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Updated: Nov 17, 2025

Establishment of Viral Infection and Analysis of Host-Virus Interaction in Drosophila Melanogaster
Published on: March 14, 2019
Rapid molecular evolution of Spiroplasma symbionts of Drosophila
Michael Gerth1,2, Humberto Martinez-Montoya3, Paulino Ramirez4
1Institute of Infection, Veterinary and Ecological Sciences, University of Liverpool, Liverpool, UK.
Abstract:
Spiroplasma is a genus of Mollicutes whose members include plant pathogens, insect pathogens and endosymbionts of animals. Spiroplasma phenotypes have been repeatedly observed to be spontaneously lost in Drosophila cultures, and several studies have documented a high genomic turnover in Spiroplasma symbionts and plant pathogens. These observations suggest that Spiroplasma evolves quickly in comparison to other insect symbionts. Here, we systematically assess evolutionary rates and patterns of Spiroplasma poulsonii, a natural symbiont of Drosophila. We analysed genomic evolution of sHy within flies, and sMel within in vitro culture over several years. We observed that S. poulsonii substitution rates are among the highest reported for any bacteria, and around two orders of magnitude higher compared with other inherited arthropod endosymbionts. The absence of mismatch repair loci mutS and mutL is conserved across Spiroplasma, and likely contributes to elevated substitution rates. Further, the closely related strains sMel and sHy (>99.5 % sequence identity in shared loci) show extensive structural genomic differences, which potentially indicates a higher degree of host adaptation in sHy, a protective symbiont of Drosophila hydei. Finally, comparison across diverse Spiroplasma lineages confirms previous reports of dynamic evolution of toxins, and identifies loci similar to the male-killing toxin Spaid in several Spiroplasma lineages and other endosymbionts. Overall, our results highlight the peculiar nature of Spiroplasma genome evolution, which may explain unusual features of its evolutionary ecology.
Insights
Spiroplasma bacteria exhibit exceptionally high evolutionary rates, significantly faster than other insect symbionts. This rapid evolution, linked to missing DNA repair genes, drives genomic diversity and host adaptation in Spiroplasma poulsonii.
Area of Science:
- Microbiology
- Evolutionary Biology
- Genomics
Background:
- Spiroplasma are Mollicutes with diverse roles, including plant and insect pathogenicity, and animal endosymbiosis.
- Phenotypic loss and high genomic turnover in Spiroplasma suggest rapid evolution compared to other insect symbionts.
Purpose of the Study:
- To systematically assess evolutionary rates and patterns in Spiroplasma poulsonii, a natural Drosophila symbiont.
- To analyze the genomic evolution of Spiroplasma Hy (sHy) and Spiroplasma Mel (sMel) strains in vivo and in vitro.
Main Methods:
- Comparative genomics of Spiroplasma poulsonii strains sHy and sMel.
- Analysis of substitution rates and genomic structural differences.
- Investigation of conserved and dynamic genomic loci, including toxin genes.
Main Results:
- Spiroplasma poulsonii exhibits substitution rates among the highest reported for bacteria, ~100 times higher than other arthropod endosymbionts.
- Absence of mismatch repair genes (mutS, mutL) is conserved in Spiroplasma, likely contributing to high mutation rates.
- Closely related sMel and sHy strains display significant structural genomic differences, suggesting host adaptation, particularly in sHy.
Conclusions:
- Spiroplasma genome evolution is characterized by exceptionally high rates and dynamic changes, potentially explaining its unique evolutionary ecology.
- The rapid evolution and genomic plasticity of Spiroplasma contribute to its diverse ecological roles and host interactions.
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