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The ubiquity of Arthrobacter species in soil environments offers a vast number and diversity of phages capable of being isolated from this species of host bacteria. Bacterial members of the Acintobacteriaceae family are most notable for their catabolic pathways of degrading recalcitrant compounds like atrazine and various other pesticides and herbicides1,2,3. Though most research has been done using environmental strains of Arthrobacter, clinical isolates of this genus is found in blood, urine, eyes, and many other human sources all displaying phylogenetic heterogeneity4.
While there is a rather extensive body of research on Arthrobacter bacteria, only a few studies report on the phages capable of infecting members of this diverse genus. Interestingly though, work done previously on Arthrobacter phages touches on several key distinct topics such as the typing of soil Arthrobacter species5, industrial uses with the purpose of reducing deleterious foam in activated sludge treatment plants 6, and work highlighting site specific recombination and integrase genes7.
Various enrichment technique protocols have been employed to generate pure phage isolates in Arthrobacter species. Early procedures include incubations of soil with added toxic agents like nicotine salts for periods of over one year8 giving rise to phages capable of only infecting A. globiformis. Studies done using soil percolated with labile organics appeared to produce detectable phages via plaque assay techniques, omitting lengthy incubation periods8. Interestingly though, a technique resembling direct plating was used in the past giving rise to several phages while still having a notably low success rate by the investigators5, citing past studies with low success rates8.
Overall, the isolation techniques used in the past were notable for having little efficacy in practice despite the Arthrobacter genus representing the most common aerobic soil isolate in nature4,9,,Van Twest and Kropinski10 present enrichment methods for isolating phages from water and soil adapted from earlier techniques used to enrich environmental bacterial isolates but these enrichment techniques proved inefficient in isolating Arthrobacter phages. The purpose of the method described here is to show “proof of concept” that the early enrichment methods can be adapted to consistently and effectively isolate Arthrobacter phages, overcoming previous technical challenges associated with isolating phages from this bacterial genus.