细胞外囊泡结合倒置流感HA免疫可引起小鼠HA茎特异性免疫和交叉保护。

IF 12 1区 医学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Molecular Therapy Pub Date : 2025-02-05 Epub Date: 2024-12-30 DOI:10.1016/j.ymthe.2024.12.052
Wandi Zhu, Chunhong Dong, Lai Wei, Joo Kyung Kim, Bao-Zhong Wang
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引用次数: 0

摘要

加强呼吸道的保护性免疫对对抗流感感染和传播至关重要。开发粘膜通用流感疫苗需要有效的递送平台来克服呼吸道粘膜屏障并刺激适当的先天免疫反应,从而将适应性免疫反应与最小的必要炎症连接起来。同时,疫苗平台必须具有生物相容性。本研究采用细胞源性细胞外囊泡(EVs)作为粘膜通用流感疫苗平台。通过HA-受体相互作用将流感血凝素(HA)偶联到EV表面,我们获得了一个倒置的流感HA结构,暴露了保守的HA柄区域,同时部分隐藏了球状头结构域。用所得ev经鼻免疫可在小鼠中诱导强大的HA茎和病毒特异性血清抗体和粘膜免疫反应,保护小鼠免受异源病毒感染。值得注意的是,来自肺上皮细胞系A549的ev在鼻内免疫时诱导了更好的交叉反应抗体和增强的保护。结合多价透明质酸的ev可引起广泛的交叉反应抗体和细胞应答,以对抗不同的流感毒株。我们的研究结果表明,ev结合多个倒置的HAs是开发粘膜通用流感疫苗的有效策略。
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Inverted HA-EV immunization elicits stalk-specific influenza immunity and cross-protection in mice.

Enhancing protective immunity in the respiratory tract is crucial to combat influenza infection and transmission. Developing mucosal universal influenza vaccines requires effective delivery platforms to overcome the respiratory mucosal barrier and stimulate appropriate innate immune reactions, thereby bridging adaptive immune responses with minimal necessary inflammation. Meanwhile, the vaccine platforms must be biocompatible. This study employed cell-derived extracellular vesicles (EVs) as a mucosal universal influenza vaccine platform. By conjugating influenza hemagglutinin (HA) onto EV surfaces through HA-receptor interaction, we achieved an upside-down (inverted) influenza HA configuration that exposed the conserved HA stalk region while partially hiding the globular head domain. Intranasal immunization with the resulting EVs induced robust HA stalk- and virus-specific serum antibody and mucosal immune responses in mice, protecting against heterologous virus infection. Notably, EVs derived from the lung epithelial cell line A549 induced superior cross-reactive antibodies and enhanced protection upon intranasal immunization. EVs conjugating multivalent HA elicited broadly cross-reactive antibody and cellular responses against different influenza strains. Our results demonstrated that EVs conjugating multiple inverted HAs represented an effective strategy for developing a mucosal universal influenza vaccine.

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来源期刊
Molecular Therapy
Molecular Therapy 医学-生物工程与应用微生物
CiteScore
19.20
自引率
3.20%
发文量
357
审稿时长
3 months
期刊介绍: Molecular Therapy is the leading journal for research in gene transfer, vector development, stem cell manipulation, and therapeutic interventions. It covers a broad spectrum of topics including genetic and acquired disease correction, vaccine development, pre-clinical validation, safety/efficacy studies, and clinical trials. With a focus on advancing genetics, medicine, and biotechnology, Molecular Therapy publishes peer-reviewed research, reviews, and commentaries to showcase the latest advancements in the field. With an impressive impact factor of 12.4 in 2022, it continues to attract top-tier contributions.
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