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Milner, M.

Publications and source records attributed to Milner, M..

3 recordsLinked to original sources

Genome-wide screening using TraDIS accelerates identification of key adaptive mutations of longer-term evolution experiment in Escherichia coli.

Long term laboratory-based evolution experiments are a powerful tool that are increasingly being used to study fundamental aspects of evolution and to identify genes that contribute to overall fitness under different conditions. However, even with automation, the time that they take to execute limits the extent to which evolution experiments can be used as part of a high throughput approach to understand the links between genotype and phenotype. Mutations that lead to genetic loss of function are frequently selected for in evolution experiments. Thus in principle these experiments could be done more rapidly by starting not with clonal isolates but with dense transposon libraries that will contain loss of function mutations in all non-essential genes. Here, we test this hypothesis by comparing the results of long term (5 month) evolution experiment, in which E. coli was grown with daily transfers in unbuffered LB starting at pH 4.5, with short term (5 and 10 day) experiments on a high density transposon library in the same strain and under the same conditions. We show that there is very significant overlap in the genes and pathways identified using the two methods. Use of this approach thus has the potential to significantly increase the throughput of laboratory-based evolution and enable rapid testing of a wide range of parameters that may have an impact on evolutionary trajectories. Author summaryUnderstanding how bacterial populations adapt to environmental stress is central to microbiology and evolutionary biology. Laboratory evolution experiments are commonly used to uncover the genetic changes that confer increased fitness, but these experiments are often slow and laborious. In this study, we asked whether the results of long-term adaptive laboratory evolution (ALE) could be predicted using a faster method: short-term selection of a dense transposon mutant library, analysed by transposon-directed insertion site sequencing (TraDIS). We evolved E. coli K-12 MG1655 in unbuffered LB at pH 4.5 for 5 months and compared the mutations that arose to those selected after just 10 days of evolution using a high-density transposon library in the same strain and conditions. We observed significant overlap in the genes identified by both approaches, including independent disruptions in shared regulatory pathways. This suggests that short-term selection on a diverse mutant population can uncover many of the same adaptive changes seen in long-term evolution experiments. We also identified and validated the fitness effects of several mutations uniquely found in the transposon approach. Rather than predicting specific mutations from first principles, this method offers a rapid, empirical means of anticipating which genes are likely to be involved in adaptation under defined conditions, helping to guide further mechanistic studies by offering a powerful shortcut for investigating microbial evolution.

microbiology↗

Superior target genes and pathways for RNAi mediated pest control revealed by genome wide analysis in the red flour beetle Tribolium castaneum

An increasing human population, the emergence of resistances against pesticides and their potential impact on the environment call for the development of new eco-friendly pest control strategies. RNA interference (RNAi) based pesticides have emerged as new option with the first products entering the market. Essentially, double stranded RNAs targeting essential genes of pests are either expressed in the plants or sprayed on their surface. Upon feeding, pests mount an RNAi response and die. However, it has remained unclear, whether RNAi based insecticides should target the same pathways as classic pesticides or whether the different mode of action would favor other processes. Moreover, there is no consensus on the best genes to be targeted. We performed a genome-wide screen in the red flour beetle to identify 905 RNAi target genes. Based on a validation screen and clustering, we identified the 192 most effective target genes in that species. The transfer to oral application in other beetle pests revealed a list of 34 superior target genes, which are an excellent starting point for application in other pests. GO and KEGG analyses of our genome wide dataset revealed that genes with high efficacy belonged mainly to basic cellular processes such as gene expression and protein homeostasis - processes not targeted by classic insecticides. In summary, our work revealed the best target genes and target processes for RNAi based pest control and we propose a procedure to transfer our short list of superior target genes to other pests.

genomics↗

Bam complex associated proteins in Escherichia coli are functionally linked to peptidoglycan biosynthesis, membrane fluidity and DNA replication

Biogenesis of the bacterial outer membrane is key to bacterial survival and antibiotic resistance. Central to this is the {beta}-barrel assembly machine (Bam) complex and its associated chaperones, which are responsible for transport, folding and insertion of outer membrane proteins (OMPs). The Escherichia coli Bam complex is composed of two essential subunits, BamA and BamD, and three non-essential accessory lipoproteins, BamB, BamC and BamE. Optimal Bam function is further dependent on the non-essential periplasmic chaperones DegP, Skp and SurA. Despite intensive study, the specific function of these non-essential Bam-associated proteins is not fully understood. Here, we analysed {Delta}bamB, {Delta}bamC, {Delta}bamE, {Delta}surA, {Delta}skp and {Delta}degP knockout strains by phenotypic screening, conservation analysis and high-throughput genetics. We identify hundreds of synthetic-lethal interactions and reveal that Bam complex activity is impacted by changes in outer membrane lipid composition and that enterobacterial common antigen is essential in the absence of the chaperone SurA. We also show genes responsible for synthesis of peptidoglycan are synthetically-lethal with Bam accessory lipoprotein encoding genes. Together, our data indicates potential mechanisms for coordination of OMP biogenesis with other cellular growth processes such as LPS and peptidoglycan biogenesis.

microbiology↗