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Biology subjects

Bisaillon, M.

Publications and source records attributed to Bisaillon, M..

2 recordsLinked to original sources

G-quadruplexe as a structural modulator of Intron Retention upon viral infection

Amongst the wide array of alternative splicing events (ASE), the intrinsic mechanisms of intron retention have remained elusive. This particular type of ASE has long been characterized as an artifact, but recent studies have shown its implication in numerous diseases. It has also been revealed that numerous viruses choose to disrupt alternative splicing to escape cellular immune response and further their proliferation. The main focus of this study was to investigate the G-quadruplex role in Alternative Splicing Events (ASEs) that occur following Flavivirus infections. After having demonstrated that G-quadruplexes structures are mainly formed in Intron Retained Transcripts by RNA-seq, our attention turned toward the ULK3 gene, coding for a serine/threonine kinase regulating autophagy, an essential mechanism in the cellular response to stress and even pathogen infections. In this study, we revealed the presence of a G-quadruplex in the first intron of the ULK3 gene near the 3 splice site. Furthermore, we assayed the formation and stability of this G-quadruplex in vitro and showed that its formation affects IR, as demonstrated by comparisons between wild-type and mutant transfected mini-genes. Finally, we identified the specific RNA-binding protein signature for this G-quadruplex, thereby uncovering the novel role of G-quadruplexes in Alternative Splicing.

biochemistry↗

Cellulosic copper nanoparticles and a hydrogen peroxide-based disinfectant protect Vero E6 cells against infection by viral pseudotyped particles expressing SARS-CoV-2, SARS-CoV or MERS-CoV Spike protein.

Severe acute respiratory syndrome (SARS) is a viral respiratory infection caused by human coronaviruses (HuCoV) that include SARS-CoV-2, SARS-CoV, and Middle East respiratory syndrome coronavirus (MERS-CoV). Although their primary mode of transmission is through contaminated respiratory droplets from infected carriers, the deposition of expelled virus particles onto surface and fomites could contribute to viral transmission. Here, we use replication-deficient murine leukemia virus (MLV) pseudoviral particles expressing SARS-CoV-2, SARS-CoV, or MERS-CoV Spike (S) protein on their surface. These surrogates of native coronavirus counterparts serve as a model to analyze the S-mediated entry into target cells. Carboxymethyl cellulose (CMC) nanofibers that are combined with copper (Cu) exhibit strong antimicrobial properties. S-pseudovirions that are exposed to CMC-Cu nanoparticles (30 s) display a dramatic reduction in their ability to infect target Vero E6 cells, with [~]97% less infectivity as compared to untreated pseudovirions. In contrast, addition of the Cu chelator tetrathiomolybdate protects S- pseudovirions from CMC-Cu-mediated inactivation. When S-pseudovirions were treated with a hydrogen peroxide-based disinfectant (denoted SaberTM) used at 1:16 dilution, their infectivity was dramatically reduced by [~]98%. However, the combined use of SaberTM and CMC-Cu is the most effective approach to restrict infectivity of SARS-CoV-2-S, SARS-CoV-S, and MERS-CoV-S pseudovirions in Vero E6 cell assays. Together, these results show that cellulosic Cu nanoparticles enhance the effectiveness of diluted SaberTM sanitizer, setting up an improved strategy to lower the risk of surface- and fomite-mediated transmission of enveloped respiratory viruses.

microbiology↗