免疫原性
布鲁氏菌
TLR4型
布鲁氏菌
免疫系统
生物
脂多糖
微生物学
先天免疫系统
抗原
细胞内寄生虫
细胞免疫
免疫
细胞内
免疫
病毒学
脂质A
细胞生物学
抗体
Toll样受体
免疫学
获得性免疫系统
体液免疫
疫苗效力
作者
Weikun Tian,Hui Yin,Lijuan Shen,Jinming Qi,Xiaoling Wang,Huanzhou Yang,Xiyao Luo,Yi Yang,Xiaodong Zai,J Q Zhang,Xu J,Tao Hu,Ying Yin
标识
DOI:10.1021/acsami.5c25207
摘要
Brucellosis is a widespread zoonotic disease caused by Brucella, which is a facultative intracellular pathogen. Brucellosis poses a significant challenge to vaccine development due to the ability of Brucella to evade innate immunity, primarily through its atypical and low-toxicity lipopolysaccharide (LPS). To improve the suboptimal immunogenicity of subunit vaccines, a pathogen-mimicking nanovaccine was engineered to deliver the antigen and monophosphoryl lipid A (MPLA, a detoxified LPS analogue) in the present study. A fusion protein (SO) of the outer membrane protein 19 (Omp19) and Cu/Zn superoxide dismutase (SOD) acted as the antigen. SO was conjugated with an octaarginine peptide to absorb anionic MPLA (a TLR4 agonist), followed by self-assembly into uniform nanoparticles by electrostatic and hydrophobic interactions. The resultant vaccine (SOMs) enhanced the uptake by APCs, promoted the maturation of dendritic cells in vitro, and effectively activated the TLR4 signaling pathway. Immunization with SOMs induced a robust and balanced immune response in BALB/c mice, as reflected by substantially elevated antigen-specific IgG1 and IgG2a antibody titers and potent cellular immunity. The vaccine protected BALB/c mice against Brucella melitensis strain M5, along with no apparent systemic toxicity. This work validates a pathogen-mimicking vaccine strategy that counteracts the immune stealth of Brucella by replenishing critical TLR4 signaling. This strategy is promising for developing effective vaccines against intracellular pathogens.
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