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Thomas, C. L.

Publications and source records attributed to Thomas, C. L..

3 recordsLinked to original sources

Larval diapause slows adult epigenetic ageing in an insect model, Nasonia vitripennis

Epigenetic clocks based on DNA methylation provide robust biomarkers of biological age, yet the mechanistic basis and functional significance of slowing these clocks remain unclear. Progress has been limited by the lack of short-lived, genetically tractable model organisms with functional DNA methylation systems. The jewel wasp, Nasonia vitripennis, offers a unique solution. It combines a functional DNA methylation system with a short lifespan and established tools for experimental manipulation. We previously developed an epigenetic clock in Nasonia, but whether this clock reflects plastic, environmentally driven ageing processes was unknown. Here, we test this directly by experimentally inducing larval diapause, a naturally occurring developmental arrest triggered by environmental cues. Diapause extended median adult lifespan by 36% and significantly slowed the rate of epigenetic ageing. Using whole-genome bisulfite sequencing across multiple adult timepoints, we show that while adults that have passed through diapause as larvae initially emerge epigenetically older, their subsequent epigenetic ageing proceeds 29% more slowly than non-diapaused controls. Clock CpGs were enriched for gene ontology terms related to conserved nutrient-sensing and developmental pathways, including insulin/IGF signaling and mTOR, supporting the established mechanistic link between development and epigenetic ageing. These findings demonstrate that epigenetic ageing is plastic in Nasonia and can be experimentally modulated by early-life environment, establishing this animal model as a tractable system for dissecting the causal mechanisms of epigenetic ageing.

genetics↗

Developmental DNA Methylation in the Parasitoid Wasp Nasonia vitripennis

DNA methylation is a crucial epigenetic mark the development of many insect species, being essential for fertility and the progression of development in a range of organisms. However, the mechanisms underpinning the role of DNA methylation in insect development remains elusive. Furthermore, the patterns of methylation in different species can be varied. Here we aim to profile methylation across metamorphosis in the insect DNA methylation model Nasonia vitripennis for the first time. We find DNA methylation is at the highest in the embryo, and at the lowest in the larva. We find that the gene expression levels of NvTet and NvDnmt enzymes compliment the observed methylation patterns. Performing differential methylation analysis we find enriched GO terms for developmentally specific processes and find sites with differential methylation are share homology with developmentally linked transcription factors. Additionally, we identify sites uniquely methylated in each developmental stage, many of which also share homology with developmentally linked transcription factors. In all, we find that methylation is variable in its global methylation levels and site specific methylation throughout Nasonia vitripennis development, but find no obvious link with gene expression.

genetics↗

Sex differences in auditory function of the desert locust

Age-related auditory decline manifests across the animal kingdom, from humans and mice to zebrafish and insects. Sex differences in auditory decline are established for humans, but there is now evidence in mice and even zebrafish. Here, we found sex differences in auditory decline in an insect, the Desert Locust and investigated its biological basis. We profiled gene expression in a dedicated auditory organ, Mullers organ to understand the genetic underpinning of sex differences and measured sound-evoked transduction currents and electrophysiological properties of auditory neurons to quantify auditory decline. We analysed gene expression in Mullers organ of young locusts where sex differences were absent and in older, noise-exposed locusts where sex differences were maximal. The largest differences in gene expression between the sexes was between young and stressed (aged and noise-exposed) auditory organs. We found sex-specific genes and gene ontology terms for juvenile hormone (JH) and sex-specific estrogen-related steroids. We hypothesise that sex differences in auditory decline are due to differences in hormones which then affect metabolic processes in and mitochondria. HighlightsO_LIFemale Desert Locusts have less auditory decline than males. C_LIO_LIFemales auditory organs maintain better metabolism under stressed conditions. C_LIO_LISex differences in gene expression are maximal during aging and noise-exposure. C_LIO_LISex differences are minimal between the sexes for young and stressed auditory organs. C_LI

neuroscience↗