Multiple origins of endogenous virophage and polinton-like virus in the halophilic protist Halocafeteria seosinensis

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Abstract

Virophages and Polinton-like Viruses (PLVs) are related viral elements classified within the supergroup Polisuviricotina . While virophages typically depend on large dsDNA viruses ( Nucleocytoviricota ) for replication in eukaryotic hosts, the replication strategies of most PLVs are unknown. While both virophages and PLVs can exist as stand-alone entities or be integrated into host genomes, their co-occurrence within a single eukaryotic genome is rare. We investigated the chromosome-scale nuclear genome assembly of the halophilic protist Halocafeteria seosinensis and discovered 41 endogenous PLVs and 36 virophage sequences, most of which are full-length elements; together they comprise 6.2% of the genome. These viral elements belong to six PLV and seven virophage subtypes. Notably, we found genes shared between H. seosinensis PLVs and virophages, suggesting active genetic exchange between them. We also observed supraparasitism, with MULE DNA transposons and LINE retrotransposons frequently embedded within the viral genomes. Our study reveals dynamic interactions between viral elements and host mobile DNA in a halophilic protist, expanding our understanding of viral diversity in extreme environments.

SIGNIFICANCE

Virophages and polinton-like viruses (PLVs) are enigmatic viral elements found in many aquatic habitats. Our understanding of their diversity stems mainly from analysis of environmental sequence data, but they have also been found integrated into the genomes of cultured protists. The evolutionary impacts of such integrations are poorly understood. In this study, we reveal the co-occurrence of multiple PLV and virophage subtypes that together constitute a substantial fraction of the genome of the halophilic protist Halocafeteria seosinensis . These distantly related viral lineages coexist within the same genome and share a common gene pool, forming chimeric arrangements with host transposons and with one another. The H. seosinensis genome thus serves as a dynamic arena for viral gene exchange and genome remodelling, reshaping host genome architecture and potentially conferring immunity to giant viruses.

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