Inhibition of Radiation-Induced Lung Adenocarcinoma Cell Metastasis by Adenovirus of PIAS3 Overexpression Driven by Radiation-Inducible Promoter (Ad-pig3RRP-PIAS3)

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ABSTRACT

Radiotherapy is one of important approaches for pulmonary adenocarcinoma. However, many studies have shown that radiation can also enhance the ability of tumor cells metastasis, although the lung adenocarcinoma could be killed. The increased metastasis induced by radiation is associated with the activation of STAT3 in lung adenocarcinoma cells. Based on the importance role of STAT3 in cell proliferation and survival, we can construct an adenovirus vector of PIAS3 overexpress driven by radiation-induced promoter to inhibit the activation of STAT3 specifically. In this way, when STAT3 was activated by radiation, the expression of PIAS3 will be increased at the same time; this lead to the inhibition of invasion and metastasis caused by STAT3 in lung adenocarcinoma cells. These researches are expected to develop a novel target and method for radiotherapy and molecular therapy of lung adenocarcinoma.

Cite this paper

Gao, L. , Yu, Q. , Li, F. , Feng, J. , Lu, X. , Liu, Q. and Su, X. (2014) Inhibition of Radiation-Induced Lung Adenocarcinoma Cell Metastasis by Adenovirus of PIAS3 Overexpression Driven by Radiation-Inducible Promoter (Ad-pig3RRP-PIAS3). Journal of Cancer Therapy, 5, 1362-1365. doi: 10.4236/jct.2014.514136.

References

[1] Ohuchida, K., Mizumoto, K., Murakami, M., Qian, L.-W., Sato, N., Nagai, E., Matsumoto, K., Nakamura, T. and Tanaka, M. (2004) Radiation to Stromal Fibroblasts Increases Invasiveness of Pancrea-Tic Cancer Cells through Tumor-Stromal Interactions. Cancer Research, 64, 3215-3222.
http://dx.doi.org/10.1158/0008-5472.CAN-03-2464
[2] Qian, L.W., Mizumoto, K., Urashima, T., Nagai, E., Maehara, N., Sato, N., Nakajima, M. and Tanaka, M. (2002) Radiation-Induced Increase in Invasive Potential of Human Pancreatic Cancer Cells and Its Blockade by a Matrix Metalloproteinase Inhibitor, CGS27023. Clinical Cancer Research, 8, 1223-1227. http://clincancerres.aacrjournals.org/content /8/4/1223
[3] Canazza, A., Calatozzolo, C., Fumagalli, L., Bergantin, A., Ghielmetti, F., Fariselli, L., Croci, D., Salmaggi, A. and Ciusani, E. (2011) Increased Migration of a Human Glioma Cell Line after in Vitro CyberKnife Irradiation. Cancer Biology & Therapy, 12, 629-633.
http://dx.doi.org/10.4161/cbt.12.7.16862
[4] Park, C.M., Park, M.J., Kwak, H.J., Lee, H.C., Kim, M.S., Lee, S.H., Park, I.C., Rhee, C.H. and Hong, S.I. (2006) Ionizing Radiation Enhances Matrix Metalloproteinase-2 Secretion and Invasion of Glioma Cells through Src/Epidermal Growth Factor Receptor-Mediated p38/Akt and Phosphatidylinositol 3-Kinase/Akt Signaling Pathways. Cancer Research, 66, 8511-8519.
http://cancerres.aacrjournals.org/content/66/17/8511
[5] Cheng, J.C., Chou, C., Kuo, M.L. and Hsieh, C.Y. (2006) Radiation-Enhanced Hepatocellular Carcinoma Cell Invasion with MMP-9 Expression through PI3K/Akt/NF-κB Signal Transduction Pathway. Oncogene, 25, 7009-7018. http://dx.doi.org/10.1038/sj.onc.1209706
[6] Zhang, X., Li, X., Zhang, N., Yang, Q. and Moran, M.S. (2011) Low Doses Ionizing Radiation Enhances the Invasiveness of Breast Cancer Cells by Inducing Epithelial-Mesenchymal Transition. Biochemical and Biophysical Research Communications, 412, 188-192.
http://dx.doi.org/10.1016/j.bbrc.2011.07.074
[7] Kaliski, A., Maggiorella, L., Cengel, K.A., Mathe, D., Rouffiac, V., Opolon, P., Lassau, N., Bourhis, J. and Deutsch, E. (2005) Angiogenesis and Tumor Growth Inhibition by a Matrix Metalloproteinase Inhibitor Targeting Radiation-Induced Invasion. Molecular Cancer Therapeutics, 4, 1717-1728.
http://mct.aacrjournals.org/content/4/11/1717
[8] Guerra, L.E., Smith, R.M., Kaminski, A., Lagios, M.D. and Silverstein, M.J. (2008) Invasive Local Recurrence Increased after Radiation Therapy for Ductal Carcinoma in Situ. The American Journal of Surgery, 196, 552-555. http://dx.doi.org/10.1016/j.amjsurg.2008.06.008
[9] Li, F., Gao, L., Jiang, Q., Wang, Z., Dong, B., Yan, T. and Chen, X. (2013) Radiation Enhances the Invasion Abilities of Pulmonary Adenocarcinoma Cells via STAT3. Molecular Medicine Reports, 7, 1883-1888. http://dx.doi.org/10.3892/mmr.2013.1441
[10] Ho, J.N., Kang, G.Y., Lee, S.S., Kim, J., Bae, I.H., Hwang, S.G. and Um, H.D. (2010) Bcl-XL and STAT3 Mediate Malignant Actions of Gamma-Irradiation in Lung Cancer Cells. Cancer Science, 101, 1417-1423. http://dx.doi.org/10.1111/j.1349-7006.2010.01552.x
[11] Chung, C.D., Liao, J., Liu, B., Rao, X., Jay, P., Berta, P. and Shuai, K. (1997) Specific Inhibition of Stat3 Signal Transduction by PIAS3. Science, 278, 1803-1805.
http://dx.doi.org/10.1126/science.278.5344.1803
[12] Dabir, S., Kluge, A., Kresak, A., Yang, M., Fu, P., Groner, B., Wildey, G. and Dowlati, A. (2014) Low PIAS3 Expression in Malignant Mesothelioma Is Associated with Increased STAT3 Activation and Poor Patient Survival. Clinical Cancer Research, 20, 1-9. http://dx.doi.org/10.1158/1078-0432.CCR-14-1233
[13] Liu, Q.J., Zhang, D.Q., Zhang, Q.Z., Feng, J.B., Lu, X., Wang, X.R., Li, K.P., Chen, D.Q., Mu, X.F., Li, S. and Gao, L. (2014) Dose-Effect of Ionising Radiation-Induced PIG3 Gene Expression Alteration in Human Lymphoblastoid AHH-1 Cells and Human Peripheral Blood Lymphocytes. International Journal of Radiation Biology, 1-36. http://dx.doi:10.3109/09553002.2014.938374
[14] Yu, M., Chen, W. and Zhang, J. (2010) p53 Gene Therapy for Pulmonary Metastasis Tumor from Hepatocellular Carcinoma. Anti-Cancer Drugs, 21, 882-884.
http://dx.doi.org/10.1097/CAD.0b013e32833db1bb
[15] Li, J., Pan, J., Zhu, X., Su, Y., Bao, L., Qiu, S., Zou, C., Cai, Y., Wu, J. and Tham, I.W. (2013) Recombinant Adenovirus-p53 (Gendicine) Sensitizes a Pancreatic Carcinoma Cell Line to Radiation. Chinese Journal of Cancer Research, 25, 715-721.
http://dx.doi.org/10.3978/j.issn.1000-9604.2013.11.12
[16] Nam, D., Song, J., Kim, S.M., Chiang, S.Y., Kim, J.S., Chung, W.S., Jang, H.J., Jung, S.H., Na, Y.S., Kim, S.H., Shim, B.S. and Ahn, K.S. (2014) 8-Hydrocalamenene, Derived from Reynoutria Elliptica, Suppresses Constitutive STAT3 Activation, Inhibiting Proliferation and Enhancing Chemosensitization of Human Multiple Myeloma Cells. Journal of Medicinal Food, 17, 365-373.
http://dx.doi.org/10.1089/jmf.2012.2628
[17] Hsiao, H.H., Liu, Y.C., Yang, M.Y., Tsai, Y.F., Liu, T.C., Chang, C.S. and Lin, S.F. (2013) Decreased Expression of PIAS1 and PIAS3 in Essential Thrombocythemia Patients. Genetics and Molecular Research, 12, 5617-5622. http://dx.doi.org/10.4238/2013.November.18.10
[18] Gao, L., Li, F., Dong, B., Zhang, J., Rao, Y., Cong, Y., Mao, B. and Chen, X. (2010) Inhibition of STAT3 and ErbB2 Suppresses Tumor Growth, Enhances Radiosensitivity and Induces Mitochondria-Dependent Apoptosis in Glioma Cell. International Journal of Radiation Oncology-Biology-Physics, 77, 1223-1231. http://dx.doi.org/10.1016/j.ijrobp.2009.12.036
[19] Gao, L., Li, F.S., Chen, X.H., Liu, Q.W., Feng, J.B., Liu, Q.J. and Su, X. (2014) Radiation Induces Phosphorylation of STAT3 in a Dose- and Time-dependent Manner. Asian Pacific Journal of Cancer Prevention, 15, 6161-6164. http://dx.doi.org/10.7314/APJCP.2014.15.15.6161                                                         eww141204lx

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