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Overexpression of miR-519d in lung adenocarcinoma inhibits cell proliferation and invasion via the association of eIF4H
Author(s) -
Yong Bai,
Chunya Lu,
Guojun Zhang,
Yu Hou,
Yanjie Guo,
Heqi Zhou,
Xiaojingnan Ma,
Guoqiang Zhao
Publication year - 2017
Publication title -
tumor biology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.055
H-Index - 84
eISSN - 1423-0380
pISSN - 1010-4283
DOI - 10.1177/1010428317694566
Subject(s) - carcinogenesis , adenocarcinoma , cancer research , cell growth , microrna , lung cancer , lung , transfection , a549 cell , downregulation and upregulation , cell , immunohistochemistry , biology , cancer , chemistry , pathology , medicine , cell culture , gene , genetics , biochemistry
Lung cancer is one of the deadliest types of cancer worldwide due to its high mortality rate. Adenocarcinoma constitutes 20%–30% of all lung cancers. In recent years, studies on the mechanisms of lung tumorigenesis and development have in part focused on the microRNAs for their crucial role in the progress of different cancers. As for our study, we demonstrated that miR-519d was differently downregulated and eIF4H was significantly overexpressed in lung adenocarcinoma via the detection of quantitative real-time polymerase chain reaction compared with the adjacent normal tissues. Furthermore, Cell Counting Kit-8 assay, colony formation assay, xenograft tumor experiment, Ki67 immunohistochemistry assay and transwell assay were performed to explain that the upregulated miR-519d could inhibit the proliferation and invasion of A549 and H1299 cells. To further advance our understanding of the mechanisms of miR-519d, we performed the bioinformatics analysis and the luciferase report assay. The results from these procedures revealed eIF4H to be one of the targets of miR-519d. Downregulated eIF4H was analogous to the overexpressed miR-519d obtained from miR-519d agomir and si-eIF4H transfection. In summary, it can be concluded that miR-519d targets eIF4H in lung adenocarcinoma to inhibit cell proliferation and invasion. This mechanism may offer new insights into the tumorigenesis and development of lung adenocarcinoma.

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