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Biomedical subjects

Stineke van Houte

Publications and source records attributed to Stineke van Houte.

2 recordsLinked to original sources

PCR analysis of insertion sequences leads to the generation of artefact amplicons.

Insertion sequences (ISs) are small, self-mobilizing DNA elements widespread across prokaryotic genomes, including chromosomes and plasmids. IS elements frequently co-localize with antimicrobial resistance (AMR) genes and mediate their mobilization, often as part of larger genomic structures that encompass multiple IS elements and antibiotic resistance genes. In this study, we employed Polymerase Chain Reaction (PCR) to amplify DNA sequences containing two copies of an IS26 element from two Escherichia coli ST131 isolates. While the respective PCRs generated products of the expected size, we also observed multiple amplicons of unexpected sizes, which could be misinterpreted as population heterogeneity attributed to IS mobilization. By extracting, re-amplifying and sequencing individual PCR products, we demonstrate that these amplicons of unexpected sizes were indeed artefact products generated during the PCR reaction, likely mediated by within-PCR recombination of the IS26 sequences. Furthermore, PCRs with equally oriented primers, each located close to an IS26 element, also generated artefact amplicons. This research highlights the limitations of using PCR to assess DNA sequences encoding multiple copies of an IS element and therefore, the presence of these genomic structures or the mobilization of the respective IS elements should not be assessed by diagnostic PCR alone but be corroborated with complementary techniques.

ESBL

Applications of transposon-insertion sequencing for understanding bacterial physiology.

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.

DNA Transposable Elements