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◆ Vaccine2026-09-05

Secretory expression of tetrameric neuraminidase enhanced by signal peptide optimization elicits robust immunity against influenza infection in mice.

Lisha Deng, Xianmiao Ye, Xin Chen, Xinru Hu, Xinyu Zhang, Zirong Han, Caijun Sun

原始摘要(英文原文)· Original abstract
Neuraminidase (NA), a key surface glycoprotein of influenza viruses, represents a more conserved antigenic target than hemagglutinin (HA) and has attracted interest as a potential target for vaccines with broader protective capacity. Nevertheless, the inefficient secretory production of tetrameric NA that maintain tetramer-like structural features remains challenging.Here, we developed an optimized signal peptide, opt-sp, by introducing valine and asparagine residues at the N-terminus of the Gaussia luciferase signal peptide (Gluc-sp) and incorporating a measles virus phosphoprotein-derived tetramerization domain. In a systematic comparison with three commonly used signal peptides, including tissue plasminogen activator (tPA), immunoglobulin G signal peptide (IgG-sp), and Gluc-sp, opt-sp was associated with increased relative secretion of NA protein under the tested expression conditions. Native PAGE analysis further suggested the presence of tetramer-like NA species. In mice,a DNA vaccine encoding opt-sp-fused NA elicited substantially stronger NA-specific humoral and cellular immune responses than constructs bearing conventional signal peptides and provided improved protection against homologous A/California/04/2009 (H1N1) challenge. These findings identify opt-sp as a promising signal peptide candidate for improving recombinant NA secretion and support further evaluation of this strategy for NA-based influenza vaccine development, including future studies of heterologous protection.
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Secretory expression of tetrameric neuraminidase enhanced by signal peptide optimization elicits robust immunity against influenza infection in mice. — 科研速览 Science Skim