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Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
Carcinogen-specific mutations in preferred Ras-Raf pathway oncogenes directed by strand bias
Ross R Keller1,2, Shelley A Gestl1,2, Amy Q Lu1,2
1Jake Gittlen Laboratories for Cancer Research and.
Abstract:
Carcinogen exposures inscribe mutation patterns on cancer genomes and sometimes bias the acquisition of driver mutations toward preferred oncogenes, potentially dictating sensitivity to targeted agents. Whether and how carcinogen-specific mutation patterns direct activation of preferred oncogenes remains poorly understood. Here, mouse models of breast cancer were exploited to uncover a mechanistic link between strand-biased mutagenesis and oncogene preference. When chemical carcinogens were employed during Wnt1-initiated mammary tumorigenesis, exposure to either 7,12-dimethylbenz(a)anthracene (DMBA) or N-ethyl-N-nitrosourea (ENU) dramatically accelerated tumor onset. Mammary tumors that followed DMBA exposure nearly always activated the Ras pathway via somatic Hras(CAA61CTA) mutations. Surprisingly, mammary tumors that followed ENU exposure typically lacked Hras mutations, and instead activated the Ras pathway downstream via Braf(GTG636GAG) mutations. Hras(CAA61CTA) mutations involve an A-to-T change on the sense strand, whereas Braf(GTG636GAG) mutations involve an inverse T-to-A change, suggesting that strand-biased mutagenesis may determine oncogene preference. To examine this possibility further, we turned to an alternative Wnt-driven tumor model in which carcinogen exposures augment a latent mammary tumor predisposition in Apc(min) mice. DMBA and ENU each accelerated mammary tumor onset in Apc(min) mice by introducing somatic, "second-hit" Apc mutations. Consistent with our strand bias model, DMBA and ENU generated strikingly distinct Apc mutation patterns, including stringently strand-inverse mutation signatures at A:T sites. Crucially, these contrasting signatures precisely match those proposed to confer bias toward Hras(CAA61CTA) versus Braf(GTG636GAG) mutations in the original tumor sets. Our findings highlight a novel mechanism whereby exposure history acts through strand-biased mutagenesis to specify activation of preferred oncogenes.
Insights
Carcinogen exposure shapes cancer genomes by influencing oncogene mutations. This study reveals how specific chemical exposures create distinct DNA mutation patterns, directing cancer development and potentially affecting targeted therapy responses.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Carcinogen exposure influences cancer genome mutations and oncogene activation.
- The mechanisms linking carcinogen-specific mutation patterns to oncogene preference are not well understood.
- Understanding these links is crucial for predicting targeted therapy sensitivity.
Purpose of the Study:
- To investigate the mechanistic link between strand-biased mutagenesis and oncogene preference in mouse models of breast cancer.
- To determine how specific carcinogen exposures (DMBA, ENU) influence mutation patterns and oncogene activation.
- To explore the role of exposure history in directing cancer development.
Main Methods:
- Utilized mouse models of Wnt1-initiated mammary tumorigenesis and Apc(min) mice.
- Administered chemical carcinogens 7,12-dimethylbenz(a)anthracene (DMBA) and N-ethyl-N-nitrosourea (ENU).
- Analyzed somatic mutations in Hras, Braf, and Apc genes to identify mutation patterns and strand bias.
Main Results:
- DMBA exposure accelerated mammary tumor onset, primarily activating the Ras pathway via Hras(CAA61CTA) mutations (A-to-T sense strand).
- ENU exposure also accelerated tumor onset but activated the Ras pathway via Braf(GTG636GAG) mutations (T-to-A sense strand).
- Both carcinogens accelerated tumor onset in Apc(min) mice by introducing distinct, strand-inverse Apc mutations, matching the oncogene preference patterns.
Conclusions:
- Carcinogen exposure dictates specific, strand-biased mutation patterns.
- Strand-biased mutagenesis is a key mechanism determining oncogene preference.
- Cancer development is influenced by a history of exposure through directed oncogene activation.
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