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Updated: Jul 27, 2025

Retroviral Scanning: Mapping MLV Integration Sites to Define Cell-specific Regulatory Regions
Published on: May 28, 2017
Cancer cells co-evolve with retrotransposons to mitigate viral mimicry
Abstract:
Overexpression of repetitive elements is an emerging hallmark of human cancers 1 . Diverse repeats can mimic viruses by replicating within the cancer genome through retrotransposition, or presenting pathogen-associated molecular patterns (PAMPs) to the pattern recognition receptors (PRRs) of the innate immune system 2-5 . Yet, how specific repeats affect tumor evolution and shape the tumor immune microenvironment (TME) in a pro- or anti-tumorigenic manner remains poorly defined. Here, we integrate whole genome and total transcriptome data from a unique autopsy cohort of multiregional samples collected in pancreatic ductal adenocarcinoma (PDAC) patients, into a comprehensive evolutionary analysis. We find that more recently evolved S hort I nterspersed N uclear E lements (SINE), a family of retrotransposable repeats, are more likely to form immunostimulatory double-strand RNAs (dsRNAs). Consequently, younger SINEs are strongly co-regulated with RIG-I like receptor associated type-I interferon genes but anti-correlated with pro-tumorigenic macrophage infiltration. We discover that immunostimulatory SINE expression in tumors is regulated by either L ong I nterspersed N uclear E lements 1 (LINE1/L1) mobility or ADAR1 activity in a TP53 mutation dependent manner. Moreover, L1 retrotransposition activity tracks with tumor evolution and is associated with TP53 mutation status. Altogether, our results suggest pancreatic tumors actively evolve to modulate immunogenic SINE stress and induce pro-tumorigenic inflammation. Our integrative, evolutionary analysis therefore illustrates, for the first time, how dark matter genomic repeats enable tumors to co-evolve with the TME by actively regulating viral mimicry to their selective advantage.
Insights
Pancreatic tumors evolve to control immune responses by modulating repetitive elements, specifically Short Interspersed Nuclear Elements (SINEs), to promote tumor growth and shape the tumor microenvironment.
Area of Science:
- Genomics
- Cancer Biology
- Immunology
Background:
- Overexpression of repetitive elements is a hallmark of human cancers.
- Repetitive elements can mimic viruses, activating innate immune responses.
- The role of specific repeats in tumor evolution and the tumor immune microenvironment (TME) is poorly understood.
Approach:
- Integrated whole genome and transcriptome analysis of multiregional pancreatic ductal adenocarcinoma (PDAC) samples.
- Comprehensive evolutionary analysis to understand the dynamics of repetitive elements.
- Investigated the relationship between repeat evolution, immune signaling, and cellular components within the TME.
Key Points:
- Younger Short Interspersed Nuclear Elements (SINEs) are more likely to form immunostimulatory double-strand RNAs (dsRNAs).
- Immunostimulatory SINE expression correlates with type-I interferon genes and is inversely correlated with pro-tumorigenic macrophage infiltration.
- SINE expression is regulated by Long Interspersed Nuclear Elements 1 (LINE1/L1) mobility or ADAR1 activity, dependent on TP53 mutation status.
Conclusions:
- Pancreatic tumors actively evolve to modulate SINE-induced immune stress, promoting pro-tumorigenic inflammation.
- Genomic repeats act as a mechanism for tumors to co-evolve with the TME by regulating viral mimicry.
- This study provides insights into how 'dark matter' genomic repeats contribute to cancer progression and immune evasion.
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