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Soriano-Tordera, C.

Publications and source records attributed to Soriano-Tordera, C..

3 recordsLinked to original sources

Identification and characterization of novel bat coronaviruses in Spain

The zoonotic transmission of bat coronaviruses poses a threat to human health. However, the diversity of bat-borne coronaviruses remains poorly characterized in many geographical areas. Here, we recovered six complete coronavirus genomes by performing a metagenomic analysis of fecal samples from hundreds of individual bats captured in Spain, a country with high bat species diversity. Three of these genomes corresponded to potentially novel coronavirus species belonging to the alphacoronavirus genus. Phylogenetic analyses revealed that some of these viruses are closely related to coronaviruses previously described in bats from other countries, suggesting the existence of a shared viral reservoir worldwide. Using viral pseudotypes, we investigated the receptor usage of the identified viruses and found that one of them can use human and bat ACE2, highlighting its zoonotic potential. However, the receptor usage of the other viruses remains unknown. This study broadens our understanding of coronavirus diversity and identifies research priorities for the prevention of zoonotic viral outbreaks. Author summaryBats carry many viruses, some of which can cross the species barrier and infect humans, a process known as zoonosis. In particular, bat-borne coronaviruses pose a significant threat to human health. To improve our pandemic preparedness, it is essential to characterize the diversity and zoonotic potential of bat coronaviruses. However, such research efforts have historically suffered from a strong geographical bias. For example, despite the rich bat diversity in Spain, few studies have searched for coronaviruses in Iberian bats. Here, we used viral metagenomics to test for the presence of coronaviruses in more than 200 bat samples collected across Spain. We detected six complete coronaviruses, three of which were proposed to be new viral species. We characterized their relationship to previously identified viruses and their ability to use known coronavirus receptors to enter cells, demonstrating that one virus could use human ACE2 as a receptor. Our results highlight the diversity of bat-borne coronaviruses in Spain, their zoonotic potential, and the need to better characterize coronavirus diversity worldwide.

microbiology↗

Human cell adaptation of the swine acute diarrhea syndrome coronavirus spike protein

Swine acute diarrhea syndrome coronavirus (SADS-CoV) is a recently identified highly pathogenic swine coronavirus. In vitro, SADS-CoV can infect cell lines from many different species, including humans, highlighting its high zoonotic potential. Coronavirus spike glycoproteins play a critical role in viral entry and are involved in determining viral host range and cellular tropism. Here, we used experimental evolution to investigate how the SADS-CoV spike protein adapts to human cells and to identify potential variants with increased infectivity. We evolved a recombinant vesicular stomatitis virus expressing the SADS-CoV spike (rVSV-SADS) in three human cell lines. After ten passages, increased viral replication was observed, and spike mutations were identified by sequencing. Mutations were functionally characterized in terms of viral fitness, spike processing and fusogenicity. Our results thus identify potential human-adaptive mutations in the SADS-CoV spike that may further enhance its zoonotic potential. ImportanceCoronavirus transmission from animals represents a serious threat to humans. Pigs are of particular concern because of their proximity to humans and the several coronaviruses they harbor. In particular, the swine acute diarrhea syndrome coronavirus (SADS-CoV) is a recently identified highly pathogenic porcine coronavirus that has a very broad tropism in vitro, highlighting its high zoonotic risk. The coronavirus spike protein is a strong determinant of species tropism, and spike mutations may facilitate cross-species transmission. Here, to identify potential variants with increased ability to enter human cells, we used an experimental evolution approach to study how the SADS-CoV spike adapts to different human cell lines. These mutations, should they occur in nature, could potentially increase the zoonotic potential of SADS-CoV.

microbiology↗

Genetic diversity and cross-species transmissibility of bat-associated picornaviruses from Spain

BackgroundEmerging zoonotic diseases arise from cross-species transmission events between wild or domesticated animals and humans, with bats being one of the major reservoirs of zoonotic viruses. Viral metagenomics has led to the discovery of many viruses, but efforts have mainly been focused on some areas of the world and on certain viral families. MethodsWe set out to describe full-length genomes of new picorna-like viruses by collecting feces from hundreds of bats captured in different regions of Spain. Viral sequences were obtained by high-throughput Illumina sequencing and analyzed phylogenetically to classify them in the context of known viruses. Linear discriminant analysis (LDA) was performed to infer likely hosts based on genome composition. ResultsWe found five complete or nearly complete genomes belonging to the family Picornaviridae, including a new species of the subfamily Ensavirinae. LDA suggested that these were true vertebrate viruses, rather than viruses from the bat diet. Some of these viruses were related to picornaviruses previously found in other bat species from distant geographical regions. We also found a calhevirus genome that most likely belongs to a proposed new family within the order Picornavirales, and for which genome composition analysis suggested a plant host. ConclusionsOur findings describe new picorna-like viral species and variants circulating in the Iberian Peninsula, illustrate the wide geographical distribution and interspecies transmissibility of picornaviruses, and suggest new hosts for calheviruses.

microbiology↗