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Updated: May 12, 2025

Inducible and Reversible Dominant-negative DN Protein Inhibition
Published on: January 7, 2019
Retroelement co-option disrupts the cancer transcriptional programme
Jane Loong1, Rachael Thompson1, Callum Hall1
1Retroviral Immunology Laboratory, The Francis Crick Institute, 1 Midland Road, London, NW1 1 AT, UK.
Background:
Transcriptional activation of otherwise repressed retrotransposable elements (RTEs) is a hallmark of cancer, shaping tumour progression and immunogenicity by multifaceted, yet incompletely understood, mechanisms.
Methods:
We used an extended pan-cancer transcriptome assembly to identify potential effects of RTEs on the genes within which they have integrated or those in proximity. These were subsequently verified in test cases by further analysis of transcriptional profiles in cancer patient data, and by in vitro studies involving restoration of gene activity, and proliferation and migration assays in cancer cell lines.
Results:
We report that cancer-specific transcriptional activation of RTEs causes frequent reduction or loss of gene function. Exonisation and alternative splicing of RTEs creates non-functional RNA and protein isoforms and derepressed RTE promoter activity initiates antisense transcription, both at the expense of the canonical isoforms. Contrary to theoretical expectation, transcriptionally activated RTEs affect genes with established tumour-promoting functions, including the common essential RNGTT and the lung cancer-promoting CHRNA5 genes. Furthermore, the disruptive effect of RTE activation on adjacent tumour-promoting genes is associated with slower disease progression in clinical data, whereas experimental restoration of gene activity enhances tumour cell growth and invasiveness in vitro.
Conclusions:
These findings underscore the gene-disruptive potential of seemingly innocuous germline RTE integrations, unleashed only by their transcriptional utilisation in cancer. They further suggest that such metastable RTE integrations are co-opted as sensors of the epigenetic and transcriptional changes occurring during cellular transformation and as executors that disrupt the function of tumour-promoting genes.
Insights
Cancer involves the activation of repressed retrotransposable elements (RTEs), disrupting tumor-promoting genes and affecting cancer progression. These elements act as sensors and disruptors during cellular transformation.
Area of Science:
- Genomics
- Cancer Biology
- Molecular Oncology
Background:
- Retrotransposable elements (RTEs) activation is a key feature of cancer, influencing tumor progression and immunity through poorly understood mechanisms.
- Understanding the impact of RTEs on host gene function is crucial for cancer research.
Purpose of the Study:
- To investigate the functional consequences of cancer-specific retrotransposable element (RTE) activation on host genes.
- To determine the role of RTEs in shaping tumor progression and gene function during cancer development.
Main Methods:
- Utilized a pan-cancer transcriptome assembly to identify RTE effects on integrated and neighboring genes.
- Verified findings through analysis of cancer patient transcriptional profiles and in vitro studies (gene activity restoration, proliferation, and migration assays).
Main Results:
- Cancer-specific RTE activation frequently leads to gene function reduction or loss via exonization and alternative splicing.
- Activated RTEs disrupt tumor-promoting genes (e.g., RNGTT, CHRNA5), with this disruption correlating with slower disease progression.
- Experimental restoration of gene activity enhanced tumor cell growth and invasiveness in vitro.
Conclusions:
- Germline RTE integrations, when transcriptionally activated in cancer, possess significant gene-disruptive potential.
- Metastable RTE integrations function as sensors of cellular transformation and executors of tumor-promoting gene disruption.
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