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李斯特菌(Listeria ivanovii)平衡致死系统可能是疫苗构建有前途的抗原载体。

A Listeria ivanovii balanced-lethal system may be a promising antigen carrier for vaccine construction.

机构信息

West China School of Public Health and West China Fourth Hospital, Sichuan University, Chengdu, China.

Research Center for Public Health and Preventive Medicine, West China School of Public Health, Sichuan University, Chengdu, China.

出版信息

Microb Biotechnol. 2022 Nov;15(11):2831-2844. doi: 10.1111/1751-7915.14137. Epub 2022 Sep 7.

Abstract

Expressing heterologous antigens by plasmids may cause antibiotic resistance. Additionally, antigen expression via plasmids is unstable due to the loss of the plasmid. Here, we developed a balanced-lethal system. The Listeria monocytogenes (LM) balanced-lethal system has been previously used as an antigen carrier to induce cellular immune response. However, thus far, there has been no reports on Listeria ivanovii (LI) balanced-lethal systems. The dal and dat genes from the LI-attenuated LIΔatcAplcB (LIΔ) were deleted consecutively, resulting in a nutrient-deficient LIΔdd strain. Subsequently, an antibiotic resistance-free plasmid carrying the LM dal gene was transformed into the nutrient-deficient strain to generate the LI balanced-lethal system LIΔdd:dal. The resultant bacterial strain retains the ability to proliferate in phagocytic cells, as well as the ability to adhere and invade hepatocytes. Its genetic composition was stable, and compared to the parent strain, the balanced-lethal system was substantially attenuated. In addition, LIΔdd:dal induced specific CD4 /CD8 T-cell responses and protected mice against LIΔ challenge. Similarly, we constructed an LM balanced-lethal system LMΔdd:dal. Sequential immunization with different recombinant Listeria strains will significantly enhance the immunotherapeutic effect. Thus, LIΔdd:dal combined with LMΔdd:dal, or with other balanced-lethal systems will be more promising alternative for vaccine development.

摘要

通过质粒表达异源抗原可能会导致抗生素耐药性。此外,由于质粒的丢失,抗原表达不稳定。在这里,我们开发了一种平衡致死系统。李斯特菌(LM)平衡致死系统已被用作抗原载体来诱导细胞免疫反应。然而,迄今为止,尚无关于李斯特菌伊瓦诺维氏菌(LI)平衡致死系统的报道。LI-attenuatedLIΔatcAplcB(LIΔ)中的dal和dat 基因被依次删除,导致营养缺陷型LIΔdd 菌株。随后,将携带 LM dal 基因的抗生素抗性-free 质粒转化到营养缺陷型菌株中,生成 LI 平衡致死系统 LIΔdd:dal。所得细菌株保留在吞噬细胞中增殖的能力,以及黏附和侵袭肝细胞的能力。其遗传组成稳定,与亲本菌株相比,平衡致死系统大大减毒。此外,LIΔdd:dal 诱导了特异性 CD4/CD8 T 细胞反应,并保护小鼠免受 LIΔ 挑战。同样,我们构建了 LM 平衡致死系统 LMΔdd:dal。用不同重组李斯特菌菌株进行序贯免疫接种将显著增强免疫治疗效果。因此,LIΔdd:dal 与 LMΔdd:dal 结合,或与其他平衡致死系统结合,将是疫苗开发更有前途的选择。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4e9d/9618314/19a06b4c6147/MBT2-15-2831-g001.jpg

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