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调节支架疫苗中佐剂的释放动力学以调节适应性免疫反应。

Modulating Adjuvant Release Kinetics From Scaffold Vaccines to Tune Adaptive Immune Responses.

作者信息

Sobral Miguel C, Cabizzosu Laura, Kang Shawn J, Feng Zhaoqianqi, Ijaz Hamza, Mooney David J

机构信息

John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, MA, 02138, USA.

Wyss Institute for Biologically Inspired Engineering at Harvard University, Boston, MA, 02215, USA.

出版信息

Adv Healthc Mater. 2025 Feb;14(5):e2304574. doi: 10.1002/adhm.202304574. Epub 2024 May 21.

Abstract

Increasing the potency, quality, and durability of vaccines represents a major public health challenge. A critical parameter that shapes vaccine immunity is the spatiotemporal context in which immune cells interact with antigen and adjuvant. While various material-based strategies demonstrate that extended antigen release enhances both cellular and humoral immunity, the effect of adjuvant kinetics on vaccine-mediated immunity remains incompletely understood. Here, a previously characterized mesoporous silica rod (MPS) biomaterial vaccine is used to develop a facile, electrostatics-driven approach to tune in vivo kinetics of the TLR9 agonist cytosine phosphoguanosine oligodeoxynucleotide (CpG). It is demonstrated that rapid release of CpG from MPS vaccines, mediated by alterations in MPS chemistry that tune surface charge, generates potent cytotoxic T cell responses and robust, T helper type 1 (Th1)-skewed IgG2a/c antibody titers. Immunophenotyping of lymphoid organs after MPS vaccination with slow or fast CpG release kinetics suggests that differential engagement of migratory dendritic cells and natural killer cells may contribute to the more potent responses observed with rapid adjuvant release. Taken together, these findings suggest that vaccine approaches that pair sustained release of antigen with rapid release of adjuvants with similar characteristics to CpG may drive particularly potent Th1 responses.

摘要

提高疫苗的效力、质量和持久性是一项重大的公共卫生挑战。影响疫苗免疫的一个关键参数是免疫细胞与抗原和佐剂相互作用的时空背景。虽然各种基于材料的策略表明延长抗原释放可增强细胞免疫和体液免疫,但佐剂动力学对疫苗介导免疫的影响仍不完全清楚。在此,使用一种先前表征的介孔二氧化硅棒(MPS)生物材料疫苗来开发一种简便的、静电驱动的方法,以调节Toll样受体9激动剂胞嘧啶磷酸鸟苷寡脱氧核苷酸(CpG)的体内动力学。结果表明,通过调节表面电荷的MPS化学变化介导的CpG从MPS疫苗中的快速释放,可产生有效的细胞毒性T细胞反应以及强大的、1型辅助性T细胞(Th1)偏向型IgG2a/c抗体滴度。用慢或快CpG释放动力学的MPS疫苗接种后对淋巴器官进行免疫表型分析表明,迁移性树突状细胞和自然杀伤细胞的不同参与可能导致快速佐剂释放时观察到更强的反应。综上所述,这些发现表明,将抗原的持续释放与具有与CpG相似特性的佐剂的快速释放相结合的疫苗方法可能会驱动特别有效的Th1反应。

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