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Chengwei Shao

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Open access Aug 2026

Serum Escape Landscape of SARS-CoV-2 Omicron JN.1 and XEC RBD Under COVID-19 Vaccine Breakthrough Immunity in China

Population immune pressure from vaccination and prior infection continues to drive the evolution of SARS-CoV-2. Systematic characterization of RBD mutations under complex immune backgrounds is essential for understanding viral adaptation and evolutionary trajectories. Here, we applied a deep mutational scanning (DMS) to comprehensively map the neutralization escape landscape of the Omicron variant JN.1 and its descendant lineage XEC, under immune pressure from individuals who experienced Omicron breakthrough infections following three doses of inactivated vaccines. A neutralization escape map for the single amino acid substitutions in the RBD of JN.1 or XEC was generated, and the escape efficiency of each mutation was determined. The results show that RBD escape mutations are hierarchically organized: low-intensity signals are widespread, whereas high-intensity escape is confined to a few key sites. These escape mutations are not confined solely to the receptor-binding motif (RBM) but are broadly distributed across the entire RBD. Many escape sites could accommodate multiple amino acid substitutions. Integration of DMS data with genomic surveillance of circulating variants from 2024 to 2025 revealed significant overlap between experimentally identified escape sites and mutations observed in natural isolates. This overlap increased substantially in 2025, with site concordance rising from 27.17% and 26.81% to 45.09% and 47.10% for JN.1 and XEC, respectively. The natural prevalence of these escape mutations is further shaped by factors such as receptor-binding affinity, protein stability, and epistatic interactions. Overall, our findings suggest that SARS-CoV-2 antigenic evolution follows the pattern of multiple pathways within a constrained space, providing new insights into the adaptive mechanisms of Omicron-derived variants under hybrid immune pressure.

Chengwei Shao, Jianguang Fu, Fei Deng et al. · 0 citations
Open access Jul 2026

Systemic immune profiling of heterologous versus homologous boosting of COVID-19 vaccination.

BACKGROUND Compared with homologous boosting, heterologous boosting with a different COVID-19 vaccine following priming generates stronger antibody responses against severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) as well as variants, particularly for inactivated COVID-19 vaccine(CoronaVac). However, it is still unclear about the potential immune enhancement mechanism underlying heterologous boosting. METHODS In this study, we isolated spike protein binding-specific monoclonal antibodies at day 180 post a homologous booster with CoronaVac or a heterologous booster with Ad5-nCoV based on two-dose of CoronaVac using the single B cell sorting platform. Subsequently, we verified their neutralization activity to SARS-CoV-2 variants, germline gene sequences and affinity kinetics targeting SARS-CoV-2 NTD/RBD/S1. Additionally, we conducted an in-depth analysis of the immunological response characteristics, by integrating single-cell RNA/V(D)J sequencing(scRNA/ V(D)J-seq). RESULTS Our study demonstrated that heterologous boosting with Ad5-nCoV elicited more mature B cells with higher affinity and activated more abundant immune-related pathways compared to the homologous boosting with CoronaVac. In addition, Ad5-nCoV boosting expanded unique clonal types of B and T cells, whereas CoronaVac boosting led to a small-sized clonal expansion. Furthermore, the utilization of germlines associated with neutralizing antibody were preferentially enriched in recipients with Ad5-nCoV boosting. CONCLUSIONS Above all, our study gives insights for elaborating the systemic immune landscape of heterologous-boosting COVID-19 immunization by the novel single B cell sorting platform and scRNA/V(D)J-seq technology. TRIAL REGISTRATION NUMBER NCT04892459.

Xu Han, Hudachuan Jiang, Hui Zheng et al. · 0 citations