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Quaranta, P.

Publications and source records attributed to Quaranta, P..

2 recordsLinked to original sources

A spatial multi-scale fluorescence microscopy toolbox discloses entry checkpoints of SARS-CoV-2 variants in VeroE6 cells

We exploited a multi-scale microscopy imaging toolbox to address some major issues related to SARS-CoV-2 interactions with host cells. Our approach harnesses both conventional and super-resolution fluorescence microscopy and easily matches the spatial scale of single-virus/cell checkpoints. We deployed this toolbox to characterize subtle issues related to the entry phase of SARS-CoV-2 variants in Vero E6 cells. Our results suggest that in these cells the variant of concern B.1.1.7, (aka Alpha variant), became the predominant circulating variant in several countries by a clear transmission advantage. In fact, in these cells B.1.1.7 outcompetes its ancestor B.1.177 in terms of a much faster kinetics of entry. Given the cell-entry scenario dominated by the endosomal "late pathway", the faster internalization of B.1.1.7 could be directly related to the N501Y mutation in the S protein, which is known to strengthen the binding of Spike receptor binding domain with ACE2. Remarkably, we also directly observed the main role of clathrin as mediator of late-entry endocytosis, reconciling it with the membrane localization of the ACE2 receptor previously attributed to caveolin-enriched rafts. Overall, we believe that our fluorescence microscopy-based approach represents a fertile strategy to investigate the molecular features of SARS-CoV-2 interactions with cells.

biophysics

HIV-1 provirus excised by single CRISPR/Cas9 RNA guide persists in host cell and may be reactivated

Gene editing may be used to cut out the human immunodeficiency virus type-1 (HIV-1) provirus from the host cell genome and eradicate infection. Here, using cells acutely or latently infected by HIV and treated with long terminal repeat-targeting CRISPR/Cas9, we show that the excised HIV provirus persists for a few weeks and, by means of HIV Integrase, rearranges in circular molecules. Circularization and integration restore proviral transcriptional activity that is enhanced in the presence of exogenous Tat and Rev or tumor necrosis factor-, respectively, in acutely or latently infected cells. Although confirming that gene editing is a powerful tool to eradicate HIV infection, this work highlights that, to achieve this goal, the provirus has to be cleaved in several pieces and the infected cells treated with antiviral therapy before and after editing.

microbiology