Tn-seq is particularly useful as a high-throughput method to assign function to function-unknown genes, which have increased steadily with the abundance of newly sequenced bacterial genomes.
Abstract
Abstract Transposon-insertion sequencing (Tn-seq) couples transposon mutagenesis with next-generation sequencing to identify the transposon insertion site for thousands of mutants in parallel. It is a powerful technology with a myriad of uses beyond the identification of essential genes required for a cell to grow and divide. Tn-seq is particularly useful as a high-throughput method to assign function to function-unknown genes, which have increased steadily with the abundance of newly sequenced bacterial genomes. Tn-seq has now been adapted for use in over 100 bacterial species. Here, we summarize the applications of Tn-seq for querying bacterial physiology and discuss some of the possible applications for the future.
Plasmids are extra-chromosomal DNA molecules capable of autonomous replication, stable inheritance in a bacterial population, and horizontal transfer to other bacteria. Plasmids can harbour auxiliary genetic material that contributes to host bacterial fitness, the most prominent example being antimicrobial resistance (...
Steven J. Hancock, M. Phan, Jie-Lian Zheng· Microbiology Australia· 1 citation
The arms race of bacteriophages and their bacterial hosts has inspired major breakthroughs in biotechnology and shaped phages as fierce predators with great clinical potential to fight multidrug-resistant bacterial pathogens. However, the large amount of genes of unknown function in phage genomes remains a major obstac...
Dorentina Humolli, Damien Piel, J. Ransome et al.· Nature Microbiology· 1 citation
Generating high‑quality mutant libraries is a powerful strategy for systematic analysis of gene essentiality and function. However, current genomic tools perform poorly for bacteriophages (phages) due to a lack of efficient selectable markers. Here we show a
Tn5
-mediated
e
ssential
g
ene
i
nsertion
m
uta...