纳米体:流感病毒中和的新前沿。

IF 3.1 4区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Mohamed J Saadh, Waleed K Abdulsahib, Ashok Kumar Bishoyi, Suhas Ballal, Abhayveer Singh, Suman Saini, Khasankhodja Abidov, Kamal Kant Joshi, Munther Kadheem, Manizhe Jozpanahi, Mohammad Darvishi
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引用次数: 0

摘要

由季节性人类流感病毒引起的反复流行和大流行每年造成大量发病率,是全世界重大的公共卫生负担。抗病毒药物用于治疗流感感染,但有一些限制。因此,单克隆抗体治疗是一种令人兴奋和有前途的方法。纳米抗体,也被称为单结构域抗体,是一种新的抗体,来自于在羊驼、美洲驼和骆驼等骆驼类动物中发现的仅重链抗体。这些抗体通过多种机制靶向各种蛋白质来中和流感病毒。例如,它们可以针对血凝素蛋白来阻止其功能。通过专注于保守的表位,它们可以中和多种流感亚型,包括季节性流感毒株和可能的大流行变种。此外,这些抗体可以中和细胞外环境中自由漂浮的病毒,防止它们感染细胞。它们可以减少病毒载量,限制感染的传播。与传统抗体相比,使用纳米体来中和流感病毒具有许多优势。由于其独特的特性,纳米体在对抗流感、改善疾病管理和加强公共卫生反应方面发挥着至关重要的作用。本文综述了纳米体在流感病毒中和中的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nanobodies: a new frontier in influenza virus neutralization.

Recurrent epidemics and pandemics caused by seasonal human influenza viruses result in substantial morbidity and are a significant public health burden worldwide annually. Antiviral drugs are used to treat influenza infections but have several limitations.. Therefore, monoclonal antibody therapy is an exciting and promising approach. Nanobodies, also known as single-domain antibodies, are a new class derived from heavy-chain-only antibodies found in camelids like alpacas, llamas, and camels. These antibodies neutralize influenza viruses by targeting various proteins through multiple mechanisms. For example, they can target the hemagglutinin protein to prevent its functions. By focusing on conserved epitopes, they can neutralize a variety of influenza subtypes, including seasonal flu strains and possible pandemic variants. Additionally, these antibodies can neutralize free-floating viruses in the extracellular environment, preventing them from infecting cells. They can reduce the viral load and limit the spread of the infection. Using nanobodies to neutralize influenza viruses provides numerous advantages compared to conventional antibodies. Thanks to their unique properties, nanobodies play a crucial role in fighting influenza, improving disease management, and strengthening public health responses. In this review, we summarize the role of nanobodies in influenza virus neutralization.

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来源期刊
Folia microbiologica
Folia microbiologica 工程技术-生物工程与应用微生物
CiteScore
5.80
自引率
0.00%
发文量
82
审稿时长
6-12 weeks
期刊介绍: Unlike journals which specialize ever more narrowly, Folia Microbiologica (FM) takes an open approach that spans general, soil, medical and industrial microbiology, plus some branches of immunology. This English-language journal publishes original papers, reviews and mini-reviews, short communications and book reviews. The coverage includes cutting-edge methods and promising new topics, as well as studies using established methods that exhibit promise in practical applications such as medicine, animal husbandry and more. The coverage of FM is expanding beyond Central and Eastern Europe, with a growing proportion of its contents contributed by international authors.
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