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聚焦基因组暗物质:转座子插入测序的力量与潜力

Throwing a spotlight on genomic dark matter: The power and potential of transposon-insertion sequencing.

作者信息

Nolan Laura M, Webber Mark A, Filloux Alain

机构信息

Singapore Centre for Environmental Life Sciences Engineering, Nanyang Technological University, Singapore; School of Biological Sciences, Nanyang Technological University, Singapore; Quadram Institute Bioscience, Norwich Research Park, Norwich, UK.

Quadram Institute Bioscience, Norwich Research Park, Norwich, UK; Norwich Medical School, Norwich Research Park, Norwich, UK; Center for Microbial Interactions, Norwich Research Park, Norwich, UK.

出版信息

J Biol Chem. 2025 May 14;301(6):110231. doi: 10.1016/j.jbc.2025.110231.

Abstract

Linking genotype to phenotype is a central goal in biology. In the microbiological field, transposon mutagenesis is a technique that has been widely used since the 1970s to facilitate this connection. The development of modern 'omics approaches and next-generation sequencing have allowed high-throughput association between genes and their putative function. In 2009, four different variations in modern transposon-insertion sequencing (TIS) approaches were published, being referred to as transposon-directed insertion-site sequencing (TraDIS), transposon sequencing (Tn-seq), insertion sequencing (INSeq), and high-throughput insertion tracking by deep sequencing (HITS). These approaches exploit a similar concept to allow estimation of the essentiality or contribution to fitness of each gene in any bacterial genome. The main rationale is to perform a comparative analysis of the abundance of specific transposon mutants under one or more selective conditions. The approaches themselves only vary in the transposon used for mutagenesis, and in the methodology used for sequencing library preparation. In this review, we discuss how TIS approaches have been used to facilitate a major shift in our fundamental understanding of bacterial biology in a range of areas. We focus on several aspects including pathogenesis, biofilm development, polymicrobial interactions in various ecosystems, and antimicrobial resistance. These studies have provided new insight into bacterial physiology and revealed predicted functions for hundreds of genes previously representing genomic "dark matter." We also discuss how TIS approaches have been used to understand complex bacterial systems and interactions and how future developments of TIS could continue to accelerate and enrich our understanding of bacterial biology.

摘要

将基因型与表型联系起来是生物学的核心目标。在微生物学领域,转座子诱变是一项自20世纪70年代以来就被广泛应用的技术,用于促进这种联系。现代“组学”方法和下一代测序技术的发展使得基因与其推定功能之间能够进行高通量关联。2009年,现代转座子插入测序(TIS)方法的四种不同变体被发表,分别被称为转座子导向插入位点测序(TraDIS)、转座子测序(Tn-seq)、插入测序(INSeq)和深度测序高通量插入追踪(HITS)。这些方法利用了类似的概念,以估计任何细菌基因组中每个基因的必需性或对适应性的贡献。主要原理是在一种或多种选择条件下对特定转座子突变体的丰度进行比较分析。这些方法本身仅在用于诱变的转座子以及用于测序文库制备的方法上有所不同。在本综述中,我们讨论了TIS方法如何被用于促进我们在一系列领域对细菌生物学基本理解的重大转变。我们关注几个方面,包括发病机制、生物膜形成、各种生态系统中的多微生物相互作用以及抗微生物耐药性。这些研究为细菌生理学提供了新的见解,并揭示了数百个以前代表基因组“暗物质”的基因的预测功能。我们还讨论了TIS方法如何被用于理解复杂的细菌系统和相互作用,以及TIS的未来发展如何能够继续加速和丰富我们对细菌生物学的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fc56/12173739/e443d3aff5d8/gr1.jpg

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