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在哺乳动物模型系统中,靶向敲除立氏立克次体的外膜蛋白A(OmpA)表面抗原并不会降低其毒力。

Targeted knockout of the Rickettsia rickettsii OmpA surface antigen does not diminish virulence in a mammalian model system.

作者信息

Noriea Nicholas F, Clark Tina R, Hackstadt Ted

机构信息

Host-Parasite Interactions Section, Laboratory of Intracellular Parasites, Rocky Mountain Laboratories, National Institute of Allergy and Infectious Diseases, National Institutes of Health, Hamilton, Montana, USA.

Host-Parasite Interactions Section, Laboratory of Intracellular Parasites, Rocky Mountain Laboratories, National Institute of Allergy and Infectious Diseases, National Institutes of Health, Hamilton, Montana, USA

出版信息

mBio. 2015 Mar 31;6(2):e00323-15. doi: 10.1128/mBio.00323-15.

Abstract

UNLABELLED

Strains of Rickettsia rickettsii, the causative agent of Rocky Mountain spotted fever (RMSF), differ dramatically in virulence despite >99% genetic homology. Spotted fever group (SFG) rickettsiae produce two immunodominant outer membrane proteins, rickettsial OmpA (rOmpA) and rOmpB, which are conserved throughout the SFG and thought to be fundamental to pathogenesis. rOmpA is present in all virulent strains of R. rickettsii but is not produced in the only documented avirulent strain, Iowa, due to a premature stop codon. Here we report the creation of an isogenic ompA mutant in the highly virulent strain Sheila Smith by insertion of intronic RNA to create a premature stop codon 312 bp downstream of the 6,747-bp open reading frame initiation site (int312). Targeted insertion was accomplished using an LtrA group II intron retrohoming system. Growth and entry rates of Sheila Smith ompA::int312 in Vero cells remained comparable to those of the wild type. Virulence was assessed in a guinea pig model by challenge with 100 PFU of either ompA::int312 Sheila Smith or the wild type, but no significant difference in either fever peak (40.5°C) or duration (8 days) were shown between the wild type and the knockout. The ability to disrupt genes in a site-specific manner using an LtrA group II intron system provides an important new tool for evaluation of potential virulence determinants in rickettsial disease research.

IMPORTANCE

R. rickettsii rOmpA is an immunodominant outer membrane autotransporter conserved in the spotted fever group. Previous studies and genomic comparisons suggest that rOmpA is involved in adhesion and may be critical for virulence. Little information is available for rickettsial virulence factors in an isogenic background, as limited systems for targeted gene disruption are currently available. Here we describe the creation of an rOmpA knockout by insertion of a premature stop codon into the 5' end of the open reading frame using a group II intron system. An isogenic rOmpA knockout mutation in the highly virulent Sheila Smith strain did not cause attenuation in a guinea pig model of infection, and no altered phenotype was observed in cell culture. We conclude that rOmpA is not critical for virulence in a guinea pig model but may play a role in survival or transmission from the tick vector.

摘要

未标记

落基山斑疹热(RMSF)的病原体立氏立克次体菌株,尽管基因同源性超过99%,但其毒力却有显著差异。斑点热群(SFG)立克次体产生两种免疫显性外膜蛋白,立克次体OmpA(rOmpA)和rOmpB,它们在整个SFG中保守,被认为是发病机制的基础。rOmpA存在于所有强毒力的立氏立克次体菌株中,但在唯一记录的无毒力菌株爱荷华菌株中不产生,原因是存在一个提前终止密码子。在此,我们报告通过插入内含子RNA在高毒力菌株希拉·史密斯中创建了一个同基因ompA突变体,以在6747 bp开放阅读框起始位点下游312 bp处创建一个提前终止密码子(int312)。使用LtrA II组内含子归巢系统完成了靶向插入。希拉·史密斯ompA::int312在Vero细胞中的生长和进入率与野生型相当。通过用100 PFU的ompA::int312希拉·史密斯或野生型进行攻击,在豚鼠模型中评估毒力,但野生型和基因敲除型之间在发热峰值(40.5°C)或持续时间(8天)上均未显示出显著差异。使用LtrA II组内含子系统以位点特异性方式破坏基因的能力为立克次体病研究中潜在毒力决定因素的评估提供了一种重要的新工具。

重要性

立氏立克次体rOmpA是斑点热群中保守的免疫显性外膜自转运蛋白。先前的研究和基因组比较表明rOmpA参与黏附,可能对毒力至关重要。由于目前可用的靶向基因破坏系统有限,关于同基因背景下立克次体毒力因子的信息很少。在此,我们描述了通过使用II组内含子系统在开放阅读框的5'端插入一个提前终止密码子来创建rOmpA基因敲除。在高毒力的希拉·史密斯菌株中创建的同基因rOmpA基因敲除突变体在豚鼠感染模型中未导致毒力减弱,并且在细胞培养中未观察到表型改变。我们得出结论,在豚鼠模型中rOmpA对毒力并非至关重要,但可能在蜱传播媒介的生存或传播中起作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/23e1/4453529/d4a09c7100c3/mbo0021522540002.jpg

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