Varroa mites escape the evolutionary trap of haplodiploidy

Abstract Genetic diversity is essential for populations adapting to environmental-changes. Following genetic bottlenecks, invasive species often have reduced diversity, yet must rapidly adapt to novel environments. This paradox is especially pronounced in parasites, which face repeated transmission bottlenecks and anthropogenic countermeasures. The challenge of maintaining diversity in the short-term intensifies in haplodiploid species, where males inherit and transmit only half of their mother’s genome, limiting effective population size. To examine how such species may maintain adaptability, we studied inheritance in Varroa mites ( Varroa destructor ), globally invasive honey bee parasite. Using three-generation pedigrees, we found that Varroa is not haplodiploid, as previously thought. Rather, females produce diploid sons who transmit either maternal allele to daughters. This system slows reduced heterozygosity loss under sib-mating, compared to ancestral haplodiploidy, increasing effective population size and adaptability. Our findings reveal a rare reversion from haplodiploidy, long considered an evolutionary end state, and suggest reproductive plasticity underlies the resilience of invasive parasites like Varroa.

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Publication Details

Journal
Nature Communications
Published
2026-09-01
DOI
https://doi.org/10.1038/s41467-026-77125-8
Citations
2
Primary Topic
Insect and Pesticide Research
Type
article
Field-Weighted Citation Impact
6.26

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article

Varroa mites escape the evolutionary trap of haplodiploidy

Evan P. Economo, Alexander S. Mikheyev, Maéva Angélique Techer, Juliana Rangel et al.
2 citations
Nature Communications
Insect and Pesticide Research
6.26
article

Varroa mites escape the evolutionary trap of haplodiploidy

Evan P. Economo, Alexander S. Mikheyev, Maéva Angélique Techer, Juliana Rangel, Nurit Eliash, Tetsuya Endo
article en
2 citations

Abstract

Abstract Genetic diversity is essential for populations adapting to environmental-changes. Following genetic bottlenecks, invasive species often have reduced diversity, yet must rapidly adapt to novel environments. This paradox is especially pronounced in parasites, which face repeated transmission bottlenecks and anthropogenic countermeasures. The challenge of maintaining diversity in the short-term intensifies in haplodiploid species, where males inherit and transmit only half of their mother’s genome, limiting effective population size. To examine how such species may maintain adaptability, we studied inheritance in Varroa mites ( Varroa destructor ), globally invasive honey bee parasite. Using three-generation pedigrees, we found that Varroa is not haplodiploid, as previously thought. Rather, females produce diploid sons who transmit either maternal allele to daughters. This system slows reduced heterozygosity loss under sib-mating, compared to ancestral haplodiploidy, increasing effective population size and adaptability. Our findings reveal a rare reversion from haplodiploidy, long considered an evolutionary end state, and suggest reproductive plasticity underlies the resilience of invasive parasites like Varroa.

Nature Communications
Australian National University (AU), Okinawa Institute of Science and Technology Graduate University (JP), Australian Mathematical Sciences Institute (AU), Arizona State University (US), University of Maryland, College Park (US), Zhejiang University (CN), Texas A&M University (US), University of Haifa (IL)
Okinawa Institute of Science and Technology Graduate University, Australian Research Council
Life in Land
Openalex Percentile: Top 10%
Insect and Pesticide Research
6.26
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