB1.
Insights
KRAS-mutant lung cancers show early impairment of the type I interferon pathway. Restoring this pathway may make these tumors more responsive to immunotherapy, regardless of other mutations.
Area of Science:
- Oncology
- Immunology
- Molecular Biology
Background:
- Lung cancer is a leading cause of cancer mortality globally.
- KRAS oncogenes drive a significant portion of lung adenocarcinomas.
- Current KRAS inhibitors show limited survival benefits due to drug resistance and tumor heterogeneity.
Purpose of the Study:
- Identify early functional alterations caused by KRAS oncoprotein expression.
- Determine if these early changes persist throughout tumor progression.
- Investigate the potential of targeting these alterations to improve immunotherapy efficacy.
Main Methods:
- Single-cell RNA sequencing of murine alveolar type 2 cells with oncogenic Kras.
- Analysis of murine and human lung tumors with KRAS mutations and additional suppressor mutations (p53, LKB1).
- Intervention with type I interferon (IFN)-β and stimulator of interferon genes (STING) to restore IFN signaling.
Main Results:
- Early Kras activation impairs the type I interferon pathway in murine lung cells.
- This type I IFN pathway impairment is maintained in advanced KRAS-mutant tumors, even with p53 or LKB1 mutations.
- Restoring type I IFN signaling converts tumors from "cold" to "hot," enhancing the tumor microenvironment.
Conclusions:
- The type I interferon pathway is a critical early event in KRAS-driven lung tumorigenesis.
- Enhancing type I IFN signaling can overcome immune evasion in KRAS-mutant lung tumors.
- Targeting the type I IFN pathway holds promise for improving immunotherapy outcomes in diverse KRAS-mutant lung cancers.
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