Journal of International Oncology››2013,Vol. 40››Issue (12): 924-926.doi:10.3760/cma.j.issn.1673-422X.2013.12.014
Previous ArticlesNext Articles
LIU Li-Min, LI Ji-Kun
Online:
2013-12-10Published:
2013-12-26Contact:
LI Ji-Kun E-mail:jkli65975@163.comLIU Li-Min, LI Ji-Kun. Epithelial-mesenchymal transition and gastric cancer[J]. Journal of International Oncology, 2013, 40(12): 924-926.
[1] Micalizzi DS, Farabaugh SM, Ford HL. Epithelialmesenchymal transition in cancer: parallels between normal development and tumor progression. J Mammary Gland Biol Neoplasia, 2010, 15(2): 117134. [2] Feng R, Xiao C, Zavros Y. The role of Sonic Hedgehog as a regulator of gastric function and differentiation. Vitam Horm, 2012, 88: 473489. [3] Zhang H, Liu L, Wang Y, et al. KLF8 involves in TGFbetainduced EMT and promotes invasion and migration in gastric cancer cells. J Cancer Res Clin Oncol, 2013, 139(6): 10331042. [4] Kim MA, Lee HS, Lee HE, et al. Prognostic importance of epithelialmesenchymal transitionrelated protein expression in gastric carcinoma. Histopathology, 2009, 54(4): 442451. [5] Otsuki S, Inokuchi M, Enjoji M, et al. Vimentin expression is associated with decreased survival in gastric cancer. Oncol Rep, 2011, 25(5): 12351242. [6] Okugawa Y, Inoue Y, Tanaka K, et al. Smad interacting protein 1 (SIP1) is associated with peritoneal carcinomatosis in intestinal type gastric cancer. Clin Exp Metastasis, 2013, 30(4): 417429. [7] Shin NR, Jeong EH, Choi CI, et al. Overexpression of Snail is associated with lymph node metastasis and poor prognosis in patients with gastric cancer. BMC Cancer, 2012, 12: 521. [8] Tian M, Neil JR, Schiemann WP. Transforming growth factorbeta and the hallmarks of cancer. Cell Signal, 2011, 23(6): 951962. [9] Wendt MK, Tian M, Schiemann WP. Deconstructing the mechanisms and consequences of TGFβinduced EMT during cancer progression. Cell Tissue Res, 2012, 347(1): 85101. [10] Ono Y, Hayashida T, Konagai A, et al. Direct inhibition of the transforming growth factorβ pathway by proteinbound polysaccharide through inactivation of Smad2 signaling. Cancer Sci, 2012, 103(2): 317324. [11] Matsuoka J, Yashiro M, Doi Y, et al. Hypoxia stimulates the EMT of gastric cancer cells through autocrine TGFβ signaling. PLoS One, 2013, 8(5): e62310. [12] Shinto O, Yashiro M, Kawajiri H, et al. Inhibitory effect of a TGFbeta receptor typeⅠ inhibitor, Ki26894, on invasiveness of scirrhous gastric cancer cells. Br J Cancer, 2010, 102(5): 844851. [13] Gauger KJ, Chenausky KL, Murray ME, et al. SFRP1 reduction results in an increased ensitivity to TGFβ signaling. BMC Cancer, 2011, 11: 59. [14] Zha L, Wang Z, Tang W, et al. Genomewide analysis of HMGA2 transcription factor binding sites by ChIP on chip in gastric carcinoma cells. Mol Cell Biochem, 2012, 364(12): 243251. [15] Zha L, Zhang J, Tang W, et al. HMGA2 elicits EMT by activating the Wnt/βcatenin pathway in gastric cancer. Dig Dis Sci, 2013, 58(3): 724733. [16] Kanzawa M, Semba S, Hara S, et al. WNT5A is a key regulator of the epithelialmesenchymal transition and cancer stem cell properties in human gastric carcinoma cells. Pathobiology, 2013, 80(5): 235244. [17] Tseng YC, Tsai YH, Tseng MJ, et al. Notch2induced COX2 expression enhancing gastric cancer progression. Mol Carcinog, 2012, 51(12): 939951. [18] Guo LY, Li YM, Qiao L, et al. Notch2 regulates matrix metallopeptidase 9 via PI3K/AKT signaling in human gastric carcinoma cell MKN45. World J Gastroenterol, 2012, 18(48): 72627270. [19] Hsu KW, Hsieh RH, Huang KH, et al. Activation of the Notch1/STAT3/Twist signaling axis promotes gastric cancer progression. Carcinogenesis, 2012, 33(8): 14591467. [20] Maitath MY, Ali S, Ahmad A, et al. Upregulation of sonic hedgehog contributes to TGFβ1 induced epithelial to mesenchymal transition in NSCLC cells. PLoS One, 2011, 6(1): el6068. [21] Yoo YA, Kang MH, Lee HJ, et al. Sonic hedgehog pathway promotes metastasis and lymphangiogenesis via activation of Akt, EMT, and MMP9 pathway in gastric cancer. Cancer Res, 2011, 71(22): 70617070. [22] Zhang Z, Liu S, Shi R, et al. miR27 promotes human gastric cancer cell metastasis by inducing epithelialtomesenchymal transition. Cancer Genet, 2011, 204(9): 486491. [23] Zhao X, Dou W, He L, et al. MicroRNA7 functions as an antimetastatic microRNA in gastric cancer by targeting insulinlike growth factor1 receptor. Oncogene, 2013, 32(11): 13631372. [24] Li F, Liu J, Li S. MicorRNA 106b~25 cluster and gastric cancer. Surg Oncol, 2013, 22(2): e710. [25] Yin Y, Grabowska AM, Clarke PA, et al. Helicobacter pylori potentiates epithelial: mesenchymal transition in gastric cancer: links to soluble HBEGF, gastrin and matrix metalloproteinase7. Gut, 2010, 59(8): 10371045. [26] Voon DC, Wang H, Koo JK, et al. Runx3 protects gastric epithelial cells against epithelialmesenchymal transitioninduced cellular plasticity and tumorigenicity. Stem Cells, 2012, 30(10): 20882099. |
[1] | Yuan Jian, Huang Yanhua.Diagnostic value of Hp-IgG antibody combined with serum DKK1 and sB7-H3 in early gastric cancer[J]. Journal of International Oncology, 2024, 51(6): 338-343. |
[2] | Wang Ying, Liu Nan, Guo Bing.Advances of antibody-drug conjugate in the therapy of metastatic breast cancer[J]. Journal of International Oncology, 2024, 51(6): 364-369. |
[3] | Yang Lin, Lu Ning, Wen Hua, Zhang Mingxin, Zhu Lin.Study on the clinical relationship between inflammatory burden index and gastric cancer[J]. Journal of International Oncology, 2024, 51(5): 274-279. |
[4] | Xie Shuping, Sun Yahong, Wang Chao.Prediction of efficacy of early-stage tumor markers combined with NLR and PLR for immunotherapy in gastric cancer[J]. Journal of International Oncology, 2024, 51(3): 157-165. |
[5] | Li Shuyue, Ma Chenying, Zhou Juying, Xu Xiaoting, Qin Songbing.Progress of radiotherapy in oligometastatic non-small cell lung cancer[J]. Journal of International Oncology, 2024, 51(3): 170-174. |
[6] | Liu Yulan, Jing Haiyan, Sun Jing, Song Wei, Sha Dan.Advances in predicting efficacy and prognostic markers of immunotherapy for gastric cancer[J]. Journal of International Oncology, 2024, 51(3): 175-180. |
[7] | Sun Guobao, Yang Qian, Zhuang Qingchun, Gao Binbin, Sun Xiaogang, Song Wei, Sha Dan.Research progress on the histopathological growth patterns of colorectal liver metastasis[J]. Journal of International Oncology, 2024, 51(2): 114-118. |
[8] | Zhang Lu, Jiang Hua, Lin Zhou, Ma Chenying, Xu Xiaoting, Wang Lili, Zhou Juying.Analysis of curative effect and prognosis of immune checkpoint inhibitor in the treatment of recurrent and metastatic cervical cancer[J]. Journal of International Oncology, 2023, 50(8): 475-483. |
[9] | Shao Huifang, Wang Xuehong, Lu Yongfu.Mechanism of action and clinical significance of CST1 in the progression of gastric cancer[J]. Journal of International Oncology, 2023, 50(8): 489-492. |
[10] | Zhu Siyu, Wang Xuehong, Li Wenqian, Liu Shu.Level of serum FABP1 and its relationship withHelicobacter pyloriinfection in patients with gastric cancer[J]. Journal of International Oncology, 2023, 50(6): 336-341. |
[11] | Quan Zhenhao, Xu Feipeng, Huang Zhe, Huang Xianjin, Chen Rihong, Sun Kaiyu, Hu Xu, Lin Lin.lncRNA FTX silencing inhibits gastric cancer cell proliferation through the miR-22-3p/NLRP3 inflammasome pathway[J]. Journal of International Oncology, 2023, 50(4): 202-207. |
[12] | Yang Lirong, Wang Yufeng.Construction of machine learning models for predicting the risk of postoperative distant metastasis recurrence in serous ovarian cancer[J]. Journal of International Oncology, 2023, 50(4): 220-226. |
[13] | Ji Wei, Guan Quanlin, Chen Yarui, Jiao Fuzhi, Luo Qianwen.Correlation between blood lipid level and gastric cancer[J]. Journal of International Oncology, 2023, 50(3): 183-185. |
[14] | Fan Shanlin, Wang Pinxiu, Kong Fei, Zhou Yujie, Yuan Wenzhen.Progress in the study of predictors of tumor regression grade after neoadjuvant chemotherapy for gastric cancer[J]. Journal of International Oncology, 2023, 50(2): 112-116. |
[15] | Ma Peihan, Zhang Lingming, Lu Ning, Zhang Mingxin.Effect of anesthesia on the recurrence and metastasis of hepatocellular carcinoma[J]. Journal of International Oncology, 2023, 50(2): 117-121. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||