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Effect of KRAS oncogene substitutions on protein behavior: implications for signaling and clinical outcome
Nathan T Ihle1, Lauren A Byers, Edward S Kim
1Department of Experimental Therapeutics, The Hamon Center for Therapeutic Oncology Research and Simmons Cancer Center, University of Texas Southwestern Medical Center, Dallas, TX, USA.
Background:
Mutations in the v-Ki-ras2 Kirsten rat sarcoma viral oncogene homolog (KRAS) play a critical role in cancer cell growth and resistance to therapy. Most mutations occur at codons 12 and 13. In colorectal cancer, the presence of any mutant KRas amino acid substitution is a negative predictor of patient response to targeted therapy. However, in non-small cell lung cancer (NSCLC), the evidence that KRAS mutation is a predictive factor is conflicting.
Methods:
We used data from a molecularly targeted clinical trial for 215 patients with tissues available out of 268 evaluable patients with refractory NSCLC to examine associations between specific mutant KRas proteins and progression-free survival and tumor gene expression. Transcriptome microarray studies of patient tumor samples and reverse-phase protein array studies of a panel of 67 NSCLC cell lines with known substitutions in KRas and in immortalized human bronchial epithelial cells stably expressing different mutant KRas proteins were used to investigate signaling pathway activation. Molecular modeling was used to study the conformations of wild-type and mutant KRas proteins. Kaplan-Meier curves and Cox regression were used to analyze survival data. All statistical tests were two-sided.
Results:
Patients whose tumors had either mutant KRas-Gly12Cys or mutant KRas-Gly12Val had worse progression-free survival compared with patients whose tumors had other mutant KRas proteins or wild-type KRas (P = .046, median survival = 1.84 months) compared with all other mutant KRas (median survival = 3.35 months) or wild-type KRas (median survival = 1.95 months). NSCLC cell lines with mutant KRas-Gly12Asp had activated phosphatidylinositol 3-kinase (PI-3-K) and mitogen-activated protein/extracellular signal-regulated kinase kinase (MEK) signaling, whereas those with mutant KRas-Gly12Cys or mutant KRas-Gly12Val had activated Ral signaling and decreased growth factor-dependent Akt activation. Molecular modeling studies showed that different conformations imposed by mutant KRas may lead to altered association with downstream signaling transducers.
Conclusions:
Not all mutant KRas proteins affect patient survival or downstream signaling in a similar way. The heterogeneous behavior of mutant KRas proteins implies that therapeutic interventions may need to take into account the specific mutant KRas expressed by the tumor.
Insights
Specific KRAS mutations in non-small cell lung cancer impact patient survival and signaling pathways differently. Understanding these KRAS variants is crucial for developing targeted therapies.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Mutations in Kirsten rat sarcoma viral oncogene homolog (KRAS) are key drivers of cancer growth and therapeutic resistance.
- While KRAS mutations are negative predictors in colorectal cancer, their role in non-small cell lung cancer (NSCLC) is debated.
- Most KRAS mutations are found at codons 12 and 13.
Purpose of the Study:
- To investigate the association between specific mutant KRAS proteins and progression-free survival in NSCLC patients.
- To examine the impact of different KRAS mutations on tumor gene expression and signaling pathways.
- To explore the conformational differences of wild-type and mutant KRAS proteins using molecular modeling.
Main Methods:
- Analysis of clinical trial data from 215 NSCLC patients with available tissue samples.
- Transcriptome microarray and reverse-phase protein array studies on NSCLC cell lines and patient tumors.
- Molecular modeling to study KRAS protein conformations and their interactions with signaling transducers.
Main Results:
- Patients with KRAS-Gly12Cys or KRAS-Gly12Val mutations exhibited significantly worse progression-free survival.
- KRAS-Gly12Asp mutations activated PI-3-K and MEK signaling pathways.
- KRAS-Gly12Cys and KRAS-Gly12Val mutations led to activated Ral signaling and reduced Akt activation.
Conclusions:
- Different KRAS mutations have heterogeneous effects on NSCLC patient survival and downstream signaling.
- The specific mutant KRAS protein expressed by a tumor influences its biological behavior.
- Therapeutic strategies for NSCLC may require tailoring based on the identified KRAS mutation.
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