Manganese Pyrophosphate Mineralized DNA Nanovaccine Elicits Potent Humoral and Cellular Immunity

S Shuangbo Dang (State Key Laboratory of Chemical Resource Engineering College of Chemistry Beijing University of Chemical Technology Beijing People's Republic of China) Y Yun Sun (Immunological Materials Research Group 1) L Ling Chen (State Key Laboratory of Chemical Resource Engineering, College of Chemistry) Y Yuhang Dong (State Key Laboratory of Chemical Resource Engineering, College of Chemistry) Z Zibo Han (National Engineering Research Center for New Vaccine) J Junwei Hou X Xiaoshuang Wang Z Ziyao Kang (Immunological Materials Research Group 1 National Vaccine and Serum Institute (NVSI) Beijing People's Republic of China) Z Zhaoming Liu (Department of Chemistry) Z Zhuo Wang Q Qiming Li (The Sixth Laboratory) J Jin Ren (Immunological Materials Research Group 1) F Feng Li

Abstract

ABSTRACT Subunit vaccines offer safety and precision but require adjuvants to overcome weak immunogenicity, particularly for the induction of cellular immunity. Herein, we develop a manganese pyrophosphate mineralized DNA bi‐adjuvant‐based subunit vaccine platform via biomineralization, which demonstrated the capability to elicit robust antigen‐specific cellular immune responses. The Mn/CpG bi‐adjuvant modulated the balance between Th1 and Th2 immune responses. More importantly, the synergistic activation of Toll‐like receptor 9‐like (TLR9) signaling pathways by CpG and cGAS‐STING pathways mediated by Mn(II) ions robustly enhanced cellular immunity, which was a magnitude of enhancement over commercial aluminum‐based adjuvants both in vitro and in vivo. Furthermore, the mechanistic studies revealed that the Mn(II)‐based nanoadjuvant effectively promoted Th1‐biased cellular immune response, as evidenced by an elevated IgG2a/IgG1 ratio and enhanced Th1‐associated cytokine secretion, alongside a potential reduction in regulatory T cell activity. These insights established critical design principles essential for the development of next‐generation manganese‐derived adjuvant systems, thereby advancing the frontiers of vaccinology and immunology.

Article Details

Volume / Issue Vol. 65, Issue 31
Published July 27, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

S

Shuangbo Dang

State Key Laboratory of Chemical Resource Engineering College of Chemistry Beijing University of Chemical Technology Beijing People's Republic of China

Y

Yun Sun

Immunological Materials Research Group 1

L

Ling Chen

State Key Laboratory of Chemical Resource Engineering, College of Chemistry

Y

Yuhang Dong

State Key Laboratory of Chemical Resource Engineering, College of Chemistry

Z

Zibo Han

National Engineering Research Center for New Vaccine

J

Junwei Hou

X

Xiaoshuang Wang

Z

Ziyao Kang

Immunological Materials Research Group 1 National Vaccine and Serum Institute (NVSI) Beijing People's Republic of China

Z

Zhaoming Liu

Department of Chemistry

Z

Zhuo Wang

Q

Qiming Li

The Sixth Laboratory

J

Jin Ren

Immunological Materials Research Group 1

F

Feng Li