Evidence map›Paper›PMID 42298553›Full record

ArticleBMC biology2026

Evidence for dual pathways of Tc1/mariner domestication in Drosophila.

Iuliia O Guseva, Alexander P Rezvykh, Elena S Zelentsova, Dina A Kulikova, Michael B Evgen'ev, Sergei Y Funikov

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Article in BMC biology, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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5 · Who and what money

Authors and funding

6 authors.

Iuliia O GusevaEngelhardt Institute of Molecular Biology of Russian Academy of Sciences, Moscow, 119991, Russia.
Alexander P RezvykhEngelhardt Institute of Molecular Biology of Russian Academy of Sciences, Moscow, 119991, Russia.
Elena S ZelentsovaEngelhardt Institute of Molecular Biology of Russian Academy of Sciences, Moscow, 119991, Russia.
Dina A KulikovaKoltzov Institute of Developmental Biology, Russian Academy of Sciences, Moscow, 119334, Russia.
Michael B Evgen'evEngelhardt Institute of Molecular Biology of Russian Academy of Sciences, Moscow, 119991, Russia.
Sergei Y FunikovEngelhardt Institute of Molecular Biology of Russian Academy of Sciences, Moscow, 119991, Russia. sergeifunikov@mail.ru.

Funding

No grant is acknowledged in the PubMed record.

6 · The paper itself

Abstract

backgroundThe domestication of transposable elements is a key source of evolutionary innovation, yet the pathways by which their functional modules are repurposed by the host remain poorly understood. The Tc1/mariner superfamily is a widespread group of DNA transposons, but the prevalence and patterns of their domestication are underexplored.

resultsWe performed a systematic genomic screen across 43 drosophilid species using stringent criteria for molecular domestication. This analysis identified five high-confidence, evolutionarily conserved genes derived from Tc1/mariner transposases. Phylogenetic and structural analyses suggest domestication via two distinct molecular pathways: co-option of the DNA-binding module and co-option of the catalytic domain. The DNA-binding module pathway includes CG4570, the previously known genes cag and toy (the latter fused with a homeodomain), and a lineage-restricted gene in the Drosophila obscura group that exhibits signatures of recent domestication. In contrast, the catalytic domain pathway is represented solely by CG14478. Structural modeling reveals that CG14478 protein preserves a canonical DDE endonuclease fold. Co-expression network analysis suggests potential cellular roles of these genes: CG14478 is linked to RNA/chromatin-related processes, CG4570 to cell cycle/chromosome functions, cag to ciliary and nuclear functions, and toy to neuronal development.

conclusionsThis study establishes a stringent framework for identifying domesticated TEs, demonstrating that Tc1/mariner elements are co-opted via two distinct pathways: retention of either catalytic or DNA-binding modules. Our findings suggest that domestication is a dynamic continuum, ranging from recent, lineage-specific events to ancient, conserved genes, and underscore how genomic conflict with TEs can drive eukaryotic evolution and regulatory complexity.

Indexed as

DNA-Binding ProteinsDNA Transposable ElementsDomesticationDrosophilaDrosophila ProteinsEvolution, MolecularTransposasesAnimalsPhylogenyDNA-Binding ProteinsDNA Transposable ElementsDrosophila Proteinsmariner transposasesTc1 transposaseTransposasesDrosophilaGene co-optionGenome evolutionMolecular domesticationTc1/marinerTransposable elementsTransposase-derived genes

Identifiers

PMID42298553
PMCPMC13548663

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