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Comparative genome analysis of Spiroplasma melliferum IPMB4A, a honeybee-associated bacterium
Wen-Sui Lo1, Ling-Ling Chen, Wan-Chia Chung
1Institute of Plant and Microbial Biology, Academia Sinica, Taipei, Taiwan.
Background:
The genus Spiroplasma contains a group of helical, motile, and wall-less bacteria in the class Mollicutes. Similar to other members of this class, such as the animal-pathogenic Mycoplasma and the plant-pathogenic 'Candidatus Phytoplasma', all characterized Spiroplasma species were found to be associated with eukaryotic hosts. While most of the Spiroplasma species appeared to be harmless commensals of insects, a small number of species have evolved pathogenicity toward various arthropods and plants. In this study, we isolated a novel strain of honeybee-associated S. melliferum and investigated its genetic composition and evolutionary history by whole-genome shotgun sequencing and comparative analysis with other Mollicutes genomes.
Results:
The whole-genome shotgun sequencing of S. melliferum IPMB4A produced a draft assembly that was ~1.1 Mb in size and covered ~80% of the chromosome. Similar to other Spiroplasma genomes that have been studied to date, we found that this genome contains abundant repetitive sequences that originated from plectrovirus insertions. These phage fragments represented a major obstacle in obtaining a complete genome sequence of Spiroplasma with the current sequencing technology. Comparative analysis of S. melliferum IPMB4A with other Spiroplasma genomes revealed that these phages may have facilitated extensive genome rearrangements in these bacteria and contributed to horizontal gene transfers that led to species-specific adaptation to different eukaryotic hosts. In addition, comparison of gene content with other Mollicutes suggested that the common ancestor of the SEM (Spiroplasma, Entomoplasma, and Mycoplasma) clade may have had a relatively large genome and flexible metabolic capacity; the extremely reduced genomes of present day Mycoplasma and 'Candidatus Phytoplasma' species are likely to be the result of independent gene losses in these lineages.
Conclusions:
The findings in this study highlighted the significance of phage insertions and horizontal gene transfer in the evolution of bacterial genomes and acquisition of pathogenicity. Furthermore, the inclusion of Spiroplasma in comparative analysis has improved our understanding of genome evolution in Mollicutes. Future improvements in the taxon sampling of available genome sequences in this group are required to provide further insights into the evolution of these important pathogens of humans, animals, and plants.
Insights
This study reveals phage insertions and horizontal gene transfer significantly impact Spiroplasma genome evolution and pathogenicity. Understanding these bacterial pathogens requires broader genomic analysis.
Area of Science:
- Bacteriology
- Genomics
- Evolutionary Biology
Background:
- Spiroplasma are helical, wall-less bacteria within the Mollicutes class.
- Most Spiroplasma species are commensals of insects, but some are pathogenic to arthropods and plants.
- This study focuses on a novel honeybee-associated Spiroplasma melliferum strain.
Purpose of the Study:
- To investigate the genetic composition and evolutionary history of a novel Spiroplasma melliferum strain.
- To compare its genome with other Mollicutes to understand genome evolution.
- To elucidate the role of phage insertions and horizontal gene transfer in Spiroplasma evolution.
Main Methods:
- Whole-genome shotgun sequencing of Spiroplasma melliferum IPMB4A.
- Comparative genomic analysis with other Mollicutes genomes.
- Analysis of repetitive sequences and phage insertions.
Main Results:
- A draft genome assembly of ~1.1 Mb was produced, with ~80% chromosomal coverage.
- Abundant repetitive sequences from plectrovirus insertions were identified, hindering complete sequencing.
- Phage fragments likely facilitated genome rearrangements and horizontal gene transfer, contributing to host adaptation.
Conclusions:
- Phage insertions and horizontal gene transfer are crucial for bacterial genome evolution and pathogenicity.
- Comparative analysis of Spiroplasma enhances understanding of Mollicutes genome evolution.
- Further genomic data from diverse Spiroplasma species are needed to fully understand pathogen evolution.
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