Search bioRxiv⌕ Search

Biology subjects

Kulakova, L.

Publications and source records attributed to Kulakova, L..

4 recordsLinked to original sources

mAbClust with AlphaFold 3 avoids hallucinations to define a quaternary broadly neutralizing HCV epitope

The hepatitis C virus (HCV) envelope glycoprotein E1E2 heterodimer is the target of broadly neutralizing antibodies (bNAbs). Although prior studies have indicated that E1-dependent bNAbs are associated with spontaneous clearance of HCV, all E1-dependent human monoclonal antibodies (mAbs) have been isolated from individuals with chronic HCV infection. Here, we isolated E1-dependent bNAbs from an individual with high neutralizing antibody breadth who spontaneously cleared HCV, showing that these bNAbs bind to four distinct sites on E1E2. We also developed mAbClust, an algorithm that improves identification of accurate AlphaFold 3 (AF3) structure predictions of antigen-antibody complexes. We used AF3 and mAbClust to generate a high-confidence predicted structure of an E1-dependent bNAb in complex with E1E2, showing that this bNAb binds to a quaternary epitope spanning E1 and E2. This study identifies four neutralizing sites and a quaternary bNAb epitope associated with HCV control, which can guide HCV vaccine design. AF3 with mAbClust could have broad applications for accurate epitope mapping of antibodies.

immunology↗

B cell transcriptomics reveals lasting dysregulation and rapid decline of protective memory after hepatitis C cure

O_FIG O_LINKSMALLFIG WIDTH=187 HEIGHT=200 SRC="FIGDIR/small/664545v1_ufig1.gif" ALT="Figure 1"> View larger version (59K): org.highwire.dtl.DTLVardef@d12426org.highwire.dtl.DTLVardef@9c54daorg.highwire.dtl.DTLVardef@186d559org.highwire.dtl.DTLVardef@120f2f3_HPS_FORMAT_FIGEXP M_FIG O_FLOATNOGraphical abstractC_FLOATNO C_FIG HighlightsO_LIB cells in CHC patients retained dysregulated transcriptional profiles despite successful DAA treatment C_LIO_LIB cell dysregulation is marked by global B cell hyperactivation and antigen-specific atypical MBC expansion C_LIO_LISustained upregulation of TNF- signaling via NF-{kappa}B (TNF-/NF-{kappa}B) is a central driver of persistent B cell dysregulation and chronic inflammation C_LIO_LIViral clearance leads to restoration of IFN responses and IFN-stimulated gene (ISG) signatures in B cells but not TNF-/NF-{kappa}B C_LIO_LIHCV IGHV1-69 bnAb-producing B cells are enriched within the CD86hi IgG MBC subset before treatment C_LIO_LICD86hi IgG MBC subset contracts rapidly post-cure in parallel with the rapid decline of cross-nAb responses and loss of protective immune memory against HCV reinfection C_LI Chronic hepatitis C (CHC) disrupts host humoral immune response by impairing the timely generation of neutralizing antibody (nAb) and durable immune memory. However, the underlying mechanisms and their reversibility after viral clearance remain poorly defined. Here, through integrated single-cell transcriptomics and antibody repertoire characterization, we show that B cells from CHC patients retain transcriptional dysregulation even after successful antiviral therapy. Sustained TNF- signaling emerged as a central driver of chronic B cell hyperactivation, persistent dysregulation and unresolved inflammation following cure. Furthermore, a CD86hi memory B cell subset, responsible for an IGHV1-69-encoded multi-donor class recall nAb response, declined rapidly following viral clearance, compromising immune memory against reinfection. Together, these findings reveal how CHC imprints lasting B cell dysregulation, impairs nAb memory, and sustains inflammation in the B cell compartment, after viral clearance. The insights underscore the need for strategies aimed at restoring B cell homeostasis to achieve durable immune protection.

immunology↗

Native-like soluble E1E2 glycoprotein heterodimers on self-assembling protein nanoparticles for hepatitis C virus vaccine design

Hepatitis C virus (HCV) is a leading cause of chronic liver disease, cirrhosis, and hepatocellular carcinoma worldwide. E1E2-based HCV vaccine development has been hindered by the challenge of producing a soluble E1E2 (sE1E2) antigen that faithfully recapitulates the native glycoprotein heterodimer found on virions. Based on available cryo-electron microscopy (cryo-EM) structures, we rationally engineered sE1E2 for genotype 1a H77 by truncating the E1 and E2 stems (Cut1), removing a putative fusion peptide (pFP)-containing region in E1 (Cut2), and stabilizing the E1-E2 interface with diverse heterodimeric scaffolds. All H77 sE1E2.Cut1+2 scaffolds showed native-like E1-E2 association and robust binding to the broadly neutralizing antibody (bNAb) AR4A. A genotype 1a HCV-1 sE1E2.Cut1+2 variant scaffolded by a modified SpyTag/SpyCatcher (SPY{Delta}N) was selected for in vitro, structural, and immunogenic characterization. The structure of this sE1E2 scaffold in complex with bNAbs was analyzed by cryo-EM and negative-stain EM (nsEM), with an nsEM-based approach developed for antibody epitope mapping. HCV-1 sE1E2.Cut1+2.SPY{Delta}N was displayed on self-assembling protein nanoparticles (SApNPs) to enhance immunogenicity. HCV-1 sE1E2.Cut1+2.SPY{Delta}N heterodimer and SApNPs with wildtype and modified glycans were tested in mice, revealing the beneficial effects of multivalent display and oligomannose enrichment. Our study provides a rigorous foundation for next-generation HCV vaccine development. ONE-SENTENCE SUMMARYRational design, characterization, and in vivo assessment of HCV soluble E1E2 heterodimer and nanoparticles will inform vaccine development.

microbiology↗

Glycoengineering of the hepatitis C virus E2 glycoprotein leads to improved biochemical properties and enhanced immunogenicity

An effective vaccine against hepatitis C virus (HCV) must elicit the production of broadly neutralizing antibodies (bnAbs) reproducibly against the E1E2 glycoprotein complex. Little is known about how glycan content affects this process. Ideally, glycans would maximize epitope exposure without compromising antigen stability or exposing new epitopes. However, typical recombinant vaccines contain considerable heterogeneity in glycan content, which can affect the antibody response and neutralization potency. Here we employed glycoengineered Chinese hamster ovary (geCHO) cell lines that impart nearly homogeneous glycosylation as a means to test how specific glycan features influence antigenicity and immunogenicity for the secreted HCV E2 ectodomain (sE2). Specific geCHO antigens exhibited a modest but reproducible increase in affinity for some mAbs relative to CHO- and HEK293-produced sE2. Surprisingly, one geCHO sE2 antigen failed to bind the CD81 receptor, indicating the potential for significant glycan effects on biochemical properties. We immunized mice with the four antigens and found the total antibody response to be the same for all groups. However, sera from one geCHO group exhibited a 7-fold improvement in neutralization against the homologous HCV pseudovirus and had the most mice whose sera exhibited neutralization activity against genotypes 1b, 2a, 2b, and 3. Further analysis identified beneficial and deleterious glycan features, and the glycan that correlated the most with decreased potency was relatively small. However, size was not the sole determinant of glycan-driven effects on the antibody response. In summary, glycan content impacts biochemical properties of antigens to varying degrees and such effects can influence immune response quality and uniformity.

immunology↗