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Construction and Characterization of Long Non-Coding RNA-Associated Networks to Reveal Potential Prognostic Biomarkers in Human Lung Adenocarcinoma.

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TLDR
Wang et al. as mentioned in this paper constructed a scale-free lncRNA-m6A regulator network by merging all the high correlated lncRN-m 6A regulator pairs and found that these m6A-related lnc RNAs were high correlated with tumor immunity.
Abstract
Lung adenocarcinoma (LUAD) is one type of the malignant tumors with high morbidity and mortality. The molecular mechanism of LUAD is still unclear. Studies demonstrate that lncRNAs play crucial roles in LUAD tumorigenesis and can be used as prognosis biomarkers. Thus, in this study, to identify more robust biomarkers of LUAD, we firstly constructed LUAD-related lncRNA-TF network and performed topological analyses for the network. Results showed that the network was a scale-free network, and some hub genes with high clinical values were identified, such as lncRNA RP11-173A16 and TF ZBTB37. Module analysis on the network revealed one close lncRNA module, which had good prognosis performance in LUAD. Furthermore, through integrating ceRNAs strategy and TF regulatory information, we identified some lncRNA-TF positive feedback loops. Prognostic analysis revealed that ELK4- and BDP1-related feedback loops were significant. Secondly, we constructed the lncRNA-m6A regulator network by merging all the high correlated lncRNA-m6A regulator pairs. Based on the network analysis results, some key m6A-related lncRNAs were identified, such as MIR497HG, FENDRR, and RP1-199J3. We also investigated the relationships between these lncRNAs and immune cell infiltration. Results showed that these m6A-related lncRNAs were high correlated with tumor immunity. All these results provide a new perspective for the diagnostic biomarker and therapeutic target identification of LUAD.

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Journal ArticleDOI

RNA m6A methylation in cancer

TL;DR: The possibility of m6 A modifications serving as potential biomarkers for cancer diagnosis and targets for therapy is discussed and the profiles and biological functions of RNA m 6 A methylation on both mRNAs and ncRNAs are focused on.
Journal ArticleDOI

<scp> RNA m <sup>6</sup> A </scp> methylation in cancer

TL;DR: In this paper , the profiles and biological functions of RNA m6 A methylation on both mRNAs and non-coding RNAs are discussed, and the possibility of m6A modifications serving as potential biomarkers for cancer diagnosis and targets for therapy is discussed.
Journal ArticleDOI

Hypoxia-associated prognostic markers and competing endogenous RNA coexpression networks in lung adenocarcinoma

TL;DR: Wang et al. as discussed by the authors focused on hypoxia-associated molecular hallmarks in lung adenocarcinoma (LUAD) and built a network based on the competing endogenous RNA (ceRNA) theory.
References
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GEPIA: a web server for cancer and normal gene expression profiling and interactive analyses.

TL;DR: GEPIA (Gene Expression Profiling Interactive Analysis) fills in the gap between cancer genomics big data and the delivery of integrated information to end users, thus helping unleash the value of the current data resources.
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starBase v2.0: decoding miRNA-ceRNA, miRNA-ncRNA and protein–RNA interaction networks from large-scale CLIP-Seq data

TL;DR: This study developed starBase v2.0, which has been updated to provide the most comprehensive CLIP-Seq experimentally supported miRNA-mRNA and mi RNA-lncRNA interaction networks to date, and developed miRFunction and ceRNAFunction web servers to predict the function of miRNAs and other ncRNAs from themiRNA-mediated regulatory networks.
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FIMO: scanning for occurrences of a given motif.

TL;DR: Find Individual Motif Occurrences (FIMO), a software tool for scanning DNA or protein sequences with motifs described as position-specific scoring matrices, and provides output in a variety of formats, including HTML, XML and several Santa Cruz Genome Browser formats.
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The multilayered complexity of ceRNA crosstalk and competition

TL;DR: Understanding this novel RNA crosstalk will lead to significant insight into gene regulatory networks and have implications in human development and disease.
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The microRNA.org resource: targets and expression

TL;DR: The web resource provides users with functional information about the growing number of microRNAs and their interaction with target genes in many species and facilitates novel discoveries in microRNA gene regulation.
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