修饰的二肽纳米球作为重组疫苗的有效佐剂递送系统

S. Biswas, N. Yadav, A. Somanathan, P. Mukherjee, V. Chauhan
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摘要

重组蛋白疫苗在引发针对传染病的所需体液和细胞介导的免疫反应方面提供了一种没有安全风险的优势。但它们的缺点之一是免疫原性低,因此需要增强免疫原性的佐剂。有必要探索新技术,提供一种具有佐剂特性的无毒、可生物降解和生物相容的递送系统,纳米技术为基于纳米材料的疫苗佐剂提供了一个极好的平台。本文合成了一种C端含有ΔF的修饰二肽Arg-α,β-脱氢苯亚丹宁(RΔF),并用反相高效液相色谱(RP-HPLC)和质谱技术对其进行了表征。RΔF自组装成球形纳米颗粒(NP)后,有效地浓缩了重组恶性疟原虫表面蛋白,组氨酸标记的MSPFu24(Fu24H)。使用TEM对纳米颗粒制剂的形态特征进行了表征。ΔF-NPs和RΔF-Fu24H复合物对两种哺乳动物细胞系和人红细胞(RBCs)表现出良好的体外生物相容性。此外,用R∆F NP处理的小鼠显示出与未处理的对照组相似的组织学和血液学特性,这表明它们具有非常高的体内生物相容性。用RΔF-Fu24H纳米制剂处理的小鼠诱导了高滴度的抗Fu24H特异性抗体,并显示出混合的Th1和Th2特征,与美国食品药品监督管理局批准的佐剂Alhydrogel®相当。来自免疫小鼠的血清在体外抑制恶性疟原虫实验室株系3D7的红细胞侵袭活性,该活性与Alhydrogel®相当。本研究表明,高度生物相容性的基于二肽的纳米颗粒制剂可以进一步开发并在临床上用作引发免疫反应的有前途的抗原递送平台。
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Modified dipeptide based nanospheres as a potent adjuvating delivery system for recombinant vaccines
Recombinant protein vaccines offer an advantage without a safety risk in eliciting desired humoral and cell-mediated immune responses against infectious diseases. But one of their disadvantages is their low immunogenicity, thus requiring adjuvants that augment their immunogenicity. It is necessary to explore new technology that could provide a non-toxic, biodegradable, and biocompatible delivery system with adjuvant characteristics and nanotechnology provides an excellent platform for nanomaterial-based vaccine adjuvants. Here, we have synthesized a modified dipeptide, Arg-α, β-dehydrophenyalanine (RΔF) containing ΔF at its C-terminal, and characterized it using reversed-phase high-performance liquid chromatography (RP-HPLC) and mass spectrometry techniques. RΔF upon its self-assembly to spherical nanoparticles (NPs) efficiently condensed a recombinant Plasmodium falciparum surface protein, histidine-tagged MSPFu24 (Fu24H). The morphological characteristics of the nanoparticle formulation was characterized using TEM. RΔF NPs and RΔF-Fu24H complex showed excellent in vitro biocompatibility toward two mammalian cell lines and human red blood cells (RBCs). Furthermore, mice treated with R∆F NPs showed histological and haematological properties similar to the untreated control group which indicated their very high in vivo biocompatibility. Mice treated with RΔF-Fu24H nanoformulation induced a high titers of anti-Fu24H specific antibodies and showed a mixed Th1 and Th2 profile, comparable to the FDA-approved adjuvant Alhydrogel®. The sera from immunized mice inhibited the erythrocyte invasion activity of P. falciparum’s laboratory line 3D7 in vitro which was comparable to that of Alhydrogel®. The present study suggests that the highly biocompatible dipeptide-based nanoparticle formulation can further be developed and used in clinic as a promising antigen delivery platform to elicit immune responses.
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