佐剂
免疫系统
抗原
化学
细胞
合理设计
自愈水凝胶
T细胞
细胞生物学
获得性免疫系统
生物物理学
免疫增强剂
生物利用度
免疫原性
免疫学
树突状细胞
抗原提呈细胞
抗原处理
作者
jingjing Zhou,Shengying Zhang,Hu Dong,Yunhua Li,Haoyue Zang,zhidong Teng,Mingyang Zhang,Yifan Liu,Shiqi Sun,H. Guo
出处
期刊:Nanoscale
[Royal Society of Chemistry]
日期:2026-01-01
卷期号:18 (7): 3559-3574
摘要
The development of vaccine platforms that enable sustained codelivery of antigens and adjuvants remains a major challenge in modern vaccinology. Herein, we constructed a self-adjuvating hydrogel (GA@Mn) via the self-assembly of natural glycyrrhizic acid (GA) and subsequent coordination with Mn2+. This coordination facilitates gradual Mn2+ release during hydrogel degradation, overcoming the rapid clearance and poor bioavailability of soluble Mn2+in vivo. Notably, Mn2+ coordination drastically increased the crosslinking density of the GA hydrogel (GAgel) network, enhancing the storage modulus of GA@Mn by three orders of magnitude compared to the native GAgel. This superior mechanical stability allows GA@Mn to serve as an efficient antigen depot, prolonging the retention of both Mn2+ and the antigen at the injection site for up to 14 days. Meanwhile, GA@Mn promoted robust local immune cell recruitment, establishing an antigen-presenting cell (APC)-rich microenvironment. Subsequently, GA@Mn activation of the STING pathway enhanced the dendritic cell (DC) maturation and antigen uptake by 2.4-fold and 1.8-fold, respectively. In mice, a single injection of GA@Mn significantly potentiated antigen-specific humoral and cellular immune responses, leveraging a synergistic effect between the STING-activating capacity of Mn2+ and the depot-forming ability of the hydrogel. In summary, this study presents a facilely fabricated GA@Mn hydrogel vaccine platform that enables sustained codelivery of the antigen and adjuvant (Mn2+) for robust immune enhancement. This work provides a new paradigm for the rational design of metal ion-coordinated hydrogel vaccines.
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