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Olsen, N. S.

Publications and source records attributed to Olsen, N. S..

2 recordsLinked to original sources

A New High-throughput Screening (HiTS) Method for Phages - Enabling Crude Isolation and Fast Identification of Diverse Phages with Therapeutic Potential

Bacteriophage therapy and application of phages as biocontrol in plant production and food processing, all necessitates acquisition of suitable phages. Depending on purpose, the selection criteria of phage characteristics include lifestyle (lytic/lysogenic), host range, physical stability and absence of unwanted genetic traits such as integrases, antibiotic resistance or bacterial virulence factors. The exclusivity of antibiotic resistant clinical infections and possible development of phage-resistance instigates a need to continually build sizeable phage libraries and also be able to rapidly isolate and characterise novel phages of specified bacterial hosts. Current methods for phage isolation are both laborious and time consuming, suitable only for the isolation of a limited number of phages. Thus, we developed the High-Throughput Screening (HITS) method for phages for fast isolation and identification of potentially hundreds of distinct phages against single hosts. This scalable method enables screening of hundreds of samples, in multiple simultaneous setups with varying parameters increasing the likelihood of isolating multiple distinct phages specific for the given conditions. The efficiency of the method is emphasised by our screening of 200 environmental samples, resulting in the identification of an abundance of unique phage species lytic to Escherichia coli, Salmonella Enterica, Enterococcus faecalis and Pseudomonas aeruginosa.

microbiology

Exploring the remarkable diversity of Escherichia coli Phages in the Danish Wastewater Environment, Including 91 Novel Phage Species

Phages drive bacterial diversity - profoundly influencing diverse microbial communities, from microbiomes to the drivers of global biogeochemical cycling. The vast genomic diversity of phages is gradually being uncovered as >8000 phage genomes have now been sequenced. Aiming to broaden our understanding of Escherichia coli (MG1655, K-12) phages, we screened 188 Danish wastewater samples (0.5 ml) and identified 136 phages of which 104 are unique phage species and 91 represent novel species, including several novel lineages. These phages are estimated to represent roughly a third of the true diversity of Escherichia phages in Danish wastewater. The novel phages are remarkably diverse and represent four different families Myoviridae, Siphoviridae, Podoviridae and Microviridae. They group into 14 distinct clusters and nine singletons without any substantial similarity to other phages in the dataset. Their genomes vary drastically in length from merely 5 342 bp to 170 817 kb, with an impressive span of GC contents ranging from 35.3% to 60.0%. Hence, even for a model host bacterium, in the go-to source for phages, substantial diversity remains to be uncovered. These results expand and underlines the range of Escherichia phage diversity and demonstrate how far we are from fully disclosing phage diversity and ecology.

microbiology