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S 颗粒展示轮状病毒 VP8* 疫苗在小鼠中的免疫应答和保护效力。

Immune response and protective efficacy of the S particle presented rotavirus VP8* vaccine in mice.

机构信息

Division of Infectious Diseases, Cincinnati Children's Hospital Medical Center, Cincinnati, OH, USA.

Division of Infectious Diseases, Cincinnati Children's Hospital Medical Center, Cincinnati, OH, USA; Department of Pediatrics, University of Cincinnati College of Medicine, Cincinnati, OH, USA.

出版信息

Vaccine. 2019 Jul 9;37(30):4103-4110. doi: 10.1016/j.vaccine.2019.05.075. Epub 2019 Jun 11.

Abstract

Rotaviruses cause severe diarrhea in infants and young children, leading to significant morbidity and mortality. Despite implementation of current rotavirus vaccines, severe diarrhea caused by rotaviruses still claims ∼200,000 lives of children with great economic loss worldwide each year. Thus, new prevention strategies with high efficacy are highly demanded. Recently, we have developed a polyvalent protein nanoparticle derived from norovirus VP1, the S particle, and applied it to display rotavirus neutralizing antigen VP8* as a vaccine candidate (S-VP8*) against rotavirus, which showed promise as a vaccine based on mouse immunization and in vitro neutralization studies. Here we further evaluated this S-VP8* nanoparticle vaccine in a mouse rotavirus challenge model. S-VP8* vaccines containing the murine rotavirus (EDIM strain) VP8* antigens (S-mVP8*) were constructed and immunized mice, resulting in high titers of anti-EDIM VP8* IgG. The S-mVP8* nanoparticle vaccine protected immunized mice against challenge of the homologous murine EDIM rotavirus at a high efficacy of 97% based on virus shedding reduction in stools compared with unimmunized controls. Our study further supports the polyvalent S-VP8* nanoparticles as a promising vaccine candidate against rotavirus and warrants further development.

摘要

轮状病毒会导致婴幼儿严重腹泻,造成重大发病率和死亡率。尽管目前已使用轮状病毒疫苗,但每年仍有约 20 万名儿童因轮状病毒导致严重腹泻而死亡,给全球造成巨大的经济损失。因此,人们迫切需要开发具有高疗效的新预防策略。最近,我们开发了一种源自诺如病毒 VP1 的多价蛋白纳米颗粒,即 S 颗粒,并将其用于展示轮状病毒中和抗原 VP8*,作为一种针对轮状病毒的候选疫苗(S-VP8*),基于小鼠免疫和体外中和研究显示出良好的前景。在这里,我们进一步在小鼠轮状病毒攻毒模型中评估了这种 S-VP8纳米颗粒疫苗。构建了含有鼠轮状病毒(EDIM 株)VP8抗原的 S-VP8疫苗,并对小鼠进行免疫接种,导致针对 EDIM VP8的 IgG 产生高滴度。与未免疫对照相比,S-mVP8纳米颗粒疫苗在粪便中病毒脱落减少的基础上,以 97%的高效力保护免疫小鼠免受同源鼠 EDIM 轮状病毒的攻毒。我们的研究进一步支持多价 S-VP8纳米颗粒作为一种有前途的轮状病毒候选疫苗,并值得进一步开发。

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