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Enhancing immunogenicity and transmission-blocking activity of malaria vaccines by fusing Pfs25 to IMX313 multimerization technology.

机译:通过将Pfs25与IMX313多聚化技术融合来增强疟疾疫苗的免疫原性和传播阻断活性。

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摘要

Transmission-blocking vaccines (TBV) target the sexual-stages of the malaria parasite in the mosquito midgut and are widely considered to be an essential tool for malaria elimination. High-titer functional antibodies are required against target antigens to achieve effective transmission-blocking activity. We have fused Pfs25, the leading malaria TBV candidate antigen to IMX313, a molecular adjuvant and expressed it both in ChAd63 and MVA viral vectors and as a secreted protein-nanoparticle. Pfs25-IMX313 expressed from viral vectors or as a protein-nanoparticle is significantly more immunogenic and gives significantly better transmission-reducing activity than monomeric Pfs25. In addition, we demonstrate that the Pfs25-IMX313 protein-nanoparticle leads to a qualitatively improved antibody response in comparison to soluble Pfs25, as well as to significantly higher germinal centre (GC) responses. These results demonstrate that antigen multimerization using IMX313 is a very promising strategy to enhance antibody responses against Pfs25, and that Pfs25-IMX313 is a highly promising TBV candidate vaccine.
机译:阻断传播疫苗(TBV)针对蚊子中肠内疟疾寄生虫的性生活阶段,被广泛认为是消除疟疾的重要工具。需要针对目标抗原的高滴度功能性抗体才能实现有效的阻断传输活性。我们将领先的疟疾TBV候选抗原Pfs25与分子佐剂IMX313融合,并在ChAd63和MVA病毒载体中以及作为分泌的蛋白质纳米颗粒表达了它。从病毒载体表达或作为蛋白质纳米颗粒表达的Pfs25-IMX313比单体Pfs25具有更高的免疫原性,并具有明显更好的传播减少活性。此外,我们证明,与可溶性Pfs25相比,Pfs25-IMX313蛋白纳米颗粒可导致定性改善的抗体应答,并且可显着提高生发中心(GC)应答。这些结果证明,使用IMX313进行抗原多聚是增强针对Pfs25的抗体应答的非常有前途的策略,并且Pfs25-IMX313是高度有前途的TBV候选疫苗。

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