Thymoquinone-induced conformational changes of PAK1 interrupt prosurvival MEK-ERK signaling in colorectal cancer
| dc.contributor.author | el-Baba, Chirine Omar | |
| dc.contributor.author | Mahadevan, Vijayalakshmi | |
| dc.contributor.author | Fahlbusch, Fabian Benedikt | |
| dc.contributor.author | Suma Mohan, S. | |
| dc.contributor.author | Rau, Tilmann T. | |
| dc.contributor.author | Gali-Muhtasib, Hala Uthman | |
| dc.contributor.author | Schneider-Stock, Regine | |
| dc.contributor.department | Department of Biology | |
| dc.contributor.faculty | Faculty of Arts and Sciences (FAS) | |
| dc.contributor.institution | American University of Beirut | |
| dc.date.accessioned | 2025-01-24T11:20:32Z | |
| dc.date.available | 2025-01-24T11:20:32Z | |
| dc.date.issued | 2014 | |
| dc.description.abstract | Background: Thymoquinone (TQ) was shown to reduce tumor growth in several cancer models both in vitro and in vivo. So far only a few targets of TQ, including protein kinases have been identified. Considering that kinases are promising candidates for targeted anticancer therapy, we studied the complex kinase network regulated by TQ.Methods: Novel kinase targets influenced by TQ were revealed by in silico analysis of peptide array data obtained from TQ-treated HCT116wt cells. Western blotting and kinase activity assays were used to determine changes in kinase expression patterns in colorectal cancer cells (HCT116wt, DLD-1, HT29). To study the viability/apoptotic effects of combining the PAK1 inhibitor IPA-3 and TQ, crystal violet assay and AnnexinV/PI staining were employed. Interactions between PAK1 and ERK1/2 were investigated by co-immunoprecipitation and modeled by docking studies. Transfection with different PAK1 mutants unraveled the role of TQ-induced changes in PAK1 phosphorylation and TQ ´s effects on PAK1 scaffold function.Results: Of the 104 proteins identified, 50 were upregulated ≥2 fold by TQ and included molecules in the AKT-MEK-ERK1/2 pathway. Oncogenic PAK1 emerged as an interesting TQ target. Time-dependent changes in two PAK1 phosphorylation sites generated a specific kinase profile with early increase in pPAKThr212 followed by late increase in pPAKThr423. TQ induced an increase of pERK1/2 and triggered the early formation of an ERK1/2-PAK1 complex. Modeling confirmed that TQ binds in the vicinity of Thr212 accompanied by conformational changes in ERK2-PAK1 binding. Transfecting the cells with the non-phosphorylatable mutant T212A revealed an increase of pPAKThr423 and enhanced apoptosis. Likewise, an increase in apoptosis was observed in cells transfected with both the kinase-dead K299R mutant and PAK1 siRNA. Using structural modeling we suggest that TQ interferes also with the kinase domain consequently disturbing its interaction with pPAKThr423, finally inhibiting MEK-ERK1/2 signaling and disrupting its prosurvival function. pERK1/2 loss was also validated in vivo.Conclusions: Our study shows for the first time that the small molecule TQ directly binds to PAK1 changing its conformation and scaffold function. Because TQ affects the central RAF/MEK/ERK1/2 pathway, the combination of TQ with targeted therapies is worth considering for future anticancer treatments. © 2014 El-Baba et al.; licensee BioMed Central Ltd. | |
| dc.identifier.doi | https://doi.org/10.1186/1476-4598-13-201 | |
| dc.identifier.eid | 2-s2.0-84906832789 | |
| dc.identifier.pmid | 25174975 | |
| dc.identifier.uri | http://hdl.handle.net/10938/25029 | |
| dc.language.iso | en | |
| dc.publisher | BioMed Central Ltd. | |
| dc.relation.ispartof | Molecular Cancer | |
| dc.source | Scopus | |
| dc.subject | Apoptosis | |
| dc.subject | Colorectal cancer | |
| dc.subject | Erk1/2 | |
| dc.subject | Kinome analysis | |
| dc.subject | Pak1 | |
| dc.subject | Scaffold function | |
| dc.subject | Thymoquinone | |
| dc.subject | Benzoquinones | |
| dc.subject | Binding sites | |
| dc.subject | Cell line, tumor | |
| dc.subject | Colorectal neoplasms | |
| dc.subject | Disulfides | |
| dc.subject | Gene expression regulation, neoplastic | |
| dc.subject | Ht29 cells | |
| dc.subject | Humans | |
| dc.subject | Map kinase signaling system | |
| dc.subject | Models, molecular | |
| dc.subject | Molecular docking simulation | |
| dc.subject | Naphthols | |
| dc.subject | P21-activated kinases | |
| dc.subject | Phosphorylation | |
| dc.subject | Protein conformation | |
| dc.subject | Crystal violet | |
| dc.subject | Lipocortin 5 | |
| dc.subject | Mitogen activated protein kinase | |
| dc.subject | P21 activated kinase 1 | |
| dc.subject | Propidium iodide | |
| dc.subject | Threonine | |
| dc.subject | Benzoquinone derivative | |
| dc.subject | Disulfide | |
| dc.subject | Ipa-3 compound | |
| dc.subject | Naphthol derivative | |
| dc.subject | P21 activated kinase | |
| dc.subject | Pak1 protein, human | |
| dc.subject | Article | |
| dc.subject | Computer model | |
| dc.subject | Conformational transition | |
| dc.subject | Controlled study | |
| dc.subject | Gene expression | |
| dc.subject | Genetic transfection | |
| dc.subject | Hct116 cell line | |
| dc.subject | Human | |
| dc.subject | Human cell | |
| dc.subject | Immunoprecipitation | |
| dc.subject | In vivo study | |
| dc.subject | Mutant | |
| dc.subject | Nucleotide sequence | |
| dc.subject | Protein analysis | |
| dc.subject | Protein binding | |
| dc.subject | Protein phosphorylation | |
| dc.subject | Signal transduction | |
| dc.subject | Validation process | |
| dc.subject | Western blotting | |
| dc.subject | Binding site | |
| dc.subject | Chemical structure | |
| dc.subject | Chemistry | |
| dc.subject | Colorectal tumor | |
| dc.subject | Drug effects | |
| dc.subject | Gene expression regulation | |
| dc.subject | Genetics | |
| dc.subject | Ht 29 cell line | |
| dc.subject | Metabolism | |
| dc.subject | Molecular docking | |
| dc.subject | Tumor cell line | |
| dc.title | Thymoquinone-induced conformational changes of PAK1 interrupt prosurvival MEK-ERK signaling in colorectal cancer | |
| dc.type | Article |
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