[1] |
Sun C, Zhu J, Wu B, et al.Diagnostic and prognostic value of microRNAs in cholangiocarcinoma: A systematic review and metaanalysis[J].Cancer Manag Res, 2018, 10: 2125-2139.
|
[2] |
Shi T, Morishita A, Kobara H, et al.The role of microRNAs in cholangiocarcinoma[J].Int J Mol Sci, 2021, 22(14): 7627.
|
[3] |
Inoue J, Inazawa J.Cancer-associated miRNAs and their therapeutic potential[J].J Hum Genet, 2021, 66(9): 937-945.
|
[4] |
Bhootra S, Jill N, Shanmugam G, et al.DNA methylation and cancer: transcriptional regulation, prognostic, and therapeutic perspective[J].Med Oncol, 2023, 40(2): 71.
|
[5] |
Chen YJ, Luo J, Yang GY, et al.Mutual regulation between microRNA-373 and methyl-CpG-binding domain protein 2 in hilar cholangiocarcinoma[J].World J Gastroenterol, 2012, 18(29):3849-3861.
|
[6] |
Shah JA, Khattak S, Rauf MA, et al.Potential biomarkers of miR-371-373 gene cluster in tumorigenesis[J].Life (Basel), 2021,11(9): 984.
|
[7] |
Li H, Zhou ZQ, Yang ZR, et al.microRNA-191 acts as a tumor promoter by modulating the TET1-p53 pathway in intrahepatic cholangiocarcinoma[J].Hepatology, 2017, 66(1): 136-151.
|
[8] |
Ursu S, Majid S, Garger C, et al.Novel tumor suppressor role of miRNA-876 in cholangiocarcinoma[J].Oncogenesis, 2019, 8(8):42.
|
[9] |
Sarcognato S, Gringeri E, Fassan M, et al.Prognostic role of BAP-1 and PBRM-1 expression in intrahepatic cholangiocarcinoma[J].Virchows Arch, 2019, 474(1): 29-37.
|
[10] |
Wang LJ, He CC, Sui X, et al.miR-21 promotes intrahepatic cholangiocarcinoma proliferation and growth in vitro and in vivo by targeting PTPN14 and PTEN[J].Oncotarget, 2015, 6(8): 5932-5946.
|
[11] |
Liu CH, Huang Q, Jin ZY, et al.miR-21 and KLF4 jointly augment epithelial-mesenchymal transition via the Akt/ERK1/2 pathway[J].Int J Oncol, 2017, 50(4): 1109-1115.
|
[12] |
Zhang JW, Wang X, Li GC, et al.miR-30a-5p promotes cholangiocarcinoma cell proliferation through targeting SOCS3[J].J Cancer, 2020, 11(12): 3604-3614.
|
[13] |
Hu ZG, Zheng CW, Su HZ, et al.microRNA-329-mediated PTTG1 downregulation inactivates the MAPK signaling pathway to suppress cell proliferation and tumor growth in cholangiocarcinoma[J].J Cell Biochem, 2019, 120(6): 9964-9978.
|
[14] |
Liao CH, Liu Y, Wu YF, et al.microRNA-329 suppresses epithelial-to-mesenchymal transition and lymph node metastasis in bile duct cancer by inhibiting laminin subunit beta 3[J].J Cell Physiol, 2019, 234(10): 17786-17799.
|
[15] |
Fu W, Yu G, Liang J, et al.miR-144-5p and miR-451a inhibit the growth of cholangiocarcinoma cells through decreasing the expression of ST8SIA4[J].Front Oncol, 2020, 10: 563486.
|
[16] |
Chen C, Jiang J, Fang M, et al.microRNA-129-2-3p directly targets Wip1 to suppress the proliferation and invasion of intrahepatic cholangiocarcinoma[J].J Cancer, 2020, 11(11): 3216-3224.
|
[17] |
Ma J, Weng L, Wang Z, et al.miR-124 induces autophagy-related cell death in cholangiocarcinoma cells through direct targeting of the EZH2-STAT3 signaling axis[J].Exp Cell Res, 2018, 366(2):103-113.
|
[18] |
Xu Z, Liu G, Zhang M, et al.miR-122-5p inhibits the proliferation, invasion and growth of bile duct carcinoma cells by targeting ALDOA[J].Cell Physiol Biochem, 2018, 48(6): 2596-2606.
|
[19] |
Chang W, Wang Y, Li W, et al.microRNA-551b-3p inhibits tumour growth of human cholangiocarcinoma by targeting cyclin D1[J].J Cell Mol Med, 2019, 23(8): 4945-4954.
|
[20] |
Cao K, Sun L, Zhang Y, et al.Overpression of miR-29b suppresses the proliferation and induces apoptosis of cholangiocarcinoma cells[J].Nan Fang Yi Ke Da Xue Xue Bao, 2018, 38(10): 1234-1238.
|
[21] |
Cao K, Li B, Zhang YW, et al.miR-29b restrains cholangiocarcinoma progression by relieving DNMT3B-mediated repression of CDKN2B expression[J].Aging (Albany NY), 2021, 13(4): 6055-6065.
|
[22] |
Liu B, Hu Y, Qin L, et al.microRNA-494-dependent WDHDI inhibition suppresses epithelial-mesenchymal transition, tumor growth and metastasis in cholangiocarcinoma[J].Dig Liver Dis,2019, 51(3): 397-411.
|
[23] |
Gao J, Dai C, Yu X, et al.Upregulated microRNA-194 impairs stemness of cholangiocarcinoma cells through the Rho pathway via inhibition of ECT2[J].J Cell Biochem, 2020, 121(10): 4239-4250.
|
[24] |
Loosen SH, Lurje G, Wiltberger G, et al.Serum levels of miR-29,miR-122, miR-155 and miR-192 are elevated in patients with cholangiocarcinoma[J].PLoS One, 2019, 14(1): e0210944.
|
[25] |
Han HS, Kim MJ, Han JH, et al.Bile-derived circulating extracellular miR-30d-5p and miR-92a-3p as potential biomarkers for cholangiocarcinoma[J].Hepatobiliary Pancreat Dis Int, 2020, 19(1): 41-50.
|
[26] |
Salem P, Ghazala RA, El Gendi AM, et al.The association between circulating microRNA-150 level and cholangiocarcinoma[J].J Clin Lab Anal, 2020, 34(11): e23397.
|
[27] |
Gao L, Yang X, Zhang H, et al.Inhibition of miR-10a-5p suppresses cholangiocarcinoma cell growth through downregulation of Akt pathway[J].Onco Targets Ther, 2018, 11: 6981-6994.
|
[28] |
Cheng Q, Feng F, Zhu L, et al.Circulating miR-106a is a novel prognostic and lymph node metastasis indicator for cholangiocarcinoma[J].Sci Rep, 2015, 5: 16103.
|
[29] |
Zhou Z, Ma J.miR-378 serves as a prognostic biomarker in cholangiocarcinoma and promotes tumor proliferation, migration,and invasion[J].Cancer Biomark, 2019, 24(2): 173-181.
|
[30] |
乌吉斯古楞, 哈斯高娃.mir-98-5p、ALKBH1 在肝门部胆管癌组织中表达及与临床病理特征的关系[J/OL].中华普外科手术学杂志(电子版), 2024, 18(2): 184-187.
|
[31] |
Yao Y, Jiao D, Liu Z, et al.Novel miRNA predicts survival and prognosis of cholangiocarcinoma based on RNA-seq data and in vitro experiments[J].Biomed Res Int, 2020, 2020: 5976127.
|
[32] |
Qin X, Song Y.Bioinformatics analysis identifies the estrogen receptor 1 (ESR1) Gene and hsa-miR-26a-5p as potential prognostic biomarkers in patients with intrahepatic cholangiocarcinoma[J].Med Sci Monit, 2020, 26: e921815.
|
[33] |
Carotenuto P, Hedayat S, Fassan M, et al.Modulation of biliary cancer chemo-resistance through microRNA-mediated rewiring of the expansion of CD133+ cells[J].Hepatology, 2020, 72(3): 982-996.
|
[34] |
Wu J, Yang B, Zhang Y, et al.miR-424-5p represses the metastasis and invasion of intrahepatic cholangiocarcinoma by targeting ARK5[J].Int J Biol Sci, 2019, 15(8): 1591-1599.
|