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Establishment and Analysis of Tumor Slice Explants As a Prerequisite for Diagnostic Testing
Published on: November 29, 2018
Triple-layer dissection of the lung adenocarcinoma transcriptome: regulation at the gene, transcript, and exon levels
Min-Kung Hsu1, I-Ching Wu2, Ching-Chia Cheng3
1Department of Biological Science and Technology, National Chiao-Tung University, Hsinchu, Taiwan.
Abstract:
Lung adenocarcinoma is one of the most deadly human diseases. However, the molecular mechanisms underlying this disease, particularly RNA splicing, have remained underexplored. Here, we report a triple-level (gene-, transcript-, and exon-level) analysis of lung adenocarcinoma transcriptomes from 77 paired tumor and normal tissues, as well as an analysis pipeline to overcome genetic variability for accurate differentiation between tumor and normal tissues. We report three major results. First, more than 5,000 differentially expressed transcripts/exonic regions occur repeatedly in lung adenocarcinoma patients. These transcripts/exonic regions are enriched in nicotine metabolism and ribosomal functions in addition to the pathways enriched for differentially expressed genes (cell cycle, extracellular matrix receptor interaction, and axon guidance). Second, classification models based on rationally selected transcripts or exonic regions can reach accuracies of 0.93 to 1.00 in differentiating tumor from normal tissues. Of the 28 selected exonic regions, 26 regions correspond to alternative exons located in such regulators as tumor suppressor (GDF10), signal receptor (LYVE1), vascular-specific regulator (RASIP1), ubiquitination mediator (RNF5), and transcriptional repressor (TRIM27). Third, classification systems based on 13 to 14 differentially expressed genes yield accuracies near 100%. Genes selected by both detection methods include C16orf59, DAP3, ETV4, GABARAPL1, PPAR, RADIL, RSPO1, SERTM1, SRPK1, ST6GALNAC6, and TNXB. Our findings imply a multilayered lung adenocarcinoma regulome in which transcript-/exon-level regulation may be dissociated from gene-level regulation. Our described method may be used to identify potentially important genes/transcripts/exonic regions for the tumorigenesis of lung adenocarcinoma and to construct accurate tumor vs. normal classification systems for this disease.
Insights
Researchers analyzed lung adenocarcinoma transcriptomes to uncover RNA splicing alterations. This study identified key molecular changes and developed accurate methods for tumor detection, offering new insights into lung cancer development.
Area of Science:
- Oncology
- Molecular Biology
- Genomics
Background:
- Lung adenocarcinoma is a leading cause of cancer mortality.
- The role of RNA splicing in lung adenocarcinoma pathogenesis is not well understood.
Purpose of the Study:
- To perform a comprehensive, multi-level analysis of lung adenocarcinoma transcriptomes.
- To identify novel molecular markers for tumor detection and understand RNA splicing dysregulation.
Main Methods:
- Triple-level analysis (gene, transcript, exon) of 77 paired lung tumor and normal tissues.
- Development of an analysis pipeline to account for genetic variability.
- Construction of classification models using selected transcripts and exonic regions.
Main Results:
- Over 5,000 differentially expressed transcripts/exonic regions identified, enriched in nicotine metabolism and ribosomal functions.
- Classification models achieved 0.93-1.00 accuracy using selected transcripts/exonic regions, highlighting alternative exons in key regulators.
- Gene-based classification models yielded near 100% accuracy, identifying a core set of differentially expressed genes.
Conclusions:
- RNA splicing regulation in lung adenocarcinoma can be dissociated from gene-level regulation.
- The study provides a method for identifying critical molecular players in tumorigenesis.
- Accurate tumor vs. normal classification systems for lung adenocarcinoma were developed.
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