Ibarra-Chávez Rodrigo, Haag Andreas F, Dorado-Morales Pedro, Lasa Iñigo, Penadés José R
Institute of Infection, Immunity and Inflammation, College of Medical, Veterinary and Life Sciences, University of Glasgow, Glasgow, UK.
Laboratory of Microbial Pathogenesis, Navarrabiomed, Complejo Hospitalario de Navarra-Universidad Pública de Navarra (UPNA), Instituto de Investigación Sanitaria de Navarra (IDISNA), 31008 Pamplona, Spain.
Biodes Res. 2020 May 11;2020:5783064. doi: 10.34133/2020/5783064. eCollection 2020.
Phage-inducible chromosomal islands (PICIs) are a widespread family of mobile genetic elements, which have an important role in bacterial pathogenesis. These elements mobilize among bacterial species at extremely high frequencies, representing an attractive tool for the delivery of synthetic genes. However, tools for their genetic manipulation are limited and timing consuming. Here, we have adapted a synthetic biology approach for rapidly editing of PICIs in based on their ability to excise and integrate into the bacterial chromosome of their cognate host species. As proof of concept, we engineered several PICIs from and and validated this methodology for the study of the biology of these elements by generating multiple and simultaneous mutations in different PICI genes. For biotechnological purposes, we also synthetically constructed PICIs as Trojan horses to deliver different CRISPR-Cas9 systems designed to either cure plasmids or eliminate cells carrying the targeted genes. Our results demonstrate that the strategy developed here can be employed universally to study PICIs and enable new approaches for diagnosis and treatment of bacterial diseases.
噬菌体诱导染色体岛(PICIs)是一类广泛存在的可移动遗传元件家族,在细菌致病过程中发挥着重要作用。这些元件在细菌物种间以极高频率移动,是递送合成基因的一种有吸引力的工具。然而,对其进行基因操作的工具有限且耗时。在此,我们基于PICIs能够切除并整合到其同源宿主物种细菌染色体中的能力,采用了一种合成生物学方法来快速编辑PICIs。作为概念验证,我们从[具体物种1]和[具体物种2]中设计了几种PICIs,并通过在不同PICI基因中产生多个同时突变来验证该方法用于研究这些元件生物学特性的有效性。出于生物技术目的,我们还合成构建了作为“特洛伊木马”的PICIs,以递送不同的CRISPR-Cas9系统,这些系统旨在消除质粒或清除携带靶向基因的细胞。我们的结果表明,这里开发的策略可普遍用于研究PICIs,并为细菌性疾病的诊断和治疗开辟新途径。