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Yechezkel, I.

Publications and source records attributed to Yechezkel, I..

2 recordsLinked to original sources

Distinct mechanisms of antibody-mediated HCV neutralization revealed by nanobody-guided epitope mapping

Hepatitis C virus (HCV) remains a major global health challenge despite the availability of highly effective antiviral therapies, underscoring the need for a broadly protective vaccine. The envelope glycoprotein E2 is the principal target of neutralizing antibodies, yet the full repertoire of vulnerable epitopes and mechanisms of antibody-mediated neutralization remains incompletely understood. Here, we exploited the unique binding properties of camelid nanobodies to probe the antigenic landscape of HCV E2 beyond the immunodominant human antibody response. We isolated a diverse panel of E2-specific nanobodies, including broadly neutralizing antibodies with high-affinity cross-reactivity toward genetically diverse HCV isolates. By combining cross-neutralization assays, competition binding experiments, and high-resolution hydrogen-deuterium exchange mass spectrometry (HDX-MS), we identified three mechanistically distinct classes of neutralizing epitopes. While one class targets the canonical E2 neutralization face, a second class recognizes antigenic region 1 (AR1), independently validating and extending recent evidence that this region represents a functional site of viral vulnerability. These findings demonstrate that broadly neutralizing antibody responses extend beyond the canonical neutralization face and establish a broader framework for understanding HCV neutralization. More broadly, our study illustrates how alternative antibody repertoires can reveal functionally important antigenic surfaces that are underrepresented in conventional human antibody responses, providing new opportunities for the rational design of next-generation HCV vaccine immunogens.

biochemistry↗

Structural and biochemical insights into HCV envelope proteins for germline-targeting vaccines

Despite effective antivirals, Hepatitis C remains a global health burden, reflecting the difficulty of eliciting broadly neutralizing antibodies (bnAbs). For the Hepatitis C virus, bnAb responses are biased toward VH1-69-encoded Abs targeting a conserved epitope on the E2 glycoprotein, suggesting that effective immunogens must engage the corresponding germline B cell receptors. However, the structural basis of germline recognition remains unclear. Here, we show that germline-reverted VH1-69 bnAbs recognize the E2 core domain in a manner closely resembling mature Abs binding. High-resolution structures reveal a conserved mode of engagement, indicating that key epitope features are accessible prior to affinity maturation. Guided by these insights, we engineered E2 variants to enhance germline Ab interactions and stability. Although these designs increased affinity, they did not improve engagement of naive B cells, highlighting a key constraint in germline-targeting strategies. Together, our findings define principles governing germline recognition and inform the rational design of an HCV vaccine.

biochemistry↗