微生物学
免疫系统
巨噬细胞极化
细菌外膜
巨噬细胞
转录组
肺炎克雷伯菌
体内
生物
体外
免疫
小泡
细胞生物学
化学
T细胞
抗原
细菌
免疫学
效应器
三型分泌系统
细胞毒性T细胞
先天免疫系统
炎症
细胞膜
细胞
肠杆菌科
细胞分化
获得性免疫系统
作者
Wei Fan,Wei Wang,Lin Kong,Shifan Chen,Xinyu Zhang,Yifan Zhai,Bo Zhang,Yan Wang,Donghao Zhao,Xianping Tang,Jiaqi Fu,Fuliang Sun
出处
期刊:Microorganisms
[Multidisciplinary Digital Publishing Institute]
日期:2025-12-15
卷期号:13 (12): 2849-2849
标识
DOI:10.3390/microorganisms13122849
摘要
Klebsiella pneumoniae (K. pneumoniae) is an opportunistic bacteria that can result in severe liver abscesses, pulmonary damage, and potentially fatal outcomes. Research has demonstrated that the outer membrane vesicles (OMVs) released by it can provide significant protection to infected animals and may serve as a promising candidate antigen for the development of a novel vaccine. Nevertheless, the specific mechanisms through which OMVs mitigate the detrimental effects of K. pneumoniae infection by promoting the polarization pathways of macrophages and T helper cells (Th cells) remain poorly understood. In this study, we first confirmed that Klebsiella pneumoniae outer membrane vesicles (K. pneumoniae_OMVs) were protective in K. pneumoniae-infected mice, and then we investigated the protective mechanisms by transcriptome data analysis. Then, we constructed a model of in vitro macrophage polarization, an in vivo model for Th differentiation, and a K. pneumoniae infection model in K. pneumoniae_OMVs-immunized mice. qRT-PCR, IHC, Western blotting, and ELISA were used to confirm the polarization indicators. The results showed that K. pneumoniae_OMVs were able to provide specific protection for mice with a maximum protection rate of 80%. In addition, the results of a transcriptome analysis suggested that the protective mechanism might be related to Th cells and macrophage polarization. Mice immunized with K. pneumoniae_OMVs were able to achieve rapid bacterial clearance after K. pneumoniae infection through an M1/Th1 immune response. Subsequently, tissue repair was accomplished through Th2/M2 immune response in the late stage of K. pneumoniae infection to avoid causing inflammatory damage. This study offers a theoretical foundation for the K. pneumoniae_OMVs vaccine's actual application.
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