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Sliepen, K.

Publications and source records attributed to Sliepen, K..

3 recordsLinked to original sources

Enhancing glycan occupancy of soluble HIV-1 envelope trimers to mimic the native viral spike

SummaryThe HIV-1 envelope glycoprotein (Env) trimer is decorated with N-linked glycans, which are attached to asparagine residues in the amino acid sequon NxT/S by oligosaccharyltransferases (OST). Artificial glycan “holes” exist when a PNGS is under-occupied on recombinant Env-based vaccines, but not on their viral counterpart. Native-like SOSIP trimers, including clinical candidates, have these artificial holes in the glycan shield that induce strain-specific neutralizing antibodies (NAbs) or non-NAbs. To increase PNGS occupancy, eliminate artificial glycan holes, and mimic the glycosylation of native BG505 Env, we replaced all 12 NxS sequons on the BG505 SOSIP trimer with NxT, thereby increasing the affinity of the sequons for OST. All PNGS, except N133 and N160, were nearly fully occupied on the modified trimer. Occupancy of the N133 site could be increased by changing N133 to NxS, while occupancy of the N160 site could be restored by reverting the nearby N156 sequon to NxS. Hence, OST affinity can influence glycan occupancy when two PNGS are in close proximity. Increasing glycan occupancy should reduce off-target immune responses to artificial glycan holes on vaccine antigens.Competing Interest StatementR. W. S. and J. P. M. are listed on patents concerning stabilized Env trimers.View Full Text

biochemistry

Optimised cell systems for the investigation ofhepatitis C virus E1E2 glycoproteins

Great strides have been made in understanding and treating Hepatitis C virus (HCV) thanks in part to the development of the full-length cell-culture system, the pseudoparticle system and soluble envelope glycoproteins. The HCV pseudoparticle (HCVpp) system is a platform used extensively in studies of cell entry, screening of novel entry inhibitors, assessing the phenotypes of clinically observed E1 and E2 glycoproteins and, most pertinently, in characterising neutralizing antibody breadth induced upon vaccination and natural infection in patients. Nonetheless, some patient-derived clones fail to produce infectious particles or produce particles that exhibit infectivity too low for meaningful phenotyping. The mechanisms governing whether any particular clone produces infectious pseudoparticles are poorly understood. Here we show that endogenous expression of CD81, an HCV receptor and a cognate binding partner of E2, in producer HEK 293T cells is detrimental to the infectivity of recovered HCVpp for most strains. Many HCVpp clones exhibited increased infectivity or had their infectivity rescued when they were produced in HEK 293T cells CRISPR/Cas9 engineered to ablate CD81 expression (293TCD81KO). Clones made in 293TCD81KO cells were antigenically very similar to their matched counterparts made parental cells and appear to honour the accepted HCV entry pathway. Deletion of CD81 did not appreciably increase the recovered titres of soluble E2 (sE2). However, we did, unexpectedly, find that monomeric sE2 made in 293T and 293F exhibit important differences. We found that 293F-produced sE2 harbours mostly complex type glycans whilst 293T-produced sE2 displays a heterogeneous mixture of both complex type glycans and highmannose or hybrid type glycans. Moreover, sE2 produced in HEK 293T cells is antigenically superior; exhibiting increased binding to conformational antibodies and the large extracellular loop of CD81. In summary, this work describes an optimal cell line for the production of HCVpp and reveals that sE2 made in 293T and 293F cells are not antigenic equals. Our findings have implications for functional studies of E1E2 and the production of candidate immunogens.

microbiology

Potent neutralizing antibodies from COVID-19 patients define multiple targets of vulnerability

The rapid spread of SARS-CoV-2 has a significant impact on global health, travel and economy. Therefore, preventative and therapeutic measures are urgently needed. Here, we isolated neutralizing antibodies from convalescent COVID-19 patients using a SARS-CoV-2 stabilized prefusion spike protein. Several of these antibodies were able to potently inhibit live SARS-CoV-2 infection at concentrations as low as 0.007 {micro}g/mL, making them the most potent human SARS-CoV-2 antibodies described to date. Mapping studies revealed that the SARS-CoV-2 spike protein contained multiple distinct antigenic sites, including several receptor-binding domain (RBD) epitopes as well as previously undefined non-RBD epitopes. In addition to providing guidance for vaccine design, these mAbs are promising candidates for treatment and prevention of COVID-19.

microbiology