A Million Years of Asexuality Leaves Stick Insect Genetics Intact
Asexual stick insects that have reproduced without male fertilization for approximately a million years have managed to retain a male-female gene-balancing mechanism. The finding comes from a study published in the scientific journal Proceedings of the National Academy of Sciences (PNAS).
Researchers at Bangor University in Gwynedd examined the genetics of Timema. These wingless stick insects are native to the western United States and reproduce via parthenogenesis—a process where an embryo develops from an unfertilized egg.
The Mechanics of Dosage Compensation
In sexually reproducing species, males and females often carry a different number of X chromosomes. Males typically have one, resulting in an XY pairing, while females possess two, resulting in an XX pairing.
To compensate for this genetic difference, species evolve biological systems known as dosage compensation to ensure gene expression remains balanced equally between the sexes. That mechanism was explained by Dr. Darren Parker, a lecturer in evolutionary biology at Bangor University.
The Expectation of Evolutionary Decay
Before the Bangor University study, scientists assumed that because female Timema stick insects reproduce independently of males, the biological need to equalize gene expression would vanish.
Researchers theorized that the regulatory systems responsible for dosage compensation would gradually decay over evolutionary time. This assumption was especially prominent since the insects were thought to have undergone one of the longest periods of asexuality of any insect group.
Testing Rare Male Timema Populations
To test whether these genetic safeguards had degraded, the research team investigated gene expression in rare male stick insects discovered within the populations.

Their findings disproved the initial hypothesis. Rather than decaying away from disuse, the dosage compensation mechanisms remained fully operational despite more than a million years passing without standard sexual reproduction.
Broader Implications for Evolutionary Biology
The study highlights how complex genetic architecture can persist in animal lineages even when ecological pressures shift.
The research team’s peer-reviewed findings provide new empirical data on how evolutionary constraints and gene regulation function over long geological timescales in species that have abandoned traditional sex.
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