[1]Yuan JQ, Tsoi KK, Yang M, et al. Systematic review with network meta-analysis: comparative effectiveness and safety of strategies for preventing NSAID-associated gastrointestinal toxicity[J]. Aliment Pharmacol Ther, 2016, 43 (12):1262-1275.
[2]Yang M, He M, Zhao M, et al. Proton pump inhibitors for preventing non-steroidal anti-inflammatory drug induced gastrointestinal toxicity: a systematic review[J]. Curr Med Res Opin,2017, 33 (6): 973-980.
[3]Sostres C,Gargallo CJ, Lanas A.Nonsteroidal anti-inflammatory drugs and upper and lower gastrointestinal mucosal damage [J]. Arthritis Res Ther, 2013, 15 (S3): S3.
[4]Yandrapu H, Sarosiek J. Protective factors of the gastric and duodenal mucosa: an overview [J]. Curr Gastroenterol Rep, 2015, 17 (6): 24.
[5]陈光治, 张志芳. 胃大部分切除术与单纯修补术治疗胃溃疡穿孔疗效比较[J]. 现代仪器与医疗, 2016, 22 (2): 96-97.
[6]Kangwan N, Park JM, Hahm KB.Development of GI-safe NSAID; progression from the bark of willow tree to modern pharmacology[J]. Curr Opin Pharmacol, 2014, 19: 17-23.
[7]Liu R, Zhang CN, Hu ZB, et al.A five-microRNA signature identified from genome-wide serum microRNA expression profiling serves as a fingerprint for gastric cancer diagnosis [J]. Eur J Cancer, 2011, 47 (5): 784-791.
[8]Liu JJ, Wang X, Yang XN, et al. miRNA423-5p regulates cell proliferation and invasion by targeting trefoil factor 1 in gastric cancer cells [J]. Cancer Lett, 2014, 347 (1): 98-104.
[9]覃慧林, 张永峰, 王心怡, 等. 木瓜乙酸乙酯萃取部位对急性胃溃疡小鼠胃黏膜中miR-423-5p、TFF1和p53表达的影响 [J]. 中药药理与临床, 2016, 32 (3): 80-82.
[10]Liggett JL, Zhang X, Eling TE, et al. Anti-tumor activity of non-steroidal anti-inflammatory drugs: cyclooxygenase-independent targets [J]. Cancer Lett, 2014, 346 (2): 217-224.
[11]Zhao Y, Huang J, Zhang L, et al.MiR-133b is frequently decreased in gastric cancer and its overexpression reduces the metastatic potential of gastric cancer cells[J]. BMC Cancer, 2014, 14: 34.
[12]Nadeem A, Ashraf MR, Javed M, et al. Review-MicroRNAs: A new paradigm towards mechanistic insight of diseases [J]. Pak J Pharm Sci, 2018, 31 (5): 2017-2026.
[13]Hata A,Kashima R.Dysregulation of microRNA biogenesis machinery in cancer [J]. Crit Rev Biochem Mol Biol, 2016, 51 (3):121-134.
[14]Cha WZ, Fan RG, Miao YF, et al. MicroRNAs as novel endogenous targets for regulation and therapeutic treatments[J]. Medchemcomm, 2017, 9 (3):396-408.
[15]Tong F, Cao P, Yin Y, et al. MicroRNAs in gastric cancer: from benchtop to bedside [J]. Dig Dis Sci, 2014, 59 (1): 24-30.
[16]Aihara E, Engevik KA, Montrose MH.Trefoil Factor Peptides and Gastrointestinal Function[J]. Annu Rev Physiol, 2017, 79: 357-380.
[17]Busch M, Dünker N. Trefoil factor family peptides-friends or foes?[J]Biomol Concepts, 2015, 6 (5/6):343-359.
[18]Donley C, McClelland K, McKeen HD, et al. Identification of RBCK1 as a novel regulator of FKBPL: implications for tumor growth and response to tamoxifen[J]. Oncogene, 2014, 33 (26): 3441-3450.
[19]Judd LM, Chalinor HV, Walduck A, et al. TFF2 deficiency exacerbates weight loss and alters immune cell and cytokine profiles in DSS colitis, and this cannot be rescued by wild-type bone marrow[J]. Am J Physiol Gastrointest Liver Physiol, 2015, 308 (1): G12-G24.
[20]Liu JJ, Wang X, Yang XN, et al. miRNA423-5p regulates cell proliferation and invasion by targeting trefoil factor 1 in gastric cancer cells [J]. Cancer Lett, 2014, 347 (1): 98-104.
[21]Hoffmann W. TFF2, a MUC6-binding lectin stabilizing the gastric mucus barrier and more (Review) [J]. Int J Oncol, 2015, 47(3): 806-816.
[22]Kuzminov FI, Gorbunov MY. Energy dissipation pathways in photosystem 2 of the diatom, Phaeodactylum tricornutum, under high-light conditions [J]. Photosynth Res, 2016, 127 (2): 219-235.
[23]Goldenring JR. Pyloric metaplasia, pseudopyloric metaplasia, ulcer-associated cell lineage and spasmolytic polypeptide-expressing metaplasia: reparative lineages in the gastrointestinal mucosa[J]. J Pathol, 2018, 245 (2):132-137.
[24]Park DJ, Kim SE.The role of IL-10 in gastric spasmolytic polypeptide-expressing metaplasia-related carcinogenesis[J]. Gut Liver, 2017, 11 (6): 741-742.
[25]Hu JH, Shi Y, Wang C, et al.Role of intestinal trefoil factor in protecting intestinal epithelial cells from burn-induced injury[J]. Sci Rep, 2018, 8(1): 3201. doi: 10.1038/s41598-018-21282-4.
[26]Bijelic N, Belovari T, Tolui Levak M, et al. Localization of trefoil factor family peptide 3 (TFF3) in epithelial tissues originating from the three germ layers of developing mouse embryo[J]. Bosn J Basic Med Sci, 2017, 17 (3):241-247.
[27]Colucci R, Antonioli L, Bernardini N, et al. Nonsteroidal anti-inflammatory drug-activated gene-1 plays a role in the impairing effects of cyclooxygenase inhibitors on gastric ulcer healing[J].J Pharmacol Exp Ther, 2012, 342 (1):140-149.
[28]Yang MH, Kim J, Khan IA, et al. Nonsteroidal anti-inflammatory drug activated gene-1 (NAG-1) modulators from natural products as anti-cancer agents[J]. Life Sci, 2014, 100 (2):75-84.
[29]Woo SM, Min KJ, Kim S, et al.Silibinin induces apoptosis of HT29 colon carcinoma cells through early growth response-1 (EGR-1)-mediated non-steroidal anti-inflammatory drug-activated gene-1 (NAG-1) up-regulation[J]. Chem Biol Interact, 2014, 211: 36-43.
[30]Lim JH, Park JW, Min DS, et al. NAG-1 up-regulation mediated by EGR-1 and p53 is critical for quercetin-induced apoptosis in HCT116 colon carcinoma cells [J]. Apoptosis, 2007, 12: 411-421.
[31]Nakao H, Seko A, Ito Y, et al. PDI family protein ERp29 recognizes P-domain of molecular chaperone calnexin[J]. Biochem Biophys Res Commun, 2017, 487 (3):763-767.
[32]Shah AA, Leidinger P, Keller A, et al. The intestinal factor TFF3 and a miRNA network regulate murine caloric metabolism [J]. RNA Biology, 2011, 8 (1): 77-81.
[33]Miura S, Nozawa M, Nei M. Evolutionary changes of the target sites of two microRNAs encoded in the Hox gene cluster of Drosophila and other insect species [J]. Genome Biol Evol, 2011, 3 (1): 29-39.
[34]陈国彬,任建林.微小RNA423-5p调控三叶因子1基因表达及对胃黏膜上皮细胞生物学行为影响[D]. 福建:福建医科大学, 2015, 6-8.
[35]Khoder G, Al-Menhali AA, Al-Yassir F, et al.Potential role of probiotics in the management of gastric ulcer[J]. Exp Ther Med, 2016, 12 (1): 3-17.
[36]Ock CY, Park JM, Han YM, et al.Genetic ablation or pharmacologic inhibition of autophagy mitigated NSAID-associated gastric damages[J]. J Mol Med (Berl), 2017, 95 (4): 405-416.
[37]Kandasamy J, Huda S, Ambalavanan N, et al. Inflammatory signals that regulate intestinal epithelial renewal, differentiation, migration and cell death: Implications for necrotizing enterocolitis[J]. Pathophysiology, 2014, 21(1): 67-80.
[38]Goldenring JR. Pyloric metaplasia, pseudopyloric metaplasia, ulcer-associated cell lineage and spasmolytic polypeptide-expressing metaplasia: reparative lineages in the gastrointestinal mucosa[J]. J Pathol, 2018, 245 (2):132-137.
[39]Wang WZ, Li Z, Wang JW, et al. A functional polymorphism in TFF1 promoter is associated with the risk and prognosis of gastric cancer[J]. Int J Cancer, 2018, 142(9):1805-1816.
[40]Soutto M, Ahmed M, Katsha, et al. TFF1 Acquires its tumor suppressor functions through regulation of p53 [J]. Gastroenterology, 2014, 146 (5): S627-S627.
[41]Soutto M, Chen Z, Saleh MA, et al.TFF1 activates p53 through down-regulation of miR-504 in gastric cancer[J]. Oncotarget, 2014, 5 (14): 5663-5673.
[42]Busch M, Grobe-Kreul J, Wirtz JJ, et al. Reduction of the tumorigenic potential of human retinoblastoma cell lines by TFF1 overexpression involves p53/caspase signaling and miR-18a regulation[J]. Int J Cancer, 2017, 141 (3): 549-560.
[43]覃慧林, 张永峰, 贺海波, 等. 木瓜三萜抗吲哚美辛诱导RGM-1细胞凋亡的作用[J]. 中国临床药理学与治疗学, 2016, 21(12): 1347-1353.
[44]Yuseok Moon. NSAID-activated gene 1 and its implications for mucosal integrity and intervention beyond NSAIDs [J]. Pharmacol Res, 2017, 121:122-128. |