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Thorsteinsson, K.

Publications and source records attributed to Thorsteinsson, K..

3 recordsLinked to original sources

Site-specific sulfations regulate the physicochemical properties of papillomavirus-heparan sulfate interactions for entry

Certain human papillomaviruses (HPVs) are etiological agents for several anogenital and oropharyngeal cancers. During initial infection, HPV16, the most prevalent cancer-causing type, specifically interacts with heparan sulfates (HS), not only enabling initial cell attachment but also triggering a crucial conformational change in viral capsids termed structural activation. It is unknown, whether such HS-HPV16 interactions depend on HS sulfation patterns. Thus, we probed potential roles of HS sulfations using cell-based functional and physicochemical assays, including single molecule force spectroscopy. Our results demonstrate that N-sulfation of HS is crucial for virus binding and structural activation by providing high affinity sites, and that additional 6O-sulfation is required to mechanically stabilize the interaction, whereas 2O-sulfation and 3O-sulfation are mostly dispensable. Together, our findings identify the contribution of HS sulfation patterns to HPV16 binding and structural activation and reveal how distinct sulfation groups of HS synergize to facilitate HPV16 entry, which, in turn, likely influences the tropism of HPVs. TeaserDistinct heparan sulfations facilitate HPV16 binding and structural activation through their physico-chemical properties.

microbiology↗

Variant-specific interactions at the plasma membrane: Heparan sulfate's impact on SARS-CoV-2 binding kinetics

The worldwide spread of SARS-CoV-2 has been characterised by the emergence of several variants of concern (VOCs) presenting an increasing number of mutations in the viral genome. The spike glycoprotein, responsible for engaging the viral receptor ACE2, exhibits the highest density of mutations, suggesting an ongoing evolution to optimize viral entry. However, previous studies focussed on isolated molecular interactions, neglecting the intricate composition of the plasma membrane and the interplay between viral attachment factors. Our study explores the role of avidity and of the complexity of the plasma membrane composition in modulating the virus-host binding kinetics during the early stages of viral entry for the original Wuhan strain and three VOCs: Omicron BA.1, Delta, and Alpha. We employ fluorescent liposomes decorated with spike from several VOCs as virion mimics in single-particle tracking studies on native supported lipid bilayers derived from pulmonary Calu-3 cells. Our findings reveal an increase in the affinity of the multivalent bond to the cell surface for Omicron driven by an increased association rate. We show that heparan sulfate (HS), a sulfated glycosaminoglycan commonly expressed on cells plasma membrane, plays a central role in modulating the interaction with the cell surface and we observe a shift in its role from screening the interaction with ACE2 in early VOCs to an important binding factor for Omicron. This is caused by a [~]10-fold increase in Omicrons affinity to HS compared to the original Wuhan strain, as shown using atomic force microscopy-based single-molecule force spectroscopy. Our results show the importance of coreceptors, particularly HS, and membrane complexity in the modulation of the attachment in SARS-CoV-2 VOCs. We highlight a transition in the variants attachment strategy towards the use of HS as an initial docking site, which likely plays a role in shaping Omicrons tropism towards infection of the upper airways, milder symptoms, and higher transmissibility.

microbiology↗

Recruitment of apolipoprotein E facilitates Herpes simplex virus 1 release

Over two decades, epidemiological studies have revealed that interactions between human polymorphic apolipoprotein 4 (ApoE, isoform 4) and herpes simplex virus type 1 (HSV1) associate with higher risk of Alzheimers disease, a serious and increasing issue among elder populations worldwide. Nevertheless, little is known about the mechanisms behind ApoE-HSV1 interactions at molecular levels. Here, we investigate the effects of ApoE on the HSV1 infectious life cycle in in vitro cell experiments. Analysis of HSV1 growth curves shows that HSV1 production is promoted in presence of any of the three ApoE isoforms, with ApoE 3 or 4 demonstrating more proviral effects than ApoE 2. Quantification by qPCR reveals that the presence of ApoE 2, 3, or 4 leads to an increase of HSV1 extracellular release but unchanged levels of viral genome copies within cells or on the cell surface, indicating that virus replication, assembly, or transport to cell membrane are not affected. Further test of virus release directly demonstrates that HSV1 detachment from the cell surface is promoted by ApoE. Subsequent results reveal that ApoE is both present in purified HSV1 particles produced in ApoE-expressing cells after ultra-centrifugation and able to incorporate into HSV1 particles after purification, suggesting that harbouring ApoE may play a key role in the pro-viral effect of ApoE. Along these lines, we tested the infectious behaviour of ApoE-coated viruses and observed faster attachment kinetics and higher entry efficiencies of ApoE decorated HSV1. Our hypothesis that the association with ApoE leads to modified interactions of the virus with the cell membrane during entry and egress, was further validated in biophysical experiments. In such experiments, HSV1-membrane interaction kinetics and apparent affinity between HSV1 and native supported lipid bilayers (a plasma membrane mimic) were quantified using total internal reflection microscopy. HSV1 particles decorated with ApoE demonstrate both higher association (kon) and dissociation rate constants (koff), as well as less irreversible binding to the membrane, which is in line with the biological experiments. Overall, our results provide new insights into the roles of ApoE during HSV1 infections, which is worth to be considered when studying their involvement during Alzheimers disease development.

microbiology↗