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Covering Aluminum Oxide Nanoparticles with Biocompatible Materials to Efficiently Deliver Subunit Vaccines

机译:用生物相容性材料覆盖氧化铝纳米颗粒,以有效地提供亚单位疫苗

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摘要

Subunit vaccines have advantages of good safety, minimal reactogenicity, and high specificity. However, subunit vaccines also show a crucial disadvantage of poor immunogenicity and, therefore, are often formulated with an adjuvant carrier to form a vaccine adjuvant-delivery system (VADS) to enhance their efficacies. Alums, the coarse aggregates of the insoluble aluminum salts, are the conventional adjuvants and have been widely used in clinical vaccines for a long time. Unfortunately, alums also show two main drawbacks of low potency in eliciting cellular immunity, and high reactogenicity to cause unwanted inflammations. Therefore, herein the phospholipid bilayer-coated aluminum oxide nanoparticles (PLANs) and the PEGylated PLANs (PEG-PLANs) were engineered as a VADS to overcome the drawbacks of both subunit vaccines and coarse alums, while synergizing their functions. In vitro experiments demonstrated that, unlike the micron-sized alums, the nanosized PLANs and PEG-PLANs loaded with model antigen of ovalbumin (OVA) showed a high safety profile and were able to promote APC (antigen-presenting cell) uptake and engender lysosome escape for enhancing the MHC (major histocompatibility complex)-I-antigen display. Subcutaneously administered to mice, PLANs and, especially, PEG-PLANs smoothly trafficked into the draining lymph nodes, wherein the densely clustered immune cells were activated in substantial numbers, leading to robust immunoresponses and efficient production of the anti-antigen antibodies and CD8+ T cells. Thus, the aluminum-based nanocarriers, especially the PEG-PLANs, are a promising VADS possessing the potential of eliciting strong and comprehensive immunity against pathogens.
机译:亚单位疫苗具有良好的安全性,最小的反应源性和高特异性的优点。然而,亚基疫苗还显示出免疫原性差的关键缺点,因此通常用佐剂载体配制,以形成疫苗辅助输送系统(VAD)以增强它们的效率。 Alums,不溶性铝盐的粗聚集,是常规佐剂,并且已广泛用于临床疫苗长期。不幸的是,Alums还显示出诱导细胞免疫力和高反应性的两种主要缺点,以引起不必要的炎症。因此,在此,磷脂双层涂覆的氧化铝纳米颗粒(计划)和聚乙二醇化的计划(PEG-RAPLA)作为VAD设计,以克服亚基疫苗和粗粮的缺点,同时协同它们的功能。体外实验证明,与微米尺寸的明矾不同,纳米级的计划和栓子计划与卵烧蛋白(OVA)的模型抗原一起显示出高安全性,并且能够促进APC(抗原呈递细胞)摄取和发电机组逃生以增强MHC(主要组织相容性复合物)-i-抗原显示。皮下给予小鼠,计划和尤其是PEG-and,其中佩格拉计划被平滑地被贩运到排水淋巴结中,其中将密集的聚类免疫细胞以大量激活,导致耐受免疫信念和有效的抗抗抗原抗体和CD8 + T细胞的产生。 。因此,基于铝基纳米载体,尤其是PEG - 计划是具有引起诱导强大和综合免疫性的潜力的有前途的VAD。

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