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Krepel, S. T.

Publications and source records attributed to Krepel, S. T..

2 recordsLinked to original sources

Structure of SARS-CoV-2 spike in complex with its co-receptor the neuronal cell adhesion protein contactin 1

The emergence of SARS-CoV-2 has caused millions of deaths and excess morbidity in the worldwide population. In addition to its respiratory symptoms, SARS-CoV-2 has become known for its neurotropism and long-term neurological sequelae, with a post-acute infection syndrome commonly referred to as long-COVID. Next to the host receptor angiotensin-converting enzyme 2 (ACE2) additional interactions of the SARS-CoV-2 spike (S) protein have been described for neuronal co-receptors specific to the nervous system including cell adhesion protein contactin 1 (CNTN1). Details of the spike-CNTN1 interaction have remained elusive. Here, we quantified the spike-CNTN1 interaction by surface plasmon resonance and resolved the structure of the complex by single particle cryo-electron microscopy (cryo-EM). Spike and CNTN1 interact with nanomolar affinity, driven by an avidity effect and mediated by the horseshoe moiety of CNTN1. The cryo-EM structure reveals that the CNTN1 Ig1-4 horseshoe is wedged in between two receptor binding domains (RBDs) and interacts, through Ig3, with a unique receptor interface at the base of the RBD in the up-conformation. This receptor interface is not previously described for other spike receptors but overlaps with the epitopes of several neutralizing monoclonal antibodies. Comparison of our data with available spike structures suggests one spike trimer can bind three CNTN1 molecules, or alternatively, different co-receptors such as ACE2 and CNTN1, simultaneously. These findings shed new light on the molecular determinants of SARS-CoV-2 neurotropism.

biochemistry↗

The glycan shield of alphaherpesvirus glycoprotein B modulates host co-receptor binding

Alphaherpesviruses can infect a wide range of cell types and are notorious for their neurotropism. They enter cells through the fusion activity of the essential viral glycoprotein gB. Interactions of gB with co-receptors Myelin Associated Glycoprotein (MAG), paired immunoglobulin-like type 2 receptor alpha (PILR) and Non-muscle Myosin Heavy Chain IIA (NMHC-IIA) influence cell tropism and infectivity. Both MAG and PILR are known to bind to sialic acids, highlighting the potential role for gB glycosylation in mediating the co-receptor interactions. Here, using glycoproteomics, cryo electron microscopy and surface plasmon resonance, we study the specificity of the three co-receptor interactions with gB from herpes simplex virus type 1 (HSV-1), type 2 (HSV-2), and varicella zoster virus (VZV). We show that all gB variants are heterogeneously N-glycosylated at six or seven predicted sites with moderate degrees of sialylation, complemented with extensive O-linked glycosylation at the disordered N-terminus and a flexible loop within domain II. All three gB variants bind to MAG with similar affinity, mediated by sialic acids on gB O-glycans. In contrast, PILR binds only to HSV-1 and HSV-2, but not VZV gB. PILR binding is also mediated by sialic acids on gB O-glycans, of which we identify multiple candidate sites in HSV-1 and HSV-2, and none in VZV gB. NMHC-IIA binds to HSV-1 gB and HSV-2 gB with high affinity through a glycan-independent interaction, and not to VZV gB. These data reveal divergent co-receptor specificity and interaction strength and provide an improved biophysical basis to understand human neurotropic herpesvirus infection.

biochemistry↗