Skip to main page content
U.S. flag

An official website of the United States government

Dot gov

The .gov means it’s official.
Federal government websites often end in .gov or .mil. Before sharing sensitive information, make sure you’re on a federal government site.

Https

The site is secure.
The https:// ensures that you are connecting to the official website and that any information you provide is encrypted and transmitted securely.

Access keys NCBI Homepage MyNCBI Homepage Main Content Main Navigation
Review
. 2017 Aug:25:7-15.
doi: 10.1016/j.coviro.2017.06.008. Epub 2017 Jun 30.

Polintons, virophages and transpovirons: a tangled web linking viruses, transposons and immunity

Affiliations
Review

Polintons, virophages and transpovirons: a tangled web linking viruses, transposons and immunity

Eugene V Koonin et al. Curr Opin Virol. 2017 Aug.

Abstract

Virophages are satellite DNA viruses that depend for their replication on giant viruses of the family Mimiviridae. An evolutionary relationship exists between the virophages and Polintons, large self-synthesizing transposons that are wide spread in the genomes of diverse eukaryotes. Most of the Polintons encode homologs of major and minor icosahedral virus capsid proteins and accordingly are predicted to form virions. Additionally, metagenome analysis has led to the discovery of an expansive family of Polinton-like viruses (PLV) that are more distantly related to bona fide Polintons and virophages. Another group of giant virus parasites includes small, linear, double-stranded DNA elements called transpovirons. Recent in-depth comparative genomic analysis has yielded evidence of the origin of the PLV and the transpovirons from Polintons. Integration of virophage genomes into genomes of both giant viruses and protists has been demonstrated. Furthermore, in an experimental coinfection system that consisted of a protist host, a giant virus and an associated virophage, the virophage integrated into the host genome and, after activation of its expression by a superinfecting giant virus, served as an agent of adaptive immunity. There is a striking analogy between this mechanism and the CRISPR-Cas system of prokaryotic adaptive immunity. Taken together, these findings show that Polintons, PLV, virophages and transpovirons form a dynamic network of integrating mobile genetic elements that contribute to the cellular antivirus defense and host-virus coevolution.

PubMed Disclaimer

Figures

Figure 1
Figure 1. Representative genome architectures of polinton-like MGE
The genome schematics are drawn roughly to scale (shown at the bottom of the figure). The genes are shown by block arrows indicating the direction of transcription and identified by color code. The blank arrows show poorly conserved genes, many of them encoding uncharacterized proteins. Abbreviations: AEP, aerchaeo-eukaryotic primase; Bnat, Bigellowiella natans; P1-DY, Polinton 1 of Drosophila yakuba; P1-TC, Polinton 1 of Tribolium castaneum; P1-TV, Polinton 1 of Trichomonas vaginalis; RED, Red Sea; SAF, South Africa; DJR MCP, double jelly-roll major capsid protein; mCP, minor capsid protein; OLV, Organic Lake virophage; pDNAP, protein-primed DNA polymerase (hatched shading shows inactivated pDNAP derivatives); RVE, retrovirus-like integrase; RVP, rumen virophage [27]; SF1 and SF3, superfamily 1 and 3, respectively; TVpol, primase-polymerase homologous to the bacterial DNA polymerase I; Y-integrase, integrase of the tyrosine recombinase superfamily; ZnR, zinc ribbon; GIY-YIG, nuclease of the GIY-YIG family (denoted after the conserved catalytic motifs). Tlr6f is an uncharacterized protein that is widespread among the polinton-like MGE [18].
Figure 2
Figure 2. Schematic phylogeny of protein-primed family B DNA polymerases
The schematic shows the topology of the main, strongly supported branches in the tree [30].
Figure 3
Figure 3. Evolutionary scenario for the Polinton-like MGE and their derivatives
The scenario is based on the previously published analyses [11,18,30]. Abbreviations: INT, integrase; PRO, protease involved in virion maturation; S1H, superfamily1 helicases; S3H, superfamily 3 helicases.
Figure 4
Figure 4. Virophage and CRISPR-Cas: two unrelated but analogous forms of acquired immunity with genomic memory of past infections
R1, R2, R3: CRISPR repeats; S1, S2, CRISPR spacers.

References

    1. Koonin EV, Dolja VV. Virus world as an evolutionary network of viruses and capsidless selfish elements. Microbiol Mol Biol Rev. 2014;78(2):278–303. - PMC - PubMed
    1. Koonin EV, Dolja VV, Krupovic M. Origins and evolution of viruses of eukaryotes: The ultimate modularity. Virology. 2015;479–480:2–25. - PMC - PubMed
    1. Kazazian HH., Jr Mobile elements: drivers of genome evolution. Science. 2004;303(5664):1626–1632. - PubMed
    1. Goodier JL, Kazazian HH., Jr Retrotransposons revisited: the restraint and rehabilitation of parasites. Cell. 2008;135(1):23–35. - PubMed
    1. Krupovic M, Koonin EV. Homologous capsid proteins testify to the common ancestry of retroviruses, caulimoviruses, pseudoviruses and metaviruses. J Virol. 2017;91(12) pii: e00210–17. - PMC - PubMed

MeSH terms