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Transposon Insertion Sequencing, a Global Measure of Gene Function.
Annual Review of Genetics ( IF 11.1 ) Pub Date : 2020-11-23 , DOI: 10.1146/annurev-genet-112618-043838
Tim van Opijnen 1 , Henry L Levin 2
Affiliation  

The goal of genomics and systems biology is to understand how complex systems of factors assemble into pathways and structures that combine to form living organisms. Great advances in understanding biological processes result from determining the function of individual genes, a process that has classically relied on characterizing single mutations. Advances in DNA sequencing has made available the complete set of genetic instructions for an astonishing and growing number of species. To understand the function of this ever-increasing number of genes, a high-throughput method was developed that in a single experiment can measure the function of genes across the genome of an organism. This occurred approximately 10 years ago, when high-throughput DNA sequencing was combined with advances in transposon-mediated mutagenesis in a method termed transposon insertion sequencing (TIS). In the subsequent years, TIS succeeded in addressing fundamental questions regarding the genes of bacteria, many of which have been shown to play central roles in bacterial infections that result in major human diseases. The field of TIS has matured and resulted in studies of hundreds of species that include significant innovations with a number of transposons. Here, we summarize a number of TIS experiments to provide an understanding of the method and explanation of approaches that are instructive when designing a study. Importantly, we emphasize critical aspects of a TIS experiment and highlight the extension and applicability of TIS into nonbacterial species such as yeast.

中文翻译:


转座子插入测序,基因功能的全局测量。

基因组学和系统生物学的目标是了解复杂的因子系统如何组装成途径和结构,这些途径和结构结合起来形成生物体。了解生物过程的巨大进步源于确定单个基因的功能,这一过程传统上依赖于单个突变的特征。DNA 测序的进步为数量惊人且不断增长的物种提供了完整的遗传指令集。为了了解这种不断增加的基因的功能,开发了一种高通量方法,可以在单个实验中测量整个生物体基因组中基因的功能。这发生在大约 10 年前,当高通量 DNA 测序与转座子介导诱变的进展相结合时,这种方法称为转座子插入测序 (TIS)。在随后的几年中,TIS 成功解决了有关细菌基因的基本问题,其中许多已被证明在导致人类重大疾病的细菌感染中发挥核心作用。TIS 领域已经成熟并导致对数百种物种的研究,其中包括具有大量转座子的重大创新。在这里,我们总结了一些 TIS 实验,以提供对方法的理解和对在设计研究时具有指导意义的方法的解释。重要的是,我们强调了 TIS 实验的关键方面,并强调了 TIS 在酵母等非细菌物种中的扩展和适用性。

更新日期:2020-11-25
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