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抗岩藻糖基化IgG纳米抗体的糖型特异性机制及对抗体依赖性增强作用的保护

Mechanism of glycoform specificity and protection against antibody dependent enhancement by an anti-afucosylated IgG nanobody.

作者信息

Gupta Aaron, Kao Kevin, Yamin Rachel, Oren Deena A, Goldgur Yehuda, Du Jonathan, Lollar Pete, Sundberg Eric J, Ravetch Jeffrey V

出版信息

bioRxiv. 2023 Jan 24:2023.01.23.525277. doi: 10.1101/2023.01.23.525277.

DOI:10.1101/2023.01.23.525277
PMID:36747840
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9900767/
Abstract

Immunoglobulin G (IgG) antibodies contain a single, complex -glycan on each IgG heavy chain protomer embedded in the hydrophobic pocket between its Cγ2 domains. The presence of this glycan contributes to the structural organization of the Fc domain and determines its specificity for Fcγ receptors, thereby determining distinct cellular responses. On the Fc, the variable construction of this glycan structure leads to a family of highly-related, but non-equivalent glycoproteins known as glycoforms. We previously reported the development of synthetic nanobodies that distinguish IgG glycoforms without cross-reactivity to off-target glycoproteins or free glycans. Here, we present the X-ray crystal structure of one such nanobody, X0, in complex with its specific binding partner, the Fc fragment of afucosylated IgG1. Two X0 nanobodies bind a single afucosylated Fc homodimer at the upper Cγ2 domain, making both protein-protein and protein-carbohydrate contacts and overlapping the binding site for Fcγ receptors. Upon binding, the elongated CDR3 loop of X0 undergoes a conformational shift to access the buried -glycan and acts as a 'glycan sensor', forming hydrogen bonds with the afucosylated IgG -glycan that would otherwise be sterically hindered by the presence of a core fucose residue. Based on this structure, we designed X0 fusion constructs that disrupt pathogenic afucosylated IgG1-FcγRIIIa interactions and rescue mice in a model of dengue virus infection.

摘要

免疫球蛋白G(IgG)抗体在每个IgG重链原体上含有一个单一的复杂N-聚糖,该聚糖嵌入其Cγ2结构域之间的疏水口袋中。这种聚糖的存在有助于Fc结构域的结构组织,并决定其对Fcγ受体的特异性,从而决定不同的细胞反应。在Fc上,这种聚糖结构的可变构建导致了一类高度相关但不等同的糖蛋白家族,即糖型。我们之前报道了合成纳米抗体的开发,这些纳米抗体能够区分IgG糖型,且不会与脱靶糖蛋白或游离聚糖发生交叉反应。在此,我们展示了一种这样的纳米抗体X0与它的特异性结合伴侣——去岩藻糖基化IgG1的Fc片段形成复合物的X射线晶体结构。两个X0纳米抗体在上部Cγ2结构域结合单个去岩藻糖基化的Fc同二聚体,形成蛋白质-蛋白质和蛋白质-碳水化合物接触,并与Fcγ受体的结合位点重叠。结合后,X0的延长CDR3环发生构象转变以接近埋藏的N-聚糖,并作为“聚糖传感器”,与去岩藻糖基化的IgG N-聚糖形成氢键,否则该氢键会因核心岩藻糖残基的存在而受到空间位阻。基于此结构,我们设计了X0融合构建体,其可破坏致病性去岩藻糖基化IgG1-FcγRIIIa相互作用,并在登革病毒感染模型中拯救小鼠。

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