Journal of Experimental & Clinical Cancer Research | |
Gastric cancer-derived mesenchymal stem cells prompt gastric cancer progression through secretion of interleukin-8 | |
Huiyi Wu1  Juan Huo1  Ping Zheng1  Shaolin Zhao1  Ting Zhang1  Huanhuan Zhang1  Xu Zhang3  Jin Yang1  Ying Zhou1  Wei Li2  | |
[1] Center of Research Laboratory, The First People’s Hospital of Lianyungang, 182 Tongguan Road, Lianyungang 222001, China;Department of Pathology, Xuzhou Medical College, 209 Tongshan Road, Xuzhou 221004, China;School of Medical Science and Laboratory Medicine, Jiangsu University, 301 Xuefu Road, Zhenjiang 212013, China | |
关键词: Angiogenesis; Migration; Proliferation; Interleukin-8; Gastric cancer; Mesenchymal stem cells; | |
Others : 1220696 DOI : 10.1186/s13046-015-0172-3 |
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received in 2015-02-02, accepted in 2015-05-08, 发布年份 2015 | |
【 摘 要 】
Background
Bone marrow mesenchymal stem cells (BM-MSCs) have been identified to be closely associated with tumor growth and progression. However, the roles of tumor-resident MSCs in cancer have not been thoroughly clarified. This study was to investigate the regulating effect of gastric cancer-derived MSCs (GC-MSCs) on gastric cancer and elucidate the underlying mechanism.
Methods
GC-MSCs were isolated from primary human gastric cancer tissues and characterized. The effect of GC-MSCs on gastric cancer cell proliferation was analyzed by MTT assay and colony formation assay. Transwell migration assay was performed to evaluate the influence of GC-MSCs in gastric cancer cell migration. The regulating effects of interactions between gastric cancer cells and GC-MSCs on their pro-angiogenic abilities were analyzed in a co-culture system, with the expression, and secretion of pro-angiogenic factors detected by RT-PCR and Luminex assay. Tube formation assay was used to further validate the angiogenic capability of gastric cancer cells or GC-MSCs. Cytokine profiles in the supernatant of GC-MSCs were screened by Luminex assay and neutralizing antibody was used to identify the key effective cytokines. The activations of Akt and Erk1/2 in gastric caner cells were detected by Western blot.
Results
GC-MSC treatment enhanced the proliferation and migration of BGC-823 and MKN-28 cells, which was more potently than MSCs from adjacent non-cancerous tissues (GCN-MSCs) or bone marrow (BM-MSCs). Higher expression levels of pro-angiogenic factors were detected in GC-MSCs than GCN-MSCs or BM-MSCs. After 10 % GC-MSC-CM treatment, BGC-823, and MKN-28 cells expressed increased levels of pro-angiogenic factors and facilitated tube formation more potently than cancer cells alone. Furthermore, GC-MSCs produced an extremely higher level of interleukin-8 (IL-8) than GCN-MSCs or BM-MSCs. Blockade of IL-8 by neutralizing antibody significantly attenuated the tumor-promoting effect of GC-MSCs. In addition, 10 % CM of IL-8-secreted GC-MSCs induced the activations of Akt or Erk1/2 pathway in BGC-823 and MKN-28 cells.
Conclusion
Tumor-resident GC-MSCs promote gastric cancer growth and progression more efficiently than GCN-MSCs or BM-MSCs through a considerable secretion of IL-8, which could be a possible target for gastric cancer therapy.
【 授权许可】
2015 Li et al.; licensee BioMed Central.
【 预 览 】
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【 参考文献 】
- [1]María BP, Pelayo C: Gastric cancer: overview. Colomb Med 2013, 44:192-201.
- [2]Ahmet B: Treatment options in patients with metastatic gastric cancer: current status and future perspectives. World J Gastroenterol 2014, 20:3905-15.
- [3]Yuan-Yu W, Li L, Zhong-Sheng Z, Yong-Xiang W, Zai-Yuan Y, Hou-Quan T: L1 and epithelial cell adhesion molecules associated with gastric cancer progression and prognosis in examination of specimens from 601 patients. J Exp Clin Cancer Res 2013, 32:66. BioMed Central Full Text
- [4]Long L, Zhihui Y, Weixing Z, Bing Y, Qunhao G, Jianpeng J, et al.: Decreased expression of IGFBP7 was a poor prognosis predictor for gastric cancer patients. Tumour Biol 2014, 35:8875-81.
- [5]Joanna B, Elodie V, Jérôme P, Sandrine M, Guy B, Etienne M, et al.: The critical role of the tumor microenvironment in shaping natural killer cell-mediated anti-tumor immunity. Front Immunol 2013, 4:490.
- [6]Quail DF, Joyce JA: Microenvironmental regulation of tumor progression and metastasis. Nat Med 2013, 19:1423-37.
- [7]Jaleh B, Yadollah O: Dysregulated pH in tumor microenvironment checkmates cancer therapy. BioImpacts 2013, 3:149-62.
- [8]Annarosa A, Olivia C, Lapo B: Interaction of tumour cells with their microenvironment: ion channels and cell adhesion molecules. A focus on pancreatic cancer. Philos Trans R Soc Lond B Biol Sci 2014, 369:1471-2970.
- [9]Venugopal T, Elizabeth LD, Clifford S, Subbaya S, Emil L: Tumor-stromal cross talk: direct cell-to-cell transfer of oncogenic microRNAs via tunneling nanotubes. Transl Res 2014, 164:359-65.
- [10]Tuula S, Marilena V, Ibrahim OB, Pia N, Carolina CB, Ayelet ZH, et al.: Insights into the role of components of the tumor microenvironment in oral carcinoma call for new therapeutic approaches. Exp Cell Res 2014, 325:58-64.
- [11]Andrea HJ, Yong XW, Peter W, Charles SC: Mesenchymal stromal cell dependent regression of pulmonary metastasis from Ewing’s. Front Pediatr 2014, 2:44.
- [12]Masanao N, Yoshiaki A, Kanna N, Hiroyuki I, Kei O, Suguru N, et al.: Mesenchymal stem cells cancel azoxymethane-induced tumor initiation. Stem Cells 2014, 32:913-25.
- [13]Zhao S, Shihua W, Robert CZ: The roles of mesenchymal stem cells in tumor inflammatory microenvironment. J Hematol Oncol 2014, 7:14. BioMed Central Full Text
- [14]Ting Z, Yuk WL, Yun FR, Tin YC, Xiao HJ, Gang L: Bone marrow-derived mesenchymal stem cells promote growth and angiogenesis of breast and prostate tumors. Stem Cell Res Ther 2013, 4:70. BioMed Central Full Text
- [15]Guangwen R, Xin Z, Ying W, Xin Z, Xiaodong C, Chunliang X, et al.: CCR2-dependent recruitment of macrophages by tumor-educated mesenchymal stromal cells promotes tumor development and is mimicked by TNF-α. Cell Stem Cell 2012, 11:812-24.
- [16]Eun-Kyung K, Hye-Jung K, Young-II Y, Jong TK, Min-Young C, Chang SC, et al.: Endogenous gastric-resident mesenchymal stem cells contribute to formation of cancer stroma and progression of gastric cancer. Korean J Pathol 2013, 47:507-18.
- [17]Jong-Hyuk K, Aric MF, Katie LA, Ashley JG, Milcah CS, Sally R, et al.: Interleukin-8 promotes canine hemangiosarcoma growth by regulating the tumor microenvironment. Exp Cell Res 2014, 323:155-64.
- [18]Qi S, Fengkai S, Ben W, Song L, Weibo N, Enyu L, et al.: Interleukin-8 promotes cell migration through integrin αvβ6 upregulation in colorectal cancer. Cancer Lett 2014, 354:245-53.
- [19]Ko EL, Pham NK, Yong X, Jung SP, Young EJ, Kyung KK, et al.: Helicobacter pylori and interleukin-8 in gastric cancer. World J Gastroenterol 2013, 19:8192-202.
- [20]Yin J, Zeng F, Wu N, Kang K, Yang Z, Yang H: Interleukin-8 promotes human ovarian cancer cell migration by epithelial–mesenchymal transition induction in vitro. Clin Transl Oncol 2014.
- [21]Lars LE, Ying E, Tone MT, Gustav PB, Ida RKB, Geir B: Up-regulation of CLDN1 in gastric cancer is correlated with reduced survival. BMC Cancer 2013, 13:586. BioMed Central Full Text
- [22]Liang-kuan B, Nan Z, Cheng L, Fu-Ding L, Tian-Xin L, Xu-Jun X, et al.: Kidney cancer cells secrete IL-8 to activate Akt and promote migration of mesenchymal stem cells. Urol Oncol 2014, 32:607-12.
- [23]Yun H, Chung HR, Jin AJ, Seong MK, Chang HJ, Sin-Soo J: IL-8 enhances the angiogenic potential of human bone marrow mesenchymal stem cells by increasing vascular endothelial growth factor. Cell Biol Int 2014, 38:1050-9.
- [24]Huiling C, Wenrong X, Hui Q, Wei Z, Yongmin Y, Hongxing Z, et al.: Mesenchymal stem cell-like cells derived from human gastric cancer tissues. Cancer Lett 2009, 274:61-71.
- [25]Pedro BS, Valentina G, Franco B, Paola C: Tumor microenvironment: Bone marrow-mesenchymal stem cells as key players. Biochim Biophys Acta 1836, 2013:321-35.
- [26]Anastasia G, Sven K, Michael G, Stefan A, Angela RW: Hypoxia-conditioned media allows species-specific attraction of bone marrow stromal cells without need for recombinant proteins. BMC Vet Res 2014, 10:56. BioMed Central Full Text
- [27]Ren G, Liu Y, Zhao X, Zhang J, Zheng B, Yuan ZR, et al.: Tumor resident mesenchymal stromal cells endow naïve stromal cells with tumor-promoting properties. Oncogene 2014, 33:4016-20.
- [28]Jianmei G, Hui Q, Li S, Xu Z, Wei Z, Ling H, et al.: Gastric cancer exosomes trigger differentiation of umbilical cord derived mesenchymal stem cells to carcinoma-associated fibroblasts through TGF-b/Smad pathway. Plos One 2012., 7Article ID e52465
- [29]Mitchell RC, Floriane MI, Sarah KB: Mesenchymal stem cells inhibit breast cancer cell migration and invasion through secretion of tissue inhibitor of metalloproteinase-1 and -2. Mol Carcinog 2014.
- [30]Ihn H, Miyong Y, Eun-Ok K, Bonglee K, Min-Hyung J, Sung-Hoon K: Umbilical cord tissue-derived mesenchymal stem cells induce apoptosis in PC-3 prostate cancer cells through activation of JNK and downregulation of PI3K/AKT signaling. Stem Cell Res Ther 2014, 5:54. BioMed Central Full Text
- [31]Scott AB, Laurence B, Yves ADC: Bone marrow-derived mesenchymal stromal cells promote survival and drug resistance in tumor cells. Mol Cancer Ther 2014, 13:962-75.
- [32]Chunfu Z, Wei Z, Yan X, Qiaolin C, Wei Z, Xiaochun S: Mesenchymal stem cells derived from breast cancer tissue promote the proliferation and migration of the MCF-7 cell line in vitro. Oncology Letters 2013, 6:1577-82.
- [33]Huang WH, Chang MC, Tsai KS, Hung MC, Chen HL, Hung SC: Mesenchymal stem cells promote growth and angiogenesis of tumors in mice. Oncogene 2013, 32:4343-54.