RAS signaling and anti-RAS therapy: lessons learned from genetically engineered mouse models, human cancer cells, and
1Department of Thoracic and Cardiovascular Surgery, The University of Texas MD Anderson Cancer Center, Houston, TX 77030, USA bfang@mdanderson.org.
Abstract:
Activating mutations of oncogenic RAS genes are frequently detected in human cancers. The studies in genetically engineered mouse models (GEMMs) reveal that Kras-activating mutations predispose mice to early onset tumors in the lung, pancreas, and gastrointestinal tract. Nevertheless, most of these tumors do not have metastatic phenotypes. Metastasis occurs when tumors acquire additional genetic changes in other cancer driver genes. Studies on clinical specimens also demonstrated that KRAS mutations are present in premalignant tissues and that most of KRAS mutant human cancers have co-mutations in other cancer driver genes, including TP53, STK11, CDKN2A, and KMT2C in lung cancer; APC, TP53, and PIK3CA in colon cancer; and TP53, CDKN2A, SMAD4, and MED12 in pancreatic cancer. Extensive efforts have been devoted to develop therapeutic agents that target enzymes involved in RAS posttranslational modifications, that inhibit downstream effectors of RAS signaling pathways, and that kill RAS mutant cancer cells through synthetic lethality. Recent clinical studies have revealed that sorafenib, a pan-RAF and VEGFR inhibitor, has impressive benefits for KRAS mutant lung cancer patients. Combination therapy of MEK inhibitors with either docetaxel, AKT inhibitors, or PI3K inhibitors also led to improved clinical responses in some KRAS mutant cancer patients. This review discusses knowledge gained from GEMMs, human cancer cells, and patient-related studies on RAS-mediated tumorigenesis and anti-RAS therapy. Emerging evidence demonstrates that RAS mutant cancers are heterogeneous because of the presence of different mutant alleles and/or co-mutations in other cancer driver genes. Effective subclassifications of RAS mutant cancers may be necessary to improve patients' outcomes through personalized precision medicine.
Insights
Activating RAS gene mutations drive early tumor formation but not metastasis. Understanding co-mutations in RAS-driven cancers is key for developing targeted therapies and personalized medicine approaches.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Activating mutations in oncogenic RAS genes are common drivers of human cancers.
- Genetically engineered mouse models (GEMMs) show Kras mutations lead to early tumors but rarely metastasis.
- Clinical studies reveal KRAS mutations in premalignant tissues and frequent co-mutations with other cancer drivers.
Purpose of the Study:
- To review current knowledge on RAS-mediated tumorigenesis and anti-RAS therapies.
- To highlight the heterogeneity of RAS-mutant cancers due to co-mutations.
- To emphasize the need for cancer subclassification for personalized medicine.
Main Methods:
- Review of studies using genetically engineered mouse models (GEMMs).
- Analysis of clinical specimens and patient-related data.
- Examination of therapeutic strategies targeting RAS signaling pathways.
Main Results:
- KRAS mutations predispose to lung, pancreas, and GI tract tumors in mice, but metastasis requires additional genetic changes.
- Human cancers with KRAS mutations often harbor co-mutations in genes like TP53, STK11, CDKN2A, KMT2C, APC, PIK3CA, SMAD4, and MED12.
- Clinical trials show promise for therapies like sorafenib and combination treatments (MEK inhibitors with docetaxel, AKT, or PI3K inhibitors).
Conclusions:
- RAS-mediated tumorigenesis is complex, influenced by co-mutations that affect cancer progression and treatment response.
- RAS-mutant cancers exhibit significant heterogeneity, necessitating effective subclassifications.
- Personalized precision medicine strategies are crucial for improving outcomes in patients with RAS-driven cancers.
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