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Dinan, A. M.

Publications and source records attributed to Dinan, A. M..

3 recordsLinked to original sources

The transcriptional and translational landscape of equine torovirus

The genus Torovirus (subfamily Torovirinae, family Coronaviridae, order Nidovirales) encompasses a range of species that infect domestic ungulates including cattle, sheep, goats, pigs and horses, causing an acute self-limiting gastroenteritis. Using the prototype species equine torovirus (EToV) we performed parallel RNA sequencing (RNA-seq) and ribosome profiling (Ribo-seq) to analyse the relative expression levels of the known torovirus proteins and transcripts, chimaeric sequences produced via discontinuous RNA synthesis (a characteristic of the nidovirus replication cycle) and changes in host transcription and translation as a result of EToV infection. RNA sequencing confirmed that EToV utilises a unique combination of discontinuous and non-discontinuous RNA synthesis to produce its subgenomic RNAs; indeed, we identified transcripts arising from both mechanisms that would result in sgRNAs encoding the nucleocapsid. Our ribosome profiling analysis revealed that ribosomes efficiently translate two novel CUG-initiated ORFs, located within the so-called 5 UTR. We have termed the resulting proteins U1 and U2. Comparative genomic analysis confirmed that these ORFs are conserved across all available torovirus sequences and the inferred amino acid sequences are subject to purifying selection, indicating that U1 and U2 are functionally relevant. This study provides the first high-resolution analysis of transcription and translation in this neglected group of livestock pathogens.\n\nImportanceToroviruses infect cattle, goats, pigs and horses worldwide and can cause gastrointestinal disease. There is no treatment or vaccine and their ability to spill over into humans has not been assessed. These viruses are related to important human pathogens including severe acute respiratory syndrome (SARS) coronavirus and they share some common features, however the mechanism that they use to produce subgenomic RNA molecules differs. Here we performed deep sequencing to determine how equine torovirus produces subgenomic RNAs. In doing so, we also identified two previously unknown open reading frames \"hidden\" within the genome. Together these results highlight the similarities and differences between this domestic animal virus and related pathogens of humans and livestock.

microbiology

Activation of the unfolded protein response and inhibition of translation initiation during coronavirus infection

Coronavirus infection induces the unfolded protein response (UPR), a cellular signalling pathway composed of three branches, triggered by unfolded proteins in the endoplasmic reticulum (ER) due to high ER load. We have used RNA sequencing and ribosome profiling to investigate holistically the transcriptional and translational response to cellular infection by murine hepatitis virus (MHV), often used as a model for the Betacoronavirus genus to which the recently emerged SARS-CoV-2 also belongs. We found the UPR to be amongst the most significantly up-regulated pathways in response to MHV infection. To confirm and extend these observations, we show experimentally the induction of all three branches of the UPR in both MHV- and SARS-CoV-2-infected cells. Over-expression of the SARS-CoV-2 ORF8 or S proteins alone is itself sufficient to induce the UPR. Remarkably, pharmacological inhibition of the UPR greatly reduced the replication of both MHV and SARS-CoV-2, revealing the importance of this pathway for successful coronavirus replication. This was particularly striking when both IRE1 and ATF6 branches of the UPR were inhibited, reducing SARS-CoV-2 virion release [~]1,000-fold. Together, these data highlight the UPR as a promising antiviral target to combat coronavirus infection. Author SummarySARS-CoV-2 is the novel coronavirus responsible for the COVID-19 pandemic which has resulted in over 100 million cases since the end of 2019. Most people infected with the virus will experience mild to moderate respiratory illness and recover without any special treatment. However, older people, and those with underlying medical problems like chronic respiratory disease are more likely to develop a serious illness. So far, more than 2 million people have died of COVID-19. Unfortunately, there is no specific medication for this viral disease. In order to produce viral proteins and to replicate their genetic information, all coronaviruses use a cellular structure known as the endoplasmic reticulum or ER. However, the massive production and modification of viral proteins stresses the ER and this activates a compensatory cellular response that tries to reduce ER protein levels. This is termed the unfolded protein response or UPR. We believe that coronaviruses take advantage of the activation of the UPR to enhance their replication. The UPR is also activated in some types of cancer and neurodegenerative disorders and UPR inhibitor drugs have been developed to tackle these diseases. In this work, we have tested some of these compounds in human lung cells infected with SARS-CoV-2 and found that virus production was reduced 1000-fold in human lung cells.

microbiology

The translational landscape of Zika virus during infection of mammalian and insect cells

Zika virus (ZIKV) is an emerging mosquito-borne flavivirus recently associated with congenital diseases and neurological complications. As for all flaviviruses, the ZIKV RNA genome is expected to encode a single polyprotein with all the enzymatic activities required for viral replication. Here, we report the discovery of multiple non-canonical open reading frames (ORFs) identified by ribosome profiling. In both mammalian and insect cells infected with Asian/American and African ZIKV strains, we observed translation of previously unrecognised upstream ORFs (uORFs) in the 5' region. In the Asian/American ZIKV lineage, ribosomes translated uORF1 and uORF2 that initiated from non-AUG start codons, whereas in the African ZIKV lineage, these two uORFs were fused into a single uORF (African uORF). Using a reverse genetics system, we examined the impact on ZIKV fitness of the expression of single or dual uORFs by analysing a panel of mutant viruses. We found that expression of the African uORF, and more significantly, the Asian/American uORF1, modulated virus growth and tropism in human cortical neurons and 3D organoid tissue, indicating that these novel uORFs contribute to ZIKV neurotropism. Although ZIKV uORFs are expressed in mosquito cells, they did not have a detectable effect on transmission by the mosquito vector in vivo. Our discovery of ZIKV uORFs sheds new light on ZIKV-induced neuropathogenesis and raises the question of their existence in other neurotropic flaviviruses.

microbiology