Zhao Jiangyan, Zhu Yanxiao, Hu Jiao, Hu Zenglei, Liu Xiufan
Key Laboratory of Animal Infectious Diseases, School of Veterinary Medicine, Yangzhou University, Yangzhou 225009, Jiangsu, China.
Jiangsu Co-innovation Center for Prevention and Control of Important Animal Infectious Diseases and Zoonosis, Yangzhou University, Yangzhou 225009, Jiangsu, China.
Sheng Wu Gong Cheng Xue Bao. 2022 Jan 25;38(1):160-173. doi: 10.13345/j.cjb.210173.
The conserved hemagglutinin (HA) stem region of avian influenza virus (AIV) is an important target for designing broad-spectrum vaccines, therapeutic antibodies and diagnostic reagents. Previously, we obtained a monoclonal antibody (mAb) (5D3-1B5) which was reactive with the HA stem epitope (aa 428-452) of H7N9 subtype AIV. To systematically characterize the mAb, we determined the antibody titers, including the HA-binding IgG, hemagglutination-inhibition (HI) and virus neutralizing (VN) titers. In addition, the antigenic epitope recognized by the antibody as well as the sequence and structure of the antibody variable region (VR) were also determined. Moreover, we evaluated the cross-reactivity of the antibody with influenza virus strains of different subtypes. The results showed that the 5D3-1B5 antibody had undetectable HI and VN activities against H7N9 virus, whereas it exhibited strong reactivity with the HA protein. Using the peptide-based enzyme-linked immunosorbent assay and biopanning with a phage-displayed random peptide library, a motif with the core sequence (W-Y-L) in the C-helix domain in the HA stem was identified as the epitope recognized by 5D3-1B5. Moreover, the mAb failed to react with the mutant H7N9 virus which contains mutations in the epitope. The VR of the antibody was sequenced and the complementarity determining regions in the VR of the light and heavy chains were determined. Structural modeling and molecular docking analysis of the VR verified specific binding between the antibody and the C-helix domain of the HA stem. Notably, 5D3-1B5 showed a broad cross-reactivity with influenza virus strains of different subtypes belonging to groups 1 and 2. In conclusion, 5D3-1B5 antibody is a promising candidate in terms of the development of broad-spectrum virus diagnostic reagents and therapeutic antibodies. Our findings also provided new information for understanding the epitope characteristics of the HA protein of H7N9 subtype AIV.
禽流感病毒(AIV)保守的血凝素(HA)茎区是设计广谱疫苗、治疗性抗体和诊断试剂的重要靶点。此前,我们获得了一种单克隆抗体(mAb)(5D3-1B5),它与H7N9亚型AIV的HA茎表位(氨基酸428-452)具有反应性。为了系统地表征该单克隆抗体,我们测定了抗体效价,包括HA结合IgG、血凝抑制(HI)和病毒中和(VN)效价。此外,还确定了抗体识别的抗原表位以及抗体可变区(VR)的序列和结构。此外,我们评估了该抗体与不同亚型流感病毒株的交叉反应性。结果表明,5D3-1B5抗体对H7N9病毒的HI和VN活性检测不到,但其与HA蛋白表现出强反应性。使用基于肽的酶联免疫吸附测定和噬菌体展示随机肽库的生物淘选,HA茎C螺旋结构域中核心序列为(W-Y-L)的基序被鉴定为5D3-1B5识别的表位。此外,该单克隆抗体不能与表位发生突变的突变型H7N9病毒反应。对抗体的VR进行测序,并确定轻链和重链VR中的互补决定区。VR的结构建模和分子对接分析验证了抗体与HA茎C螺旋结构域之间的特异性结合。值得注意的是,5D3-1B5与属于第1组和第2组的不同亚型流感病毒株表现出广泛的交叉反应性。总之,就开发广谱病毒诊断试剂和治疗性抗体而言,5D3-1B5抗体是一个有前景的候选物。我们的研究结果也为理解H7N9亚型AIV的HA蛋白的表位特征提供了新信息。