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工程化具有可控形状和纵横比的羟磷灰石纳米佐剂揭示其免疫调节潜力。

Engineered Hydroxyapatite Nanoadjuvants with Controlled Shape and Aspect Ratios Reveal Their Immunomodulatory Potentials.

机构信息

State Key Laboratory of Fine Chemicals, Dalian University of Technology, 2 Linggong Road, Dalian 116024, P. R. China.

School of Chemical Engineering, Dalian University of Technology, 2 Linggong Road, Dalian 116024, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2021 Dec 22;13(50):59662-59672. doi: 10.1021/acsami.1c17804. Epub 2021 Dec 12.

DOI:10.1021/acsami.1c17804
PMID:34894655
Abstract

Hydroxyapatite (HAP) has been formulated as adjuvants in vaccines for human use. However, the optimal properties required for HAP nanoparticles to elicit adjuvanticity and the underlying immunopotentiation mechanisms have not been fully elucidated. Herein, a library of HAP nanorods and nanospheres was synthesized to explore the effect of the particle shape and aspect ratio on the immune responses and adjuvanticity . It was demonstrated that long aspect ratio HAP nanorods induced a higher degree of cell membrane depolarization and subsequent uptake, and the internalized particles elicited cathepsin B release and mitochondrial reactive oxygen species generation, which further led to pro-inflammatory responses. Furthermore, the physicochemical property-dependent immunostimulation capacities were correlated with their humoral responses in a murine hepatitis B surface antigen immunization model, with long aspect ratio HAP nanorods inducing higher antigen-specific antibody productions. Importantly, HAP nanorods significantly up-regulated the IFN-γ secretion and CD107α expression on CD8 T cells in immunized mice. Further mechanistic studies demonstrated that HAP nanorods with defined properties exerted immunomodulatory effects by enhanced antigen persistence and immune cell recruitments. Our study provides a rational design strategy for engineered nanomaterial-based vaccine adjuvants.

摘要

羟基磷灰石(HAP)已被制成用于人体疫苗的佐剂。然而,HAP 纳米粒子发挥佐剂活性和潜在免疫增强机制所需的最佳性质尚未完全阐明。在此,我们合成了一系列 HAP 纳米棒和纳米球,以探索颗粒形状和纵横比对免疫反应和佐剂活性的影响。结果表明,长纵横比的 HAP 纳米棒诱导更高程度的细胞膜去极化和随后的摄取,内化的颗粒引发组织蛋白酶 B 释放和线粒体活性氧生成,进而导致促炎反应。此外,与在小鼠乙型肝炎表面抗原免疫模型中的体液反应相关的理化性质依赖性免疫刺激能力,长纵横比的 HAP 纳米棒诱导更高的抗原特异性抗体产生。重要的是,HAP 纳米棒在免疫小鼠中显著上调 CD8 T 细胞上的 IFN-γ 分泌和 CD107α 表达。进一步的机制研究表明,具有特定性质的 HAP 纳米棒通过增强抗原持续存在和免疫细胞募集发挥免疫调节作用。我们的研究为基于工程纳米材料的疫苗佐剂提供了合理的设计策略。

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