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Identification of Novel microRNA Prognostic Markers Using Cascaded Wx, a Neural Network-Based Framework, in Lung Adenocarcinoma Patients

Title
Identification of Novel microRNA Prognostic Markers Using Cascaded Wx, a Neural Network-Based Framework, in Lung Adenocarcinoma Patients
Authors
Kim, Jeong SeonChun, Sang HoonPark, SungsooLee, SieunKim, Sae EunHong, Ji HyungKang, KeunsooKo, Yoon HoAhn, Young-Ho
Ewha Authors
안영호
SCOPUS Author ID
안영호scopus
Issue Date
2020
Journal Title
CANCERS
ISSN
2072-6694JCR Link
Citation
CANCERS vol. 12, no. 7
Keywords
microRNAlung adenocarcinomaprognosisCascaded Wxmachine learning
Publisher
MDPI
Indexed
SCIE; SCOPUS WOS
Document Type
Article
Abstract
The evolution of next-generation sequencing technology has resulted in a generation of large amounts of cancer genomic data. Therefore, increasingly complex techniques are required to appropriately analyze this data in order to determine its clinical relevance. In this study, we applied a neural network-based technique to analyze data from The Cancer Genome Atlas and extract useful microRNA (miRNA) features for predicting the prognosis of patients with lung adenocarcinomas (LUAD). Using the Cascaded Wx platform, we identified and ranked miRNAs that affected LUAD patient survival and selected the two top-ranked miRNAs (miR-374a and miR-374b) for measurement of their expression levels in patient tumor tissues and in lung cancer cells exhibiting an altered epithelial-to-mesenchymal transition (EMT) status. Analysis of miRNA expression from tumor samples revealed that high miR-374a/b expression was associated with poor patient survival rates. In lung cancer cells, the EMT signal induced miR-374a/b expression, which, in turn, promoted EMT and invasiveness. These findings demonstrated that this approach enabled effective identification and validation of prognostic miRNA markers in LUAD, suggesting its potential efficacy for clinical use.
DOI
10.3390/cancers12071890
Appears in Collections:
의과대학 > 의학과 > Journal papers
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