A survey of a large series of radiation- or chemically induced thymic lymphomas in (AKR X RF)F1, RF/J, 129/J, and C57BL/6J mouse strains for activated ras oncogenes showed that of the tumors containing transforming activity, in more than 75% of the cases this activity segregated with either K-ras or the N-ras gene. H-ras activity was never detected. The genetic background of the host influenced susceptibility to tumor induction and oncogene activation. The K-ras gene was preferentially activated over the N-ras gene (approximately 2:1) whether the inducing agent was radiation or the chemical N-nitrosomethylurea. The activating mutation for the K-ras gene was consistently identified as a GGT to GAT transition in codon 12. In contrast, several different mutations of the N-ras gene were identified and localized to codons 12, 13, or 61. Assessment of the allelic composition of the ras locus shows that some proportion of the tumors lost the normal ras allele.
We have surveyed a panel of induced murine lymphomas for c-ras gene mutations. The K-ras gene seems to be preferentially activated in our system, and there are at least two examples of concomitant K- and N-ras gene mutations in the same tumor. This indicates that in some cases additional ras mutations may contribute to tumorigenesis and is evidence for a role of ras activation in tumor progression.
Expression of several thymocyte surface antigens was monitored in a murine model system of thymic lymphoma induction in two different strains of mice. RF/J mice are sensitive to tumor induction by N-nitrosomethylurea (NMU) and by gamma-irradiation, while 129/J mice form tumors only upon NMU treatment. Latency periods for tumor formation were characteristically different depending upon the inducing agent and the mouse strain. We observed differences in thymic leukemia antigen and H-2K expression according to the mode of tumor induction and in relation to the mouse strain, implying multiple factors involved in target cell selection and tumor progression.