设计利用先前接种BCG疫苗的结构内帮助的抗病毒疫苗。

Tony W Ng, Steven A Porcelli
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摘要

疫苗是对抗传染病影响和传播的最有效工具之一。然而,疫苗的不平等可能会降低疫苗的有效性,特别是在资源匮乏地区爆发严重传染病期间。正如许多缺乏足够医疗基础设施和经济资源的发展中国家所看到的那样,潜在的救命疫苗的获取和分发可能受到限制,导致长期痛苦和死亡人数增加。为了提高疫苗公平性,疫苗设计必须考虑到成功开展疫苗接种运动所需的后勤保障,特别是在最脆弱的人群中。在发表在《免疫学杂志》上的题为“利用Bacille Calmette Guérin疫苗中预先存在的CD4+T细胞帮助来改善抗病毒抗体反应”的手稿中,作者设计了一种针对埃博拉病毒(EBOV)糖蛋白的重组亚单位疫苗,该疫苗可以利用先前接种BCG疫苗时预先存在的T辅助细胞。作为一种添加明矾的重组亚单位疫苗,这种方法具有许多特点,非常适合发展中国家的疫苗设计,如相对易于生产、可扩展性和分发。此外,BCG免疫的高流行率和对分枝杆菌的自然免疫力在世界许多地区赋予了这种疫苗的特点,应该会提高居住在这些地区的人群的效力和效力。由于使用预先存在的BCG特异性Th细胞的辅助活性来驱动抗体反应,需要较低的疫苗剂量,这是疫苗生产的主要优势。此外,BCG特异性Th细胞还刺激免疫球蛋白类别转换为对激活Fcγ受体(FcγRs)具有强亲和力的IgG同种型。总之,我们提出,在BCG特异性Th细胞的结构内帮助下设计亚单位疫苗可以提高对病毒感染的保护,并代表了一种疫苗设计,该疫苗设计通常可以适应其他新出现的病毒病原体,用于控制和预防许多发展中国家的感染。
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Designing Anti-Viral Vaccines that Harness Intrastructural Help from Prior BCG Vaccination.

Vaccines are among the most effective tools for combatting the impact and spread of infectious diseases. However, the effectiveness of a vaccine can be diminished by vaccine inequality, particularly during severe outbreaks of infectious diseases in resource-poor areas. As seen in many developing countries that lack adequate healthcare infrastructure and economic resources, the acquisition and distribution of potentially life-saving vaccines may be limited, leading to prolonged suffering and increased deaths. To improve vaccine equity, vaccine design must take into consideration the logistics needed to implement a successful vaccination drive, particularly among the most vulnerable populations. In the manuscript titled "Exploiting Pre-Existing CD4+ T Cell Help from Bacille Calmette-Guérin Vaccination to Improve Antiviral Antibody Responses" published in the Journal of Immunology, the authors designed a recombinant subunit vaccine against the Ebola virus (EBOV) glycoprotein that can harness the pre-existing T helper cells from prior BCG vaccination. As a recombinant subunit vaccine adjuvanted with alum, this approach has many features that make it well suited for the design of vaccines for developing nations, such as relative ease of production, scalability, and distribution. In addition, the high prevalence of BCG immunization and natural immunity to mycobacteria in many regions of the world endow such vaccines with features that should increase potency and efficacy among populations residing in such regions. As a result of using the helper activity of pre-existing BCG-specific Th cells to drive antibody responses, a lower vaccine dose is needed, which is a major advantage for vaccine manufacture. Furthermore, the BCG-specific Th cells also stimulate immunoglobulin class switching to IgG isotypes that have strong affinities for activating Fc-gamma receptors (FcγRs). Taken together, we propose that the design of subunit vaccines with intrastructural help from BCG-specific Th cells can improve protection against viral infection and represents a vaccine design that can be generally adapted to other emerging viral pathogens for the control and prevention of infection in many developing countries.

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