| Literature DB >> 31105425 |
Madeline Krentz Gober1, Robert M Flight2, Joshua Lambert3, Hunter Moseley2, Arnold Stromberg3, Esther P Black1.
Abstract
KRAS-activation mutations occur in 25% to 40% of lung adenocarcinomas and are a known mechanism of epidermal growth factor receptor inhibitor (EGFRI) resistance. There are currently no targeted therapies approved specifically for the treatment of KRAS-active non-small cell lung cancers (NSCLC). Attempts to target mutant KRAS have failed in clinical studies leaving no targeted therapy option for these patients. To circumvent targeting KRAS directly, we hypothesized that targeting proteins connected to KRAS function rather than targeting KRAS directly could induce cell death in KRAS-active NSCLC cells. To identify potential targets, we leveraged 2 gene expression data sets derived from NSCLC cell lines either resistant and sensitive to EGFRI treatment. Using a Feasible Solutions Algorithm, we identified genes with deregulated expression in KRAS-active cell lines and used STRING as a source for known protein-protein interactions. This process generated a network of 385 deregulated proteins including KRAS and other known mechanisms of EGFRI resistance. To identify candidate drug targets from the network for further study, we selected proteins with the greatest number of connections within the network and possessed an enzymatic activity that could be inhibited with an existing pharmacological agent. Of the potential candidates, the pharmacological impact of targeting casein kinase 2 (CK2) as a single target was tested, and we found a modest reduction in viability in KRAS-active NSCLC cells. MEK was chosen as a second target from outside the network because it lies downstream of KRAS and MEK inhibition can overcome resistance to CK2 inhibitors. We found that CK2 and MEK inhibition demonstrates moderate synergy in inducing apoptosis in KRAS-active NSCLC cells. These results suggest promise for a combination inhibitor strategy for treating KRAS-active NSCLC.Entities:
Keywords: cell signaling; drug discovery; lung cancer
Year: 2019 PMID: 31105425 PMCID: PMC6509975 DOI: 10.1177/1176935119843507
Source DB: PubMed Journal: Cancer Inform ISSN: 1176-9351
Figure 1.The G1-X-G2-induced network contains proteins involved in EGFRI resistance. The network of protein-protein interactions was simplified into communities of related proteins using the cluster_walktrap function in igraph. Putative community activities were determined by manual data mining and literature search. (A) Complete network of communities. (B) Magnification of central communities with putative actions and known EGFRI resistance mechanisms highlighted. EGFRI indicates epidermal growth factor receptor inhibitor.
Induced network members that interact directly with CK2α or CK2α′ and have available pharmacological inhibitors.
| Symbol | Gene name | Type |
|---|---|---|
| AKT1 | v-akt murine thymoma viral oncogene homolog 1 | Induced |
| CDK1 | Cyclin-dependent kinase 1 | Induced |
| CSNK2A1 | Casein kinase 2, alpha 1 polypeptide | Induced |
| CSNK2A2 | Casein kinase 2, alpha prime polypeptide | Induced |
| CTNNB1 | Catenin (cadherin-associated protein), beta 1, 88 kDa | Induced |
| HDAC1 | Histone deacetylase 1 | Induced |
| HSP90AA1 | Heat shock protein 90 kDa alpha (cytosolic), class A member 1 | Induced |
| HSP90AB1 | Heat shock protein 90 kDa alpha (cytosolic), class B member 1 | Induced |
| HSP90B1 | Heat shock protein 90 kDa beta (Grp94), member 1 | Induced |
| PSMA3 | Proteasome subunit alpha 3 | Induced |
| PSMA4 | Proteasome subunit alpha 4 | Induced |
| PTEN | Phosphatase and tensin homolog | Input |
| SIRT1 | Sirtuin 1 | Induced |
| SRC | SRC proto-oncogene, non-receptor tyrosine kinase | Induced |
Table members are from the complete network of 385 proteins that interact with CK2α or CK2α′ within one edge (Supplementary Table II-4, Appendix II). Abridged table members below represent those for which both pharmacological inhibitors exist and have at least entered Phase I clinical trials.
Figure 2.NSCLC cells resistant to EGFRI are most responsive to CK2 inhibition. Viability assays were performed on NSCLC treated with CX-4945 (A) KRAS-active, EGFRI-resistant NSCLC (A549 and H460 cells) treated with CX-4945. (B) EGFR-sensitive H1650 cells and PC9 cells. Values are log-transformed (n = 3). (C) Tabular depiction the EGFRI resistance and mutational statuses of each NSCLC analyzed.
Figure 3.Treatment with CX-4945 and MEK1 inhibitor, AZD6244, induces cleaved PARP in KRAS-active NSCLC. (A) A549 cells and (B) H460 cells. Cells were treated as described, and adherent and nonadherent cells were harvested for total protein. Cell death was measured by western blot analysis using the apoptotic marker, cleaved PARP. Phosphorylated and total MEK and CK2a were also measured. α-tubulin loading control is representative.
Figure 4.Synergy between CK2 and MEK inhibitors was observed in KRAS-active NSCLC. (A) A549 cells and (B) H460 cells. Cell viability was measured by resazurin viability assay to measure growth in the presence of CX-4945 in combination with AZD6244. Synergism was assessed using combination index (CI) values. CI values were then used to generate the heat maps and quadrant averages for each cell line.