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Lambert-Auger, F.

Publications and source records attributed to Lambert-Auger, F..

2 recordsLinked to original sources

Genomic predictions of climate change vulnerability in the emblematic mountain butterfly Parnassius apollo

The unprecedented rate of climate warming threatens many species, and assessing their vulnerability to climate change represents a critical challenge in conservation biology. The Apollo butterfly, an emblematic mountain species, is expected to be impacted by climate change. Here, we analysed thousands of SNPs from 101 localities across Apollo French distribution. We identified 93 SNPs strongly associated with climate variation using five genotype-environment association analyses. We forecasted future climate maladaptation of French Apollo populations using four genomic offset methods and integrated these results with neutral and adaptive genetic diversity, genetic structure and adaptive climatic niches to infer their vulnerability to climate change. Jura and Alps populations exhibited the lowest risk of vulnerability to climate change, with low genomic offsets, high genetic diversity and connectivity, whereas Auvergne populations showed the highest genomic offsets and lowest neutral and adaptive genetic diversity. Only a reduced percentage (<1%) of the current distribution is predicted to face climatic conditions outside the current range, suggesting that adaptive variability required to adapt to future climates may already be present, and that assisted gene flow could represent an effective conservation strategy. Finally, we discuss some of the main challenges of genomic forecasts, particularly for declining non-model species.

evolutionary biology↗

Genetic erosion and projected habitat loss in the protected Alpine moth Actias isabellae galliaegloria (Lepidoptera: Saturniidae)

O_LIMontane and specialist insects are particularly vulnerable to habitat loss and climate change. The Spanish Moon Moth (Actias isabellae), a rare and protected species, hosts an isolated Alpine population (subspecies galliaegloria) whose conservation status remains unclear. C_LIO_LIWe combined Restriction-site Associated DNA sequencing (RADseq) and Ecological Niche Modelling (ENM) to assess its genetic diversity, population structure, and environmental vulnerability. C_LIO_LIGenomic analyses revealed extremely low genetic diversity and inbreeding in the Alpine subspecies, consistent with a historical bottleneck, reducing adaptive potential. C_LIO_LISpecies distribution models predict a major contraction of suitable habitat by 2050 due to rising temperatures and declines in its primary host, Scots pine (Pinus sylvestris). C_LIO_LIThese findings highlight the compounded risks posed by genetic impoverishment and habitat loss, emphasizing the urgent need for targeted conservation measures. C_LIO_LIOur study demonstrates the value of integrating genomic and ecological approaches to evaluate extinction risk and guide management strategies for montane specialist insects under rapid environmental change. C_LI

evolutionary biology↗