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Biomedical subjects

Arvind Varsani

Publications and source records attributed to Arvind Varsani.

3 recordsLinked to original sources

Identification of aviadenovirus and dependoparvovirus in an Adélie penguin fecal sample from Cape Royds (Ross Island, Antarctica).

Adenoviruses (Adenoviridae) and their associated replication-deficient dependoparvoviruses (Parvoviridae) are recognized as significant components of the avian virome. While well-studied in domestic birds, these viruses remain underexplored in wild Antarctic birds. Information is limited on viruses circulating in penguins, particularly outside of the Antarctic Peninsula Region. Here we leverage a fecal sample collected for diet analyses to identify an aviadenovirus (37,731 nt) and two distinct dependoparvoviruses. The Ad&#xe9;lie penguin (Pygoscelis adeliae) feces-derived adenovirus exhibits a genome organization consistent with members of the genus Aviadenovirus but shares only ~64% amino acid identity in the DNA polymerase protein with its closest known relative and thus represents a new species of aviadenovirus identified in penguins. Additionally, we identified two new dependoparvoviruses, one in length of 4,869 nt and a second of 4,162 nt. These two dependoparvoviruses are diverse, sharing <61% Rep amino acid identity with those of other dependoparvoviruses. Penguin dependoparvovirus 1 represents a new species. The co-detection of these viruses in a single seasonal sample could suggest a potential helper-satellite relationship in Ad&#xe9;lie penguins. This study provides the first evidence of aviadenoviruses in Ad&#xe9;lie penguin feces. These findings highlight the importance of surveillance to understand pathogen dynamics in isolated Antarctic populations.

Animals

Recombination in eukaryotic single stranded DNA viruses.

Although single stranded (ss) DNA viruses that infect humans and their domesticated animals do not generally cause major diseases, the arthropod borne ssDNA viruses of plants do, and as a result seriously constrain food production in most temperate regions of the world. Besides the well known plant and animal-infecting ssDNA viruses, it has recently become apparent through metagenomic surveys of ssDNA molecules that there also exist large numbers of other diverse ssDNA viruses within almost all terrestrial and aquatic environments. The host ranges of these viruses probably span the tree of life and they are likely to be important components of global ecosystems. Various lines of evidence suggest that a pivotal evolutionary process during the generation of this global ssDNA virus diversity has probably been genetic recombination. High rates of homologous recombination, non-homologous recombination and genome component reassortment are known to occur within and between various different ssDNA virus species and we look here at the various roles that these different types of recombination may play, both in the day-to-day biology, and in the longer term evolution, of these viruses. We specifically focus on the ecological, biochemical and selective factors underlying patterns of genetic exchange detectable amongst the ssDNA viruses and discuss how these should all be considered when assessing the adaptive value of recombination during ssDNA virus evolution.

Animals