中和
抗体
表位
免疫逃逸
聚糖
生物
计算生物学
免疫系统
病毒学
表位定位
糖基化
抗体库
机制(生物学)
中和抗体
化学
抗原
细胞生物学
嵌合体(遗传学)
互补决定区
免疫学
免疫优势
肽序列
抗原性
作者
Jianjie Zhou,Wenyu Li,Xiaoyun Wang,Junqing Sun,Shuxin Guo,Xiaoyu Rong,Zhou Tong,Lianpan Dai,William Jun Liu,Jianxun Qi,George F. Gao,Qihui Wang
标识
DOI:10.1073/pnas.2535385123
摘要
The N-terminal domain (NTD) of the SARS-CoV-2 spike (S) is a critical antibody target, yet its epitope organization, neutralization mechanisms, and immune evasion strategies remain incompletely resolved. Here, we classify NTD antibodies into nine spatially distinct classes (designated as NTD-1 to NTD-9), including a cryptic epitope defined here (NTD-8). Mechanistic studies reveal that NTD-5 and NTD-9 antibodies neutralize by inducing S1 shedding, thereby extending this mechanism to selected NTD-directed antibodies. Format profiling shows that while most NTD antibodies require bivalency, selected antibodies from NTD-3, NTD-5, and NTD-9 retain neutralizing activity in Fab form. Profiling 41 antibodies across prototype, Delta, and 17 Omicron subvariants defines an epitope-resolved escape landscape and enables dissection of three convergent evasion strategies: contact residue disruption, glycan shielding, and conformational remodeling. Notably, the KP.3.1.1 subvariant uses a dual escape mechanism in which ∆S31 introduces N30 glycosylation and substantially remodels the S27-R34 region, undermining recognition by both NTD-5 and NTD-9 antibodies. These findings provide a structural and mechanistic framework for rational vaccine and antibody design resilient to antigenic drift.
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