Synergistic killing of lung cancer cells by cisplatin and radiation via autophagy and apoptosis

被引:38
作者
Liu, Min [1 ,2 ]
Ma, Shumei [1 ]
Liu, Mingbo [1 ]
Hou, Yufei [1 ]
Liang, Bing [1 ]
Su, Xu [3 ]
Liu, Xiaodong [1 ,4 ]
机构
[1] Jilin Univ, Key Lab Radiobiol, Minist Hlth, Sch Publ Hlth, Changchun 130021, Jilin, Peoples R China
[2] Jilin Univ, Dept Radiotherapy, Hosp 1, Changchun 130021, Jilin, Peoples R China
[3] China Ctr Dis Control, Chinese Ctr Med Response Radiat Emergency, Natl Inst Radiol Protect, Beijing 100088, Peoples R China
[4] China Japan Union Hosp, Dept Radiol & Radiat Oncol, Changchun 130021, Jilin, Peoples R China
基金
高等学校博士学科点专项科研基金;
关键词
cisplatin; radiosensitivity; synergistic killing; lung cancer; autophagy; apoptosis; PROTEIN-KINASE; INHIBITION; DEATH; AUGMENTS; SURVIVAL; ARREST; MODEL; P21;
D O I
10.3892/ol.2014.2049
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Cisplatin is a commonly used drug Tor chemotherapy, however, whether it may be used synergistically with radiotherapy remains unclear. The present study investigated the underlying mechanisms of synergistic killing by radiosensitization and cisplatin, with a focus on the growth inhibition, apoptosis and autophagy of non-small cell human lung cancer cells in vitro and in a tumor xenograft in vivo. A549 cells were used for the in vitro experiments and divided into the following. four treatment groups: Sham-irradiated; conventional radiotherapy (CRT) of five doses of 2 Gy every day; hyperfractionated radiotherapy of five doses of 2 Gy (1 Gy twice a day at 4 h intervals) every day; and CRT plus cisplatin. A xenograft tumor-bearing C57BL/6 model was established for the in vivo experiments and the above-mentioned treatments were administered. MTT and colony formation assays were used to detect cell viability and western blotting was performed to detect the levels of protein expression. Monodansylcadaverine staining and the immunofluorescence technique were used to analyze the autophagy rate, while flow cytometry and immunohistochemistry were performed to detect the expression levels of the genes associated with apoptosis and autophagy, including microtubule-associated protein 1 light chain 3 (MAPLC3)-II, phosphoinositide 3-kinase (PI3K) III, Beclin1, phosphorylated protein kinase B (p-AKT), damage-regulated autophagy modulator (DRAM), B-cell lymphoma 2 (Bcl-2), Bcl-2-associated X protein, caspase-3 and p21. The MTT assay demonstrated that cisplatin exhibits a dose-dependent cytotoxicity in A549 cells and synergizes with radiation to promote the cell-killing effect. of radiation. In the xenograft mouse model of Lewis cells, cisplatin plus ionizing radiation (IR) (five doses of 2 Gy) yielded the most significant tumor suppression. The autophagic vacuoles, the ratio of MAPLC3-II to MAPLC3-I (LC3-II/LC3-I) and the levels of Beclin1 were found to increase in all treatment groups, with the most marked upregulation observed in the CRT plus cisplatin treatment group. In addition, caspase-3 processing was enhanced in the group treated with the combination of cisplatin with radiation, compared with the group treated with radiation alone. Fractionated IR resulted in a significant increase in p21 expression, which was further enhanced when combined with cisplatin. Furthermore, treatment with cisplatin and fractionated IR resulted in a significant elevation of the expression of the autophagy-related genes, PI3KIII, Beclin1 and DRAM1. However, the levels of p-AKT were observed to decline following exposure to fractionated IR in the presence or absence of cisplatin. As for the apoptosis signaling genes, the combination of cisplatin and fractionated IR therapy resulted in a significant decrease in Bcl-2 expression and a marked upregulation of p21 expression. The current study offers strong evidence that the combination of cisplatin with radiation strengthens the killing effect of radiation via pro-apoptotic and pro-autophagic cell death.
引用
收藏
页码:1903 / 1910
页数:8
相关论文
共 37 条
[1]   Autophagy delays apoptotic death in breast cancer cells following DNA damage [J].
Abedin, M. J. ;
Wang, D. ;
McDonnell, M. A. ;
Lehmann, U. ;
Kelekar, A. .
CELL DEATH AND DIFFERENTIATION, 2007, 14 (03) :500-510
[2]   Characterization of a 3-phosphoinositide-dependent protein kinase which phosphorylates and activates protein kinase B alpha [J].
Alessi, DR ;
James, SR ;
Downes, CP ;
Holmes, AB ;
Gaffney, PRJ ;
Reese, CB ;
Cohen, P .
CURRENT BIOLOGY, 1997, 7 (04) :261-269
[3]   The mTOR inhibitor RAD001 augments radiation-induced growth inhibition in a hepatocellular carcinoma cell line by increasing autophagy [J].
Altmeyer, Anais ;
Josset, Elodie ;
Denis, Jean-Marc ;
Gueulette, John ;
Slabbert, Jakobus ;
Mutter, Didier ;
Noel, Georges ;
Bischoff, Pierre .
INTERNATIONAL JOURNAL OF ONCOLOGY, 2012, 41 (04) :1381-1386
[4]   Cisplatin as a radiosensitizer in the treatment of locally advanced head and neck cancer [J].
Altundag, O ;
Altundag, K ;
Morandi, P ;
Hanrahan, E .
ORAL ONCOLOGY, 2005, 41 (04) :435-435
[5]   Autophagy inhibition enhances therapy-induced apoptosis in a Myc-induced model of lymphoma [J].
Amaravadi, Ravi K. ;
Yu, Duonan ;
Lum, Julian J. ;
Bui, Thi ;
Christophorou, Maria A. ;
Evan, Gerard I. ;
Thomas-Tikhonenko, Andrei ;
Thompson, Craig B. .
JOURNAL OF CLINICAL INVESTIGATION, 2007, 117 (02) :326-336
[6]   Blocked autophagy sensitizes resistant carcinoma cells to radiation therapy [J].
Apel, Anja ;
Herr, Ingrid ;
Schwarz, Heinz ;
Rodemann, H. Peter ;
Mayer, Andreas .
CANCER RESEARCH, 2008, 68 (05) :1485-1494
[7]   Inhibition of macroautophagy triggers apoptosis [J].
Boya, P ;
González-Polo, RA ;
Casares, N ;
Perfettini, JL ;
Dessen, P ;
Larochette, N ;
Métivier, D ;
Meley, D ;
Souquere, S ;
Yoshimori, T ;
Pierron, G ;
Codogno, P ;
Kroemer, G .
MOLECULAR AND CELLULAR BIOLOGY, 2005, 25 (03) :1025-1040
[8]   Targeting autophagy augments the anticancer activity of the histone deacetylase inhibitor SAHA to overcome Bcr-Abl-mediated drug resistance [J].
Carew, Jennifer S. ;
Nawrocki, Steffan T. ;
Kahue, Charissa N. ;
Zhang, Hui ;
Yang, Chunying ;
Chung, Linda ;
Houghton, Janet A. ;
Huang, Peng ;
Giles, Francis J. ;
Cleveland, John L. .
BLOOD, 2007, 110 (01) :313-322
[9]   Involvement of the pathway phosphatidylinositol-3-kinase/AKT-1 in the establishment of the survival response to ionizing radiation [J].
Cataldi, A ;
Zauli, G ;
Di Pietro, Z ;
Castorina, S ;
Rana, R .
CELLULAR SIGNALLING, 2001, 13 (05) :369-375
[10]   Profilin1 Sensitizes Pancreatic Cancer Cells to Irradiation by Inducing Apoptosis and Reducing Autophagy [J].
Cheng, H. ;
Li, J. ;
Liu, C. ;
Yao, W. ;
Xu, Y. ;
Frank, T. S. ;
Cai, X. ;
Shi, S. ;
Lu, Y. ;
Qin, Y. ;
Liu, L. ;
Xu, J. ;
Long, J. ;
Ni, Q. -X. ;
Li, M. ;
Yu, X. -J. .
CURRENT MOLECULAR MEDICINE, 2013, 13 (08) :1368-1375