Related Experiment Video
Updated: Feb 17, 2026

A Genetically Engineered Mouse Model of Sporadic Colorectal Cancer
Published on: July 6, 2017
Kras mutant genetically engineered mouse models of human cancers are genomically heterogeneous
Wei-Jen Chung1, Anneleen Daemen1, Jason H Cheng2
1Bioinformatics & Computational Biology, Genentech, Inc., South San Francisco, CA 94080.
Abstract:
KRAS mutant tumors are largely recalcitrant to targeted therapies. Genetically engineered mouse models (GEMMs) of Kras mutant cancer recapitulate critical aspects of this disease and are widely used for preclinical validation of targets and therapies. Through comprehensive profiling of exomes and matched transcriptomes of >200 KrasG12D-initiated GEMM tumors from one lung and two pancreatic cancer models, we discover that significant intratumoral and intertumoral genomic heterogeneity evolves during tumorigenesis. Known oncogenes and tumor suppressor genes, beyond those engineered, are mutated, amplified, and deleted. Unlike human tumors, the GEMM genomic landscapes are dominated by copy number alterations, while protein-altering mutations are rare. However, interspecies comparative analyses of the genomic landscapes demonstrate fidelity between genes altered in KRAS mutant human and murine tumors. Genes that are spontaneously altered during murine tumorigenesis are also among the most prevalent found in human indications. Using targeted therapies, we also demonstrate that this inherent tumor heterogeneity can be exploited preclinically to discover cancer-specific and genotype-specific therapeutic vulnerabilities. Focusing on Kras allelic imbalance, a feature shared by all three models, we discover that MAPK pathway inhibition impinges uniquely on this event, indicating distinct susceptibility and fitness advantage of Kras-mutant cells. These data reveal previously unknown genomic diversity among KrasG12D-initiated GEMM tumors, places them in context of human patients, and demonstrates how to exploit this inherent tumor heterogeneity to discover therapeutic vulnerabilities.
Insights
Genetically engineered mouse models (GEMMs) of KRAS mutant cancers reveal significant genomic diversity. This heterogeneity can be exploited to discover new targeted therapies for KRAS-driven cancers.
Area of Science:
- Oncology
- Genomics
- Cancer Biology
Background:
- KRAS mutant tumors are resistant to targeted therapies.
- Genetically engineered mouse models (GEMMs) are crucial for preclinical cancer research.
- Understanding genomic heterogeneity in KRAS mutant cancers is vital for developing effective treatments.
Purpose of the Study:
- To comprehensively profile the genomic landscape of KRASG12D-initiated GEMM tumors.
- To compare genomic alterations in GEMMs with human KRAS mutant cancers.
- To explore the therapeutic potential of exploiting tumor heterogeneity in KRAS mutant cancers.
Main Methods:
- Whole-exome and transcriptome sequencing of over 200 GEMM tumors from lung and pancreatic cancer models.
- Interspecies comparative genomic analyses.
- Preclinical testing of targeted therapies, focusing on KRAS allelic imbalance and MAPK pathway inhibition.
Main Results:
- Discovered significant genomic heterogeneity (mutations, copy number alterations) within and between GEMM tumors.
- GEMM genomic landscapes are characterized by copy number alterations, unlike human tumors where mutations are more common.
- Demonstrated fidelity between genomic alterations in murine and human KRAS mutant cancers.
- Identified MAPK pathway inhibition as a vulnerability associated with KRAS allelic imbalance.
Conclusions:
- KRASG12D-initiated GEMM tumors exhibit substantial genomic diversity, mirroring human cancers.
- Exploiting inherent tumor heterogeneity in GEMMs can identify novel therapeutic vulnerabilities.
- Targeted therapies, like MAPK pathway inhibitors, show promise in addressing specific genomic features like KRAS allelic imbalance.
Related Concept Videos
Mouse Models of Cancer Study
The development of transgenic, knockout, and knock-in mice has led to an exponential increase in their use as model organisms in research,...
In-vitro Mutagenesis

