基于肺炎链球菌 ICE Tn5253 的奈瑟诱导染色体基因表达系统,可在链球菌和肠球菌之间转移

Mariana Tirziu, Lorenzo Colombini, Maria Alfreda Stincarelli, Anna Maria Cuppone, Elisa Lazzeri, Francesco Santoro, Gianni Pozzi, Francesco lannelli
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引用次数: 0

摘要

本研究报告了肺炎链球菌染色体表达系统的开发和验证,该系统可在乳酸乳球菌抗生素尼生素的控制下进行基因表达。该系统以肺炎链球菌的整合与共轭元件(ICE)Tn5253 为基础,它能够进行特定位点的染色体整合并共轭转移到多种细菌中。我们构建了一种插入载体,该载体整合了 Tn5251,Tn5253 中包含的 ICE 带有四环素抗性 tet(M) 基因。该载体包含 nisRK 调控系统操作子、L. lactis nisin 诱导启动子 PnisA 和用于插入目标 DNA 的多克隆位点的上游,两侧是 Tn5251 的两个 DNA 区域,可驱动 ICE Tn5253 中的同源重组。为进行系统评估,克隆了 emm6.1::ha1 融合基因,并通过转化将其整合到携带 Tn5253 的肺炎球菌菌株 FR24 的染色体中。该基因编码的融合蛋白含有化脓性链球菌 M6 表面蛋白的信号肽、122 个 N 端和 140 个 C 端 aa 与甲型流感病毒血凝素 HA1 亚基的连接。对从尼生素处理过和未处理过的培养物中纯化的总 RNA 进行的定量 RT-PCR 分析表明,随着尼生素浓度的增加,emm6.1::ha1 转录本的拷贝数也在增加。用 Western 印迹法检测了 M6-HA1 蛋白的表达,并用 Dot 印迹法进行了定量。含有尼生素诱导表达系统的重组 ICE Tn5253::[nisRK]-[emm6.1::ha1]通过连接成功转入不同的链球菌,包括戈登链球菌、化脓性链球菌、无乳链球菌和粪肠球菌。就肺炎链球菌而言,在所有调查的细菌宿主中,emm6.1::ha1 转录本拷贝数和产生的 M6-HA1 蛋白数量与用于诱导的尼生素浓度相关。我们证明,这种宿主-载体表达系统能以单个拷贝的形式稳定地整合在细菌染色体中,可转移到可转化和不可转化的细菌物种中,并能根据尼生素浓度对蛋白质表达进行微调。这些特点使我们的系统适用于广泛的应用,包括互补测定、生理研究、宿主与病原体相互作用研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A nisin-inducible chromosomal gene expression system based on ICE Tn5253 of Streptococcus pneumoniae, transferable among streptococci and enterococci

A nisin-inducible chromosomal gene expression system based on ICE Tn5253 of Streptococcus pneumoniae, transferable among streptococci and enterococci

The present work reports the development and validation of a chromosomal expression system in Streptococcus pneumoniae which permits gene expression under the control of Lactococcus lactis lantibiotic nisin. The system is based on the integrative and conjugative element (ICE) Tn5253 of S. pneumoniae capable of site-specific chromosomal integration and conjugal transfer to a variety of bacterial species. We constructed an insertion vector that integrates in Tn5251, an ICE contained in Tn5253, which carries the tetracycline resistance tet(M) gene. The vector contains the nisRK regulatory system operon, the L. lactis nisin inducible promoter PnisA upstream of a multiple cloning site for target DNA insertion, and is flanked by two DNA regions of Tn5251 which drive homologous recombination in ICE Tn5253. For system evaluation, the emm6.1::ha1 fusion gene was cloned and integrated into the chromosome of the Tn5253-carrying pneumococcal strain FR24 by transformation. This gene encodes a fusion protein containing the signal peptide, the 122 N-terminal and the 140 C-terminal aa of the Streptococcus pyogenes M6 surface protein joined to the HA1 subunit of the influenza virus A hemagglutinin. Quantitative RT-PCR analysis carried out on total RNA purified from nisin treated and untreated cultures showed an increase in emm6.1::ha1 transcript copy number with growing nisin concentration. The expression of M6-HA1 protein was detected by Western blot and quantified by Dot blot, while Flow cytometry analysis confirmed the presence on the pneumococcal surface. Recombinant ICE Tn5253::[nisRK]-[emm6.1::ha1] containing the nisin-inducible expression system was successfully transferred by conjugation in different streptococcal species including Streptococcus gordonii, S. pyogenes, Streptococcus agalactiae and Enterococcus faecalis. As for S. pneumoniae, the emm6.1::ha1 transcript copy number and the amount of M6-HA1 protein produced correlated with the nisin concentration used for induction in all investigated bacterial hosts. We demonstrated that this host-vector expression system is stably integrated as a single copy within the bacterial chromosome, is transferable to both transformable and non transformable bacterial species, and allows fine tuning of protein expression modulated by nisin concentration. These characteristics make our system suitable for a wide range of applications including complementation assays, physiological studies, host-pathogen interaction studies.

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