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仿生蛋白纳米颗粒促进树突状细胞的活化和交叉呈递。

Biomimetic protein nanoparticles facilitate enhanced dendritic cell activation and cross-presentation.

机构信息

Department of Chemical Engineering and Materials Science, University of California , Irvine, California 92697-2575, United States .

出版信息

ACS Nano. 2013 Nov 26;7(11):9743-52. doi: 10.1021/nn403085w. Epub 2013 Oct 9.

Abstract

Many current cancer vaccine strategies suffer from the inability to mount a CD8 T cell response that is strong enough to overcome the low immunogenicity of tumors. Viruses naturally possess the sizes, geometries, and physical properties for which the immune system has evolved to recognize, and mimicking those properties with nanoparticles can produce robust platforms for vaccine design. Using the nonviral E2 core of pyruvate dehydrogenase, we have engineered a viral-mimicking vaccine platform capable of encapsulating dendritic cell (DC)-activating CpG molecules in an acid-releasable manner and displaying MHC I-restricted SIINFEKL peptide epitopes. Encapsulated CpG activated bone marrow-derived DCs at a 25-fold lower concentration in vitro when delivered with the E2 nanoparticle than with unbound CpG alone. Combining CpG and SIINFEKL within a single multifunctional particle induced ∼3-fold greater SIINFEKL display on MHC I by DCs over unbound peptide. Importantly, combining CpG and SIINFEKL to the E2 nanoparticle for simultaneous temporal and spatial delivery to DCs showed increased and prolonged CD8 T cell activation, relative to free peptide or peptide-bound E2. By codelivering peptide epitopes and CpG activator in a particle of optimal DC-uptake size, we demonstrate the ability of a noninfectious protein nanoparticle to mimic viral properties and facilitate enhanced DC activation and cross-presentation.

摘要

许多当前的癌症疫苗策略都存在无法引发足够强大的 CD8 T 细胞反应来克服肿瘤低免疫原性的问题。病毒天然具有免疫系统进化而来识别的大小、形状和物理特性,而使用纳米粒子模拟这些特性可以为疫苗设计提供强大的平台。我们使用非病毒丙酮酸脱氢酶 E2 核心,设计了一种具有病毒模拟特性的疫苗平台,能够以可释放酸的方式封装树突状细胞 (DC) 激活的 CpG 分子,并展示 MHC I 受限的 SIINFEKL 肽表位。与未结合的 CpG 相比,E2 纳米颗粒以低 25 倍的浓度在体外激活骨髓来源的 DC 时,封装的 CpG 可激活 DC。将 CpG 和 SIINFEKL 结合在单个多功能颗粒中,可诱导 DC 上 MHC I 上的 SIINFEKL 表位表达增加约 3 倍,而未结合的肽则增加 3 倍。重要的是,将 CpG 和 SIINFEKL 与 E2 纳米颗粒同时递送至 DC 进行时空递呈,与游离肽或肽结合的 E2 相比,可增强 CD8 T 细胞的激活和延长。通过在最佳 DC 摄取大小的颗粒中共同递呈肽表位和 CpG 激活剂,我们证明了非感染性蛋白纳米颗粒模拟病毒特性并促进增强 DC 激活和交叉呈递的能力。

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