通过单一转化步骤策略简化肺炎链球菌的无标记等位基因置换:easyJanus。

IF 3.9 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Applied and Environmental Microbiology Pub Date : 2024-08-14 DOI:10.1128/aem.01010-24
Vipin Chembilikandy, Adonis D'Mello, Hervé Tettelin, Eriel Martínez, Carlos J Orihuela
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引用次数: 0

摘要

对细菌进行遗传操作的能力是现代分子微生物学的主要特征。自 2000 年代以来,肺炎链球菌(Spn)的无标记突变体主要是通过使用被称为 "Janus "的 kanR-rpsL 盒进行等位基因交换制成的。传统的 Janus 方案涉及两个转化步骤,使用含有 Janus 盒和目标基因侧翼 DNA 的多个 PCR 组装产物。我们提出了一种创新策略,通过单一转化步骤实现无标记等位基因替换。我们的策略是在 Janus 基因盒之前整合目标基因下游区域的额外拷贝,从而改变基因排列。这种单一的修改将所需的 PCR 片段数量从五个减少到四个,将组装反应的数量从两个减少到一个,并将转化过程简化为单一步骤。为了验证我们的方法是否有效,我们采用这一策略删除了 Spn 血清型 4 菌株 TIGR4 的毒力基因 pspA 和整个荚膜多糖合成基因座 cps4,并在染色体中引入了单核苷酸替换。值得注意的是,除了简化程序外,我们的方法还显著减少了在使用链霉素进行阴性选择时,采用传统 Janus 方案通常会遇到的假阳性。此外,由于减少了构建体合成所需的外源 DNA 数量,我们证明我们的新方法适用于使用市售合成 DNA 创建构建体,从而进一步减少了获得突变体所需的工作。我们的简化策略被称为 easyJanus,它大大加快了 Spn 的遗传操作,促进了未来的研究工作:我们介绍了一种旨在简化肺炎链球菌无标记等位基因置换过程的新策略,肺炎链球菌是一种革兰氏阳性细菌,也是肺炎、脑膜炎和中耳炎的主要致病菌。我们的方法涉及改进 Janus 盒的基因排列,以促进分离步骤中的自切割。由于这种新方法减少了所需的外源 DNA 数量,因此非常适合使用合成 DNA 来构建诱变构建体。我们的简化策略被称为 easyJanus,它大大节省了时间和成本,同时提高了肺炎双球菌无标记等位基因置换的效率。
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Streamlining marker-less allelic replacement in Streptococcus pneumoniae through a single transformation step strategy: easyJanus.

The ability to genetically manipulate bacteria is a staple of modern molecular microbiology. Since the 2000s, marker-less mutants of Streptococcus pneumoniae (Spn) have been made by allelic exchange predominantly using the kanR-rpsL cassette known as "Janus." The conventional Janus protocol involves two transformation steps using multiple PCR-assembled products containing the Janus cassette and the target gene's flanking DNA. We present an innovative strategy to achieve marker-less allelic replacement through a single transformation step. Our strategy involves integrating an additional copy of the target's downstream region before the Janus cassette, leading to a modified genetic arrangement. This single modification reduced the number of required PCR fragments from five to four, lowered the number of assembly reactions from two to one, and simplified the transformation process to a single step. To validate the efficacy of our approach, we implemented this strategy to delete in Spn serotype 4 strain TIGR4 the virulence gene pspA, the entire capsular polysaccharide synthesis locus cps4, and to introduce a single-nucleotide replacement into the chromosome. Notably, beyond streamlining the procedure, our method markedly reduced false positives typically encountered during negative selection with streptomycin when employing the traditional Janus protocol. Furthermore, and as consequence of reducing the amount of exogenous DNA required for construct synthesis, we show that our new method is amendable to the use of commercially available synthetic DNA for construct creation, further reducing the work needed to obtain a mutant. Our streamlined strategy, termed easyJanus, substantially expedites the genetic manipulation of Spn facilitating future research endeavors.

Importance: We introduce a new strategy aimed at streamlining the process for marker-less allelic replacement in Streptococcus pneumoniae, a Gram-positive bacterium and leading cause of pneumonia, meningitis, and ear infections. Our approach involves a modified genetic arrangement of the Janus cassette to facilitate self-excision during the segregation step. Since this new method reduces the amount of exogenous DNA required, it is highly amendable to the use of synthetic DNA for construction of the mutagenic construct. Our streamlined strategy, called easyJanus, offers significant time and cost savings while concurrently enhancing the efficiency of obtaining marker-less allelic replacement in S. pneumoniae.

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来源期刊
Applied and Environmental Microbiology
Applied and Environmental Microbiology 生物-生物工程与应用微生物
CiteScore
7.70
自引率
2.30%
发文量
730
审稿时长
1.9 months
期刊介绍: Applied and Environmental Microbiology (AEM) publishes papers that make significant contributions to (a) applied microbiology, including biotechnology, protein engineering, bioremediation, and food microbiology, (b) microbial ecology, including environmental, organismic, and genomic microbiology, and (c) interdisciplinary microbiology, including invertebrate microbiology, plant microbiology, aquatic microbiology, and geomicrobiology.
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