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具有吡啶二硫键偶联抗原的聚合物胶束经淋巴管运输,并在免疫接种后显示出增强的细胞反应。

Polymer micelles with pyridyl disulfide-coupled antigen travel through lymphatics and show enhanced cellular responses following immunization.

机构信息

Institute of Bioengineering, École Polytechnique Fédérale de Lausanne (EPFL), CH-1015 Lausanne, Switzerland.

出版信息

Acta Biomater. 2012 Sep;8(9):3210-7. doi: 10.1016/j.actbio.2012.06.007. Epub 2012 Jun 12.

DOI:10.1016/j.actbio.2012.06.007
PMID:22698945
Abstract

Poly(ethylene glycol)-stabilized poly(propylene sulfide) core (PEG-PPS) nanoparticles (NPs) smaller than 50 nm efficiently travel to draining lymph nodes and interact with antigen-presenting cells (APCs) to induce potent immune responses following intradermal immunization. To determine if a similar system could be developed that could be more easily and reproducibly prepared and eliminated faster in vivo, we created block copolymers of PEG-bl-PPS capable of self-assembling into 25-35 nm micelles (MCs). Biodistribution studies showed that these MCs were able to travel to draining lymph nodes, where they preferentially interacted with APCs. To couple cysteine-containing antigens to the surface of the MCs, a new polymer was synthesized with a terminal pyridyl disulfide (PDS), forming PDS-PEG-bl-PPS-benzyl. When mice were immunized in conjunction with free CpG as an adjuvant, ovalbumin-conjugated MCs (MC-Ova) generated more (2.4-fold) Ova-specific CD8(+) T cells in the blood and higher (1.7-fold) interferon-gamma levels from splenocytes upon restimulation than in mice immunized with free Ova and CpG. When comparing this MC platform to our PEG-PPS NPs with disulfide-linked Ova, no significant differences were found in the measured responses. These results indicate that PDS-functionalized MCs are efficient antigen delivery vehicles that enhance immune responses compared to immunization with free protein.

摘要

聚乙二醇稳定的聚丙硫醚核(PEG-PPS)纳米颗粒(NPs)小于 50nm 时,能够有效地进入引流淋巴结,并与抗原呈递细胞(APCs)相互作用,在皮内免疫后诱导强烈的免疫反应。为了确定是否可以开发出一种类似的系统,使其更容易且更可重现地制备,并在体内更快地消除,我们合成了能够自组装成 25-35nm 胶束(MCs)的 PEG-b-PPS 嵌段共聚物。体内分布研究表明,这些 MCs 能够进入引流淋巴结,在那里它们优先与 APCs 相互作用。为了将含有半胱氨酸的抗原偶联到 MCs 的表面,合成了一种带有末端吡啶二硫键(PDS)的新聚合物,形成 PDS-PEG-b-PPS-苄基。当小鼠与游离 CpG 作为佐剂一起免疫时,与游离 Ova 和 CpG 免疫的小鼠相比,偶联 MC-Ova 的小鼠血液中产生了更多(2.4 倍)的 Ova 特异性 CD8(+)T 细胞,脾细胞中的干扰素-γ水平更高(1.7 倍)。将这种 MC 平台与我们具有二硫键连接的 Ova 的 PEG-PPS NPs 进行比较时,在测量的反应中没有发现显著差异。这些结果表明,与游离蛋白免疫相比,PDS 功能化 MCs 是有效的抗原递送载体,可增强免疫反应。

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