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Farcy, E.

Publications and source records attributed to Farcy, E..

2 recordsLinked to original sources

Genome-Environment Associations reveal shared and unique adaptive loci across multiple pollutants and populations of the eastern mosquitofish Gambusia holbrooki

Rapid adaptation to human-induced stressors is commonplace in the context of global change, including during biological invasions. Identifying the genomic bases and associated biological functions underlying such adaptation is hence crucial to understand and anticipate the response of populations and species to changing conditions. In particular, the extent to which genetic responses to multiple anthropogenic stressors vary between populations in the wild has been relatively unexplored. We addressed this question by leveraging whole-genome sequence data (both PoolSeq and IndSeq) in invasive populations of Gambusia holbrooki - a widespread invasive fish species - collected from 14 locations with different multi-pollutants exposure. We sought to identify adaptive loci associated with pollution tolerance by conducting Genome-Environment Association (GEA) analyses. Additionally, we investigated the degree of adaptive loci reuse between pollutants and their combinations as well as across populations. We found strong signals of association between allele frequency changes and pollutant exposure at several genomic locations, often overlapping with genes known for their functions in detoxification and immune response. We further showed that most adaptive loci are not shared among all populations, suggesting heterogeneous genomic response to each local selection. Interestingly, multiple tests looking for footprints of selection and association to pollutants yielded consistent results. Our results shed new light on the extent of genetic convergence in the genomic bases of rapid adaptation to different cocktails of human-induced pollution, and are important to our understanding of the fate of wild populations facing increasingly complex and stressful environments.

genomics↗

Impact of port conditions and acclimation capacity of common two-banded seabream juveniles in the bay of Toulon: implications for nursery rehabilitation efforts

Ports are heavily anthropized coastal environments characterized by intense pollution and habitat alterations, creating challenging living conditions for marine organisms, particularly juvenile fish that rely on these areas as nurseries. While recent rehabilitation efforts of the nursery function in ports have focused on structural modifications, the impacts of port chemical and physical pollution are currently disregarded. Using field sampling and caging experiments, we examined the physiological (growth, lipid content, CYP1A-dependent biotransformation activity) and molecular (RNA-seq) responses of juvenile two-banded sea bream (Diplodus vulgaris) by comparing one port site with two adjacent sites from outside of the port, assessing their potential for short-term acclimation to port conditions. Results from individuals sampled in the field revealed distinct physiological and transcriptomic profiles in port juveniles, indicating specific responses to this environment. Notably, alterations related to lipid accumulation, detoxification, hypoxia, and circadian regulation were observed. After one month of caging all the individuals from different locations in the port, juveniles originating from outside the port exhibited stronger transcriptional responses compared to individuals that grew within the port, with higher expression of genes involved in detoxification and lipid metabolism, and a strong overexpression of oncogenes, while individuals originating from the port upregulated genes involved in energy metabolism, suggesting some capacity for short-term acclimation in port-resident juvenile fish. These findings highlight the potential impact of port conditions on juvenile fish health, with implications for the effectiveness of rehabilitation efforts. This study emphasizes the need for further research to inform nursery rehabilitation strategies in polluted ports.

physiology↗