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Paradoxical Evolution of Apis mellifera Mitogenomes: Deviation From the Mutation-Selection-Drift Balance
1Department of Genomics, Department of Aquatic Biotechnology and Genomics, Faculty of Aquatic Sciences, Istanbul University, Istanbul, Türkiye.
Archives of Insect Biochemistry and Physiology
|December 16, 2025
Summary
Mitochondrial genome evolution in Apis mellifera (honey bees) is complex, balancing mutation, selection, and drift. Relaxed selection indirectly impacts the genome, with positive selection on the nd3 gene.
Area of Science:
- Evolutionary Biology
- Genomics
- Mitochondrial DNA (mtDNA) Evolution
Background:
- Mitochondrial genomes are crucial for understanding evolutionary biology due to influences from niche adaptation, energy demands, and phenotypic plasticity.
- Generalizing mitogenome evolution is challenging, often yielding inconsistent results, as they must balance mutation, selection, and genetic drift to avoid mutational meltdown.
- Apis mellifera (honey bees) offer a unique model for studying mitogenome evolution due to adaptations in lifestyle and energy metabolism.
Purpose of the Study:
- To investigate the evolutionary drivers shaping mitochondrial genome evolution in Apis mellifera.
- To evaluate mutation/variation processes, genome-wide mutational patterns, and selection forces acting on protein-coding genes.
- To predict the direction of selection and examine potential effects on protein 3D structures.
Main Methods:
- Analysis of 66 mitogenome data from 21 Apis mellifera subspecies.
- Assessment of nucleotide content, rearrangements, and open reading frame (ORF) remnants to estimate mutational processes.
- Phylogenetic tree-based inferences to predict selection direction on protein-coding genes and analyze structural impacts.
Main Results:
- The mutation-selection-drift balance in Apis mellifera mitogenomes deviates from equilibrium, maintained by relaxed selection acting indirectly.
- Relaxed selection impacts the mitogenome via gene copies/remnants, particularly through repetitive sequences in the d-loop and gene remnants in rRNA genes, influencing the genome via selective sweeps.
- The nd3 gene exhibited positive selection in Apis mellifera mitogenomes.
Conclusions:
- Mitochondrial genome evolution in Apis mellifera is characterized by a complex interplay of evolutionary forces, with relaxed selection playing an indirect but significant role.
- Indirect effects of relaxed selection, including insertions and selective sweeps, appear to be key mechanisms shaping the mitogenome.
- Specific genes like nd3 are subject to positive selection, highlighting varied evolutionary pressures across the mitochondrial genome.
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