Related Experiment Video
Updated: Jun 22, 2026

Rearing and Injection of Manduca sexta Larvae to Assess Bacterial Virulence
Published on: December 11, 2012
Diverse Molecular Mechanisms Underlying Microbe-Inducing Male Killing in the Moth Homona magnanima
Hiroshi Arai1,2, Takumi Takamatsu1, Shiou-Ruei Lin3
1United Graduate School of Agricultural Science, Tokyo University of Agriculture and Technology, Fuchu, Tokyo, Japan.
Abstract:
Male killing (MK) is a type of reproductive manipulation induced by microbes, where sons of infected mothers are killed during development. MK is a strategy that enhances the fitness of the microbes, and the underlying mechanisms and the process of their evolution have attracted substantial attention. Homona magnanima, a moth, harbors two embryonic MK bacteria, namely, Wolbachia (Alphaproteobacteria) and Spiroplasma (Mollicutes), and a larval MK virus, Osugoroshi virus (OGV; Partitiviridae). However, whether the three distantly related male killers employ similar or different mechanisms to accomplish MK remains unknown. Here, we clarified the differential effects of the three male killers on the sex-determination cascades and development of H. magnanima males. Reverse transcription-PCR demonstrated that Wolbachia and Spiroplasma, but not OGVs, disrupted the sex-determination cascade of males by inducing female-type splice variants of doublesex (dsx), a downstream regulator of the sex-determining gene cascade. We also found that MK microbes altered host transcriptomes in different manners; Wolbachia impaired the host dosage compensation system, whereas Spiroplasma and OGVs did not. Moreover, Wolbachia and Spiroplasma, but not OGVs, triggered abnormal apoptosis in male embryos. These findings suggest that distantly related microbes employ distinct machineries to kill males of the identical host species, which would be the outcome of the convergent evolution. IMPORTANCE Many microbes induce male killing (MK) in various insect species. However, it is not well understood whether microbes adopt similar or different MK mechanisms. This gap in our knowledge is partly because different insect models have been examined for each MK microbe. Here, we compared three taxonomically distinct male killers (i.e., Wolbachia, Spiroplasma, and a partiti-like virus) that infect the same host. We provided evidence that microbes can cause MK through distinct mechanisms that differ in the expression of genes involved in sex determination, dosage compensation, and apoptosis. These results imply independent evolutionary scenarios for the acquisition of their MK ability.
Insights
Male killing microbes in the moth Homona magnanima use distinct mechanisms to eliminate males. Wolbachia and Spiroplasma disrupt sex determination, while the Osugoroshi virus has a different strategy, showing convergent evolution of male killing.
Area of Science:
- Evolutionary biology
- Microbial pathogenesis
- Insect reproductive strategies
Background:
- Male killing (MK) is a reproductive manipulation where microbes kill male offspring, enhancing their own fitness.
- The moth Homona magnanima harbors three distinct male-killing agents: Wolbachia bacteria, Spiroplasma bacteria, and the Osugoroshi virus (OGV).
- Understanding the mechanisms of these diverse MK agents within a single host species is crucial for evolutionary insights.
Purpose of the Study:
- To investigate and compare the molecular mechanisms employed by Wolbachia, Spiroplasma, and OGV to induce male killing in Homona magnanima.
- To determine if these distantly related male killers utilize similar or divergent strategies to eliminate male hosts.
- To elucidate the impact of each male killer on host sex determination, gene expression, and developmental pathways.
Main Methods:
- Utilized reverse transcription-PCR to analyze the expression of the doublesex (dsx) gene in male embryos infected with each MK agent.
- Compared host transcriptome alterations induced by Wolbachia, Spiroplasma, and OGV, focusing on sex determination and dosage compensation.
- Examined the effects of MK agents on male embryo apoptosis pathways.
Main Results:
- Wolbachia and Spiroplasma disrupted male sex determination by inducing female-type dsx splice variants, while OGV did not.
- Wolbachia uniquely impaired the host's dosage compensation system; Spiroplasma and OGV did not affect this system.
- Wolbachia and Spiroplasma triggered abnormal apoptosis in male embryos, whereas OGV did not.
Conclusions:
- Distantly related male-killing microbes employ distinct molecular machineries to eliminate males in the same host species.
- The diverse mechanisms suggest independent evolutionary origins and convergent evolution of male-killing strategies.
- These findings highlight the varied evolutionary pathways microbes can take to achieve reproductive parasitism.
Related Concept Videos
Background and Environment Affect Phenotype
An example of how genetic background affects phenotype can be seen in horses. The Extension gene in horses is responsible for their coat color. A wild-type gene (EE) produces black pigment in the coat, while a mutant gene (ee) produces red pigment. A...
The Ratio of X Chromosome to Autosomes
Normal male Drosophila has a ratio of one X chromosome to two sets of autosomes. In contrast, normal female Drosophila...
Dosage Compensation
In addition to sexual development, the X chromosome has genes involved in autosomal functions such as brain development and the immune system. Therefore, males and females with distinct numbers of X chromosomes will have...
Gene Regulation in Microbial Communities: Quorum Sensing
Microbial Interactions: Cooperation
Regulation of Bacterial Virulence

