ArticlePLoS genetics2024
An eQTL-based approach reveals candidate regulators of LINE-1 RNA levels in lymphoblastoid cells.
Article in PLoS genetics, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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8 citing papers in PubMed.
- AcutebioRxiv : the preprint server for biology · 2026Article
- A multi-omics analysis of human fibroblasts overexpressing an Alu transposon reveals widespread disruptions in aging-associated pathways.GeroScience · 2026Article
- Association of LINE-1 RNA expressions in cell lines with longevity and reproductive lifespan.medRxiv : the preprint server for health sciences · 2025Article
- A multi-omics analysis of human fibroblasts overexpressing anbioRxiv : the preprint server for biology · 2025Article
- Comparative Analysis of Transposable Element Evolution in Crustaceans.Genome biology and evolution · 2025Article
- Multi-ancestry GWAS reveals loci linked to human variation in LINE-1- and Alu-insertion numbers.bioRxiv : the preprint server for biology · 2025Article
- Multi-ancestry GWAS reveals loci linked to human variation in LINE-1- and Alu-insertion numbers.Translational medicine of aging · 2025Article
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Abstract
Long interspersed element 1 (LINE-1; L1) are a family of transposons that occupy ~17% of the human genome. Though a small number of L1 copies remain capable of autonomous transposition, the overwhelming majority of copies are degenerate and immobile. Nevertheless, both mobile and immobile L1s can exert pleiotropic effects (promoting genome instability, inflammation, or cellular senescence) on their hosts, and L1's contributions to aging and aging diseases is an area of active research. However, because of the cell type-specific nature of transposon control, the catalogue of L1 regulators remains incomplete. Here, we employ an eQTL approach leveraging transcriptomic and genomic data from the GEUVADIS and 1000Genomes projects to computationally identify new candidate regulators of L1 RNA levels in lymphoblastoid cell lines. To cement the role of candidate genes in L1 regulation, we experimentally modulate the levels of top candidates in vitro, including IL16, STARD5, HSD17B12, and RNF5, and assess changes in TE family expression by Gene Set Enrichment Analysis (GSEA). Remarkably, we observe subtle but widespread upregulation of TE family expression following IL16 and STARD5 overexpression. Moreover, a short-term 24-hour exposure to recombinant human IL16 was sufficient to transiently induce subtle, but widespread, upregulation of L1 subfamilies. Finally, we find that many L1 expression-associated genetic variants are co-associated with aging traits across genome-wide association study databases. Our results expand the catalogue of genes implicated in L1 RNA control and further suggest that L1-derived RNA contributes to aging processes. Given the ever-increasing availability of paired genomic and transcriptomic data, we anticipate this new approach to be a starting point for more comprehensive computational scans for regulators of transposon RNA levels.
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