Successful drug development in oncology requires a deeper understanding of the functional consequences of the diverse genetic changes observed in human cancers. For example, responses to epidermal growth factor receptor (EGFR) inhibitors are observed in patients whose tumors express EGFR alleles with activating mutations, rather than in tumors overexpressing EGFR. Furthermore, antibodies against EGFR are ineffective in tumors bearing certain activating alleles of KRAS. Horizon Discovery has used its proprietary rAAV gene engineering technology to generate isogenic cell lines covering a range of mutations commonly found in cancer patients. Use of a non-tumorigenic ‘clean’ cell line background such as MCF10A allows specific evaluation of the mutations without any confounding factors due to the presence of other genetic alterations. Mutations introduced into cancer cell line backgrounds allow the contextual evaluation of a cancer related gene. Here we describe the use of isogenic cell line panels as powerful tools for investigating sensitivity and resistance markers to cancer therapeutics. Some 50% of human tumors exhibit p53 loss or inactivation. To investigate how p53 loss in combination with other common cancer-driving mutations may influence therapeutic responses, we have generated a suite of MCF10A isogenic cell lines covering some of the major cancer genotypes, either in isolation or on a TP53 (-/-) background. These genotypes include EGFR (delE746-A750/+), EGFR (L858R/+), KRAS (G12V/+), BRAF (V600E/+), BRAF (V600K/+) and PIK3CA (H1047R/+). Thus, we have been able to investigate the interaction effects of discrete mutations in molecularly defined, but more tumor-like cell models. One data highlight arose from the profiling of the EGFR mutant panel using small molecule EGFR inhibitors; in isolation, the introduction of common activating EGFR mutations L858R or deletion of E746-A750 led to increased sensitivity, recapitulating clinical findings. However, combining EGFR mutation with loss of p53 further enhanced the cell response. Through systematic profiling of this panel to targeted therapeutic agents such as gefinitib, selumetinib, vemurafenib, and pictilisib, we have identified interesting differential sensitivities, which can be directly attributable to introduction of a given mutation. Results such as these can enable better patient stratification for anticancer agents, and allow incorporation of molecular markers into clinical trial design for personalised therapeutic regimens. Citation Information: Mol Cancer Ther 2013;12(11 Suppl):A148. Citation Format: Annette S. Little, Jessica Hunt, David Hughes, Ruth Feltell, Daniel Gitterman, Rachel Leah, Holly Astley, Ramu Mangena, Kyla Grimshaw, Christopher Torrance. Modeling patient responses to targeted therapy with rAAV mediated gene editing. [abstract]. In: Proceedings of the AACR-NCI-EORTC International Conference: Molecular Targets and Cancer Therapeutics; 2013 Oct 19-23; Boston, MA. Philadelphia (PA): AACR; Mol Cancer Ther 2013;12(11 Suppl):Abstract nr A148.
Mutations in the genes encoding isocitrate dehydrogenase 1 and 2 (IDH1/2) occur in a variety of tumor types, resulting in production of the proposed oncometabolite, 2-hydroxyglutarate (2-HG). How mutant IDH and 2-HG alter signaling pathways to promote cancer, however, remains unclear. Additionally, there exist relatively few cell lines with IDH mutations. To examine the effect of endogenous IDH mutations and 2-HG, we created a panel of isogenic epithelial cell lines with either wild-type IDH1/2 or clinically relevant IDH1/2 mutations. Differences were noted in the ability of IDH mutations to cause robust 2-HG accumulation. IDH1/2 mutants that produce high levels of 2-HG cause an epithelial-mesenchymal transition (EMT)-like phenotype, characterized by changes in EMT-related gene expression and cellular morphology. 2-HG is sufficient to recapitulate aspects of this phenotype in the absence of an IDH mutation. In the cells types examined, mutant IDH-induced EMT is dependent on up-regulation of the transcription factor ZEB1 and down-regulation of the miR-200 family of microRNAs. Furthermore, sustained knockdown of IDH1 in IDH1 R132H mutant cells is sufficient to reverse many characteristics of EMT, demonstrating that continued expression of mutant IDH is required to maintain this phenotype. These results suggest mutant IDH proteins can reversibly deregulate discrete signaling pathways that contribute to tumorigenesis.