Phenotypic divergence is driven by mobile genetic elements in a heritable insect symbiont

Heritable microbes profoundly influence insect biology, yet the traits they confer often evolve rapidly and differ among closely related symbiont strains. Despite their importance, we lack a clear understanding of how novel traits arise in symbionts and how this diversity influences host ecology in nature. The aphid facultative symbiont Regiella insecticola is ideally suited to address this question due to strong lineage-specific variation in host benefits. By generating 20 high-quality genomes, we found that Regiella ’s evolution is driven largely by gene gains mediated by mobile genetic elements (MGEs). A plasmid (pRILSR1) encoding a type IV secretion system and a highly expressed predicted effector has spread horizontally between distantly related Regiella clades associated with pea aphids. Notably, only pRILSR1-bearing strains confer protection against the fungal pathogen Pandora neoaphidis . Moreover, loss of the plasmid by a protective strain in culture resulted in the loss of protection, indicating that pRILSR1 is required for the defensive phenotype. In a multiyear field study, pRILSR1 frequency varied systematically among host plant-associated pea aphid populations and predicted differences in symbiont-mediated fungal resistance. Together, our results show that gain and loss of a single MGE contributes to divergence in a key adaptive trait, providing a mechanism by which symbiont evolution generates phenotypic differences among host populations.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-09-21
DOI
https://doi.org/10.1073/pnas.2607226123
Primary Topic
Insect symbiosis and bacterial influences
Type
article
Field-Weighted Citation Impact
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article

Phenotypic divergence is driven by mobile genetic elements in a heritable insect symbiont

Benjamin J. Parker, Matthew R. Kolp, Elliott B. Goldstein, Balig Panossian et al.
Proceedings of the National Academy of Sciences
Insect symbiosis and bacterial influences
article

Phenotypic divergence is driven by mobile genetic elements in a heritable insect symbiont

Benjamin J. Parker, Matthew R. Kolp, Elliott B. Goldstein, Balig Panossian, Kerry M. Oliver, Taoping Wu, Keertana Tallapragada, Vilas Patel, Lee Henry
article en

Abstract

Heritable microbes profoundly influence insect biology, yet the traits they confer often evolve rapidly and differ among closely related symbiont strains. Despite their importance, we lack a clear understanding of how novel traits arise in symbionts and how this diversity influences host ecology in nature. The aphid facultative symbiont Regiella insecticola is ideally suited to address this question due to strong lineage-specific variation in host benefits. By generating 20 high-quality genomes, we found that Regiella ’s evolution is driven largely by gene gains mediated by mobile genetic elements (MGEs). A plasmid (pRILSR1) encoding a type IV secretion system and a highly expressed predicted effector has spread horizontally between distantly related Regiella clades associated with pea aphids. Notably, only pRILSR1-bearing strains confer protection against the fungal pathogen Pandora neoaphidis . Moreover, loss of the plasmid by a protective strain in culture resulted in the loss of protection, indicating that pRILSR1 is required for the defensive phenotype. In a multiyear field study, pRILSR1 frequency varied systematically among host plant-associated pea aphid populations and predicted differences in symbiont-mediated fungal resistance. Together, our results show that gain and loss of a single MGE contributes to divergence in a key adaptive trait, providing a mechanism by which symbiont evolution generates phenotypic differences among host populations.

Proceedings of the National Academy of SciencesVol. 123(39)
University of North Carolina at Chapel Hill (US), University of Georgia (US), Queen Mary University of London (GB), University of Tennessee at Knoxville (US)
Life in Land
Openalex Percentile: Top 12%
Insect symbiosis and bacterial influences
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