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Streamlined Purification of Plasmid DNA From Prokaryotic Cultures
Published on: January 5, 2011
Mosaic plasmids are abundant and unevenly distributed across prokaryotic taxa
Mitchell W Pesesky1, Rayna Tilley1, David A C Beck2
1Department of Chemical Engineering, University of Washington, Seattle 98195, WA, USA.
Abstract:
Mosaic plasmids, plasmids composed of genetic elements from distinct sources, are associated with the spread of antibiotic resistance genes. Transposons are considered the primary mechanism for mosaic plasmid formation, though other mechanisms have been observed in specific instances. The frequency with which mosaic plasmids have been described suggests they may play an important role in plasmid population dynamics. Our survey of the confirmed plasmid sequences available from complete and draft genomes in the RefSeq database shows that 46% of them fit a strict definition of mosaic. Mosaic plasmids are also not evenly distributed over the taxa represented in the database. Plasmids from some genera, including Piscirickettsia and Yersinia, are almost all mosaic, while plasmids from other genera, including Borrelia, are rarely mosaic. While some mosaic plasmids share identical regions with hundreds of others, the median mosaic plasmid only shares with 8 other plasmids. When considering only plasmids from finished genomes (51.6% of the total), mosaic plasmids have significantly higher proportions of transposase and antibiotic resistance genes. Conversely, only 56.6% of mosaic fragments (DNA fragments shared between mosaic plasmids) contain a recognizable transposase gene, and only 1.2% of mosaic fragments are flanked by inverted repeats. Mosaic fragments associated with the IS26 transposase gene are 3.8-fold more abundant than any other sequence shared between mosaic plasmids in the database, though this is at least partly due to overrepresentation of Enterobacteriaceae plasmids. Mosaic plasmids are a complicated trait of some plasmid populations, only partly explained by transposition. Though antibiotic resistance genes led to the identification of many mosaic plasmids, mosaic plasmids are a broad phenomenon encompassing many more traits than just antibiotic resistance. Further research will be required to determine the influence of ecology, host repair mechanisms, conjugation, and plasmid host range on the formation and influence of mosaic plasmids. AUTHOR SUMMARY: Plasmids are extrachromosomal genetic entities that are found in many prokaryotes. They serve as flexible storage for genes, and individual cells can make substantial changes to their characteristics by acquiring, losing, or modifying a plasmid. In some pathogenic bacteria, such as Escherichia coli, antibiotic resistance genes are known to spread primarily on plasmids. By analyzing a database of 8592 plasmid sequences we determined that many of these plasmids have exchanged genes with each other, becoming mosaics of genes from different sources. We next separated these plasmids into groups based on the organism they were isolated from and found that different groups had different fractions of mosaic plasmids. This result was unexpected and suggests that the mechanisms and selective pressures causing mosaic plasmids do not occur evenly over all species. It also suggests that plasmids may provide different levels of potential variation to different species. This work uncovers a previously unrecognized pattern in plasmids across prokaryotes, that could lead to new insights into the evolutionary role that plasmids play.
Insights
Mosaic plasmids, genetic elements from diverse sources, are prevalent in prokaryotes and contribute to gene spread. Their formation is complex, not solely explained by transposition, impacting bacterial evolution and antibiotic resistance.
Area of Science:
- Microbiology
- Genetics
- Evolutionary Biology
Background:
- Plasmids are crucial extrachromosomal genetic elements in prokaryotes, facilitating gene transfer and adaptation.
- Mosaic plasmids, formed by combining genetic material from different sources, are implicated in the spread of antibiotic resistance genes.
- Transposons are primary drivers of mosaic plasmid formation, but other mechanisms also contribute.
Purpose of the Study:
- To investigate the prevalence and characteristics of mosaic plasmids across diverse prokaryotic taxa.
- To determine the factors influencing mosaic plasmid formation and their distribution.
- To understand the broader evolutionary role of mosaic plasmids beyond antibiotic resistance.
Main Methods:
- Analysis of 8592 complete and draft plasmid sequences from the RefSeq database.
- Classification of plasmids as mosaic based on strict criteria of genetic element origin.
- Comparative analysis of gene content (transposase, antibiotic resistance genes) and shared DNA fragments among mosaic plasmids.
Main Results:
- 46% of analyzed plasmids meet the strict definition of mosaic.
- Mosaic plasmid prevalence varies significantly across bacterial genera, indicating uneven distribution of formation mechanisms or selective pressures.
- Mosaic plasmids, particularly in finished genomes, show higher proportions of transposase and antibiotic resistance genes, though mosaic fragments are not always transposon-associated.
Conclusions:
- Mosaic plasmids represent a significant and complex feature of plasmid populations, with formation mechanisms extending beyond simple transposition.
- The uneven distribution of mosaic plasmids across taxa suggests differential evolutionary potential conferred by plasmids to different species.
- Further research is needed to elucidate the roles of ecology, host factors, and plasmid biology in mosaic plasmid evolution.
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