Cisplatin Inhibits AhR Activation
- 1 Department of Neurosurgery, Akita University Graduate School of Medicine, Akita, Japan
- 2 Department of Life Science, Akita University Graduate School of Engineering Science, Akita, Japan
- 3 Department of Life Science, Akita University Graduate School of Engineering Science, Akita, Japan
- 4 Department of Life Science, Akita University Graduate School of Engineering Science, Akita, Japan
- 5 Department of Neurosurgery, Akita University Graduate School of Medicine, Akita, Japan
- 6 Department of Life Science, Akita University Graduate School of Engineering Science, Akita, Japan
- 7 Department of Life Science, Akita University Graduate School of Engineering Science, Akita, Japan
- 8 Department of Neurosurgery, Akita University Graduate School of Medicine, Akita, Japan
- 9 Department of Spinal Cord and Spine Surgery, Research Institute for Brain and Blood Vessels-Akita, Akita, Japan
- 10 Department of Neurosurgery, Akita University Graduate School of Medicine, Akita, Japan
- 11 Department of Life Science, Akita University Graduate School of Engineering Science, Akita, Japan
Abstract
The AhR binds to contain ligands, such as 2, 3, 7, 8-tetrachlorodibenzo-p-dioxin, 3-methylcholantrene, or β-naphthoflavone. The activation mechanism of AhR is not yet fully understood, but it is known that AhR associates with the molecular chaperone HSP90 in the cytoplasm. There are a few reports about the association or dissociation of AhR and HSP90, and which domain of HSP90 binds to AhR. We reported the association and activation mechanisms between HSP90 and AhR-PAS or AhR-bHLH. In the current study, we found that cisplatin inhibits the AhR activation. Although ATP and 17-DMAG have no effect on the dissociation of HSP90 from AhR, some contents of HSP90 were dissociated from AhR in the presence of cisplatin. We could detect the increase of CYP1A in the presence of 3-MC. On the contrary, the induction of CYP1A1 was inhibited in the presence of cisplatin. We couldn’t detect AhR in the HeLa cell soluble fraction in the presence of 50 μM cisplatin. In the presence of MG-132, we could detect AhR. These results suggested that AhR was dissociated from the HSP90 chaperone complex and processed during the protein proteasome degradation system in the presence of cisplatin.
- Schopf, F.H., Biebl, M.M. and Buchner, J. (2017) The HSP90 Chaperone Machinery. Nature Reviews Molecular Cell Biology, 18, 345-360. https://doi.org/10.1038/nrm.2017.20
- Sahasrabudhe, P., Rohrberg, J., Biebl, M.M., Rutz, D.A. and Buchner, J. (2017) The Plasticity of the Hsp90 Co-Chaperone System. Molecular Cell, 67, 947-961.
- Itoh, H., Ogura, M., Komatsuda, A., Wakui, H., Miura, A.B. and Tashima, Y. (1999) A Novel Chaperone-Activity-Reducing Mechanism of the 90-kDa Molecular Chaperone HSP90. The Biochemical Journal, 343, 697-703. https://doi.org/10.1042/bj3430697
- Ishida, R., Takaoka, Y., Yamamoto, S., Miyazaki, T., Otaka, M., Watanabe, S., Komatsuda, A., Wakui, H., Sawada, K., Kubota, H. and Itoh, H. (2008) Cisplatin Differently Affects Amino Terminal and Carboxyl Terminal Domains of HSP90. FEBS Letters, 582, 3879-3883. https://doi.org/10.1016/j.febslet.2008.10.029
- Henry, E.C. and Gasiewicz, T.A. (1993) Transformation of the Aryl Hydrocarbon Receptor to a DNA-Binding Form Is Accompanied by Release of the 90 kDa Heat-Shock Protein and Increased Affinity for 2,3,7,8-Tetrachlorodibenzo-p-Dioxin. The Biochemical Journal, 294, 95-101. https://doi.org/10.1042/bj2940095
- Hollingshead, B.D., Petrulis, J.R. and Perdew, G.H. (2004) The Aryl Hydrocarbon (Ah) Receptor Transcriptional Regulator Hepatitis B Virus X-Associated Protein 2 Antagonizes p23 Binding to Ah Receptor-Hsp90 Complexes and Is Dispensable for Receptor Function. The Journal of Biological Chemistry, 279, 45652-45661. https://doi.org/10.1074/jbc.M407840200
- Nukaya, M., Lin, B.C., Glover, E., Moran, S.M., Kennedy, G.D., Bradfield, C.A., Nukaya, M., Lin, B.C., Glover, E., Moran, S.M., Kennedy, G.D. and Bradfield, C.A. (2010) The Aryl Hydrocarbon Receptor-Interacting Protein (AIP) Is Required for Dioxin-Induced Hepatotoxicity But Not for the Induction of the Cyp1a1 and Cyp1a2 Genes. The Journal of Biological Chemistry, 285, 35599-35605. https://doi.org/10.1074/jbc.M110.132043
- Dietrich, C. and Kaina, B. (2010) The Aryl Hydrocarbon Receptor (AhR) in the Regulation of Cell-Cell Contact and Tumor Growth. Carcinogenesis, 31, 1319-1328. https://doi.org/10.1093/carcin/bgq028
- Tsuji, N., Fukuda, K., Nagata, Y., Okada, H., Haga, A., Hatakeyama, S., Yoshida, S., Okamoto, T., Hosaka, M., Sekine, K., Ohtaka, K., Yamamoto, S., Otaka, M., Grave, E. and Itoh, H. (2014) The Activation Mechanism of the Aryl Hydrocarbon Receptor (AhR) by Molecular Chaperone HSP90. FEBS Open Bio., 4, 796-803. https://doi.org/10.1016/j.fob.2014.09.003