Related Experiment Video
Updated: Aug 6, 2026

Cell-Free DNA Integrity Analysis in Urine Samples
Published on: January 5, 2017
Multiomic profiling links L1 retrotransposition to genomic instability and ecDNA in bladder cancer
Sophia J Pribus1,2, Ivana Osredek1,3, Jan Otoničar3,4
1European Molecular Biology Laboratory, Genome Biology Unit, Heidelberg, Germany.
None:
Bladder cancer is frequent and highly recurrent. Despite recent advances, knowledge gaps remain in molecular mechanisms underlying disease progression. In this study, we apply integrated multi-omic analyses to a cohort of 48 bladder cancer patients to comprehensively profile genetic, epigenetic, transcriptomic, and spatial features. Combining cell-free DNA sequencing, long-read tumor DNA-sequencing, RNA-sequencing, and spatial transcriptomics, we explore molecular alterations driving bladder cancer. We find frequent somatic LINE-1 (L1) insertions, and show that these L1 insertions are active and occur early in bladder cancer development. We link somatic L1 insertion with downstream genomic rearrangements and chromosomal instability, including increased structural variant and extrachromosomal DNA (ecDNA) counts in patients with high L1 counts. We identify variable ecDNA enrichment across tissue architecture, with highest enrichment overlapping differential expression of APOBEC3B and immune response pathways. In summary, our results support a model whereby L1 retrotransposition triggers downstream genomic instability and viral mimicry response.
Related Concept Videos
Non-LTR Retrotransposons
lncRNA - Long Non-coding RNAs

