bioRxiv Science⌕ Search

Biology subjects

Melade, J.

Publications and source records attributed to Melade, J..

4 recordsLinked to original sources

Hidden diversity and expanded host range of sarthroviruses, including terrestrial vertebrates

The Sarthroviridae are a family of highly compact satellite RNA viruses comprising one recognised species, extra small virus (XSV). Macrobrachium rosenbergii nodavirus (MrNV) is the associated helper virus of XSV and their co-infection has been linked to white tail disease in freshwater prawns globally, although the role of XSV is remains unclear. Here, we describe the discovery and characterisation of ten novel, highly divergent sarthrovirus species from a range of hosts and environments within a small geographical region in Australia. These comprise novel sarthroviruses associated with marine sponges, seal and dingo faeces, environmental marine sediment samples and Indo-Pacific geckos (Hemidactylus garnotii). All the novel viruses possess only a capsid protein, consistent with the genome of XSV, yet exhibit substantial sequence divergence. Notably, some sarthrovirus variants seem to utilise different replication systems despite being genetically identical and present in the same host species. Sequences from nodaviruses, which could plausibly act as helpers, were associated with some, but not all, the sarthroviruses identified here. Phylogenetic analyses support the expansion of the Sarthroviridae into multiple distinct lineages, comprising at least seven genera. Collectively, these findings reveal a broader ecological distribution and evolutionary diversity of sarthroviruses and highlight the possibility of alternative replication strategies and tissue tropism in diverse animal host. SignificanceSarthoviruses are small ([~]800 nucleotides) satellite RNA viruses associated with a nodavirus of crustaceans that acts as a helper. To date, the only known sarthovirus is extra small virus (XSV), which also represents the sole species within the Sarthroviridae. Here, we report the detection of ten divergent sarthroviruses sampled from diverse animal hosts, including vertebrates, that expand the family to 11 species and at least seven genera. These viruses were detected from various host taxa and environmental samples from a confined geographical region in eastern Australia, suggesting that they are ecologically connected. Notably, we did not detect nodaviruses in all samples containing sarthroviruses, suggesting that different viruses may act as helpers for sarthovirus replication.

microbiology↗

Co-Circulation of Multiple Kolmioviridae Lineages Through Vertebrate Evolution

Although once only characterized by human hepatitis deltavirus (HDV), membership of the family Kolmioviridae has dramatically expanded in recent years. Despite this transformation in our understanding of the host range of kolmioviruses, the evolutionary history of this enigmatic group of RNA viruses is unclear. Kolmioviruses are characterized as small ([~]1.7kb) satellite viruses that encode a single [~]200 amino acid delta antigen (DAg) and require unrelated helper viruses for replication. Here, we describe eight novel kolmioviruses from metatranscriptomic studies of the American alligator (Alligator missippiensis), red kangaroo (Osphranter rufus), and central bearded dragon (Pogona vitticeps), as well as avian kolmioviruses mined from the Sequence Read Archive (SRA). Although the novel kolmioviruses were often found in samples co-infected by other viruses, there was no evidence for the presence of hepatitis B virus as seen in HDV. By employing a range of sequence data sets, alignment methods, alignment trimming methods, and substitution models, we provide an evolutionary history of the Kolmioviridae that maximizes the extent of virus-host co-divergence and refines estimates of their evolutionary timescale. Although DAg amino acid sequences are more conserved than nucleotide sequences and hence might be expected to result in more accurate phylogenetic trees, we show that full genome nucleotide sequences likely provide the best representation of kolmiovirus evolution. More broadly, our results reveal that irrespective of the data set used, multiple distinct kolmiovirus lineages have co-circulated throughout vertebrate evolution over timescales spanning hundreds of millions of years, with the association between HDV and HBV appearing only recently. Significance StatementKolmioviruses are satellite RNA viruses, with hepatitis deltavirus (HDV) associated with human disease following co-infection with hepatitis B virus (HBV) the best characterized. Although a growing number of animal kolmioviruses have been identified in metagenomic studies and associated with a range of helper viruses, the evolutionary origins and history of this important and unique group of viruses is unknown. By identifying novel kolmioviruses in a range vertebrate hosts, including American alligators, we show that highly diverse lineages of kolmioviruses have co-circulated for the duration of vertebrate evolution with clear evidence of virus-host co-divergence, and are associated with a variety of potential helper viruses. Despite this antiquity, we present evidence that the HDV-HBV association only recently evolved in human populations.

microbiology↗

Viral diversity, ecological interconnectedness, and the identification of mammalian chuviruses in Australian microbats

Microbats are a large and ecologically important group of Australian mammalian fauna. However, their RNA virome diversity, as well as its ecological and evolutionary significance, has received limited study. We applied a metatranscriptomic approach to reveal more of the diversity of RNA viruses present in faeces from different microbat species in New South Wales and South Australia, including the critically endangered Southern bent-wing bat (Miniopterus schreibersii bassanii) from the Naracoorte bat maternity caves in South Australia. The data generated revealed a high diversity of RNA viruses, including 51 likely mammalian-associated viruses classified into ten taxonomic groups, including the Coronaviridae, Hepeviridae and Chuviridae. Notably, we identified a mammalian-specific lineage of chuviruses associated with bats in Australia and of bats and rodents in China, strongly suggesting that viruses of this family have established sustained transmission cycles in mammals as well as invertebrates. Our results also revealed widespread viral connectivity among alphacoronaviruses across multiple microbat species in mainland Australia and Christmas Island, indicative of long distance viral movement. High viral diversity and virus co-circulation was observed within the Southern bent-wing bat population of the Naracoorte caves, suggesting complex population dynamics that might facilitate virus maintenance and transmission. Overall, these findings highlight the role of Australian microbats as viral reservoirs, including the presence of viruses not previously associated with sustained mammalian transmission.

microbiology↗

Isolation of an infectious mammalian chu-like virus from tumor cells of the endangered Tasmanian devil (Sarcophilus harrisii)

Jingchuvirales (negative-sense RNA viruses) were initially discovered in invertebrates, with both exogenous and endogenous jingchuviruses subsequently identified in fish, reptiles and mammals. To date, jingchuviruses have only been described metagenomically. By screening primary tumor tissues and tumor cell lines from the endangered Tasmanian devil (Sarcophilus harrisii), we isolated Tasmanian devil chu-like virus (TDCV) from cultures of Tasmanian devil facial tumor disease (DFTD) cells. Cell infection experiments demonstrated active virus replication in Tasmanian devil tumor cells, but not mosquito cells. The absence of viral replication in fibroblasts in cell culture and the lack of RNA detection in several organs suggested that replication was associated with tumor cells. Phylogenetic analysis revealed that TDCV likely represents a novel virus family. This is the first isolation of a jingchuvirus, demonstrating their capacity to infect mammalian cells, and providing in vitro avenues to understand the biology of TDCV and its association with tumor cell infection.

microbiology↗