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Induction of Invasive Transitional Cell Bladder Carcinoma in Immune Intact Human MUC1 Transgenic Mice: A Model for Immunotherapy Development
Published on: October 30, 2013
LncRNA-SLC16A1-AS1 induces metabolic reprogramming during Bladder Cancer progression as target and co-activator of
Stella Logotheti1, Stephan Marquardt1, Shailendra K Gupta2
1Institute of Experimental Gene Therapy and Cancer Research, Rostock University Medical Center, 18057 Rostock, Germany.
Abstract:
Long non-coding RNAs (lncRNAs) have emerged as integral components of E2F1-regulated gene regulatory networks (GRNs), but their implication in advanced or treatment-refractory malignancy is unknown. Methods: We combined high-throughput transcriptomic approaches with bioinformatics and structure modeling to search for lncRNAs that participate in E2F1-activated prometastatic GRNs and their phenotypic targets in the highly-relevant case of E2F1-driven aggressive bladder cancer (BC). RNA immunoprecipitation was performed to verify RNA-protein interactions. Functional analyses including qRT-PCR, immunoblotting, luciferase assays and measurement of extracellular fluxes were conducted to validate expression and target gene regulation. Results: We identified E2F1-responsive lncRNA-SLC16A1-AS1 and its associated neighboring protein-coding gene, SLC16A1/MCT1, which both promote cancer invasiveness. Mechanistically, upon E2F1-mediated co-transactivation of the gene pair, SLC16A1-AS1 associates with E2F1 in a structure-dependent manner and forms an RNA-protein complex that enhances SLC16A1/MCT1 expression through binding to a composite SLC16A1-AS1:E2F1-responsive promoter element. Moreover, SLC16A1-AS1 increases aerobic glycolysis and mitochondrial respiration and fuels ATP production by fatty acid β-oxidation. These metabolic changes are accompanied by alterations in the expression of the SLC16A1-AS1:E2F1-responsive gene PPARA, a key mediator of fatty acid β-oxidation. Conclusions: Our results unveil a new gene regulatory program by which E2F1-induced lncRNA-SLC16A1-AS1 forms a complex with its transcription factor that promotes cancer metabolic reprogramming towards the acquisition of a hybrid oxidative phosphorylation/glycolysis cell phenotype favoring BC invasiveness.
Insights
This study identifies a long non-coding RNA, SLC16A1-AS1, regulated by E2F1, that drives bladder cancer invasiveness by reprogramming cell metabolism. This discovery reveals a new E2F1-induced gene regulatory program promoting aggressive cancer phenotypes.
Area of Science:
- Molecular Biology
- Cancer Research
- Genomics
Background:
- Long non-coding RNAs (lncRNAs) are integral to E2F1-regulated gene networks.
- The role of lncRNAs in advanced or treatment-refractory cancers remains largely unknown.
Purpose of the Study:
- To investigate lncRNAs involved in E2F1-activated prometastatic gene regulatory networks.
- To identify phenotypic targets of these lncRNAs in aggressive bladder cancer (BC).
Main Methods:
- High-throughput transcriptomics, bioinformatics, and structure modeling were employed.
- RNA immunoprecipitation validated RNA-protein interactions.
- Functional analyses confirmed expression and target gene regulation.
Main Results:
- E2F1-responsive lncRNA-SLC16A1-AS1 and SLC16A1/MCT1 were identified as promoters of cancer invasiveness.
- SLC16A1-AS1 forms an RNA-protein complex with E2F1, enhancing SLC16A1/MCT1 expression.
- SLC16A1-AS1 promotes metabolic reprogramming, increasing glycolysis and fatty acid oxidation.
Conclusions:
- A novel E2F1-induced gene regulatory program involving lncRNA-SLC16A1-AS1 was uncovered.
- This program facilitates bladder cancer metabolic reprogramming towards a hybrid oxidative phosphorylation/glycolysis phenotype.
- The identified mechanism promotes BC invasiveness and suggests potential therapeutic targets.
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