Fisheries selection and the components of adaptive potential


Main funder

Funder's project number353482


Funds granted by main funder (€)

  • 200 000,00


Funding program


Project timetable

Project start date01/09/2022

Project end date31/08/2024


Summary

The genetic basis of adaptive potential is a fundamental question in evolutionary biology and the question also has a great applied value. To manage natural resources and conserve species under growing human pressure, it is critically important to assess and understand how human activities affect species’ adaptive potential. Human-induced changes in the molecular components of adaptive potential in natural populations have remained poorly studied because 1) we lack information of the relative contribution of different molecular components to the adaptive potential, 2) changes in adaptive potential caused by human activities remain difficult to demonstrate in nature, where environment is constantly changing, and 3) molecular level changes are not always easy to study in non-model organisms.
I use size-selective fisheries as an example of pervasive anthropogenic activity that can erode population’s adaptive potential. I have experimentally harvested zebrafish populations for five generations and induced phenotypic and genetic changes in the selection lines. After that, the populations were allowed to recover (i.e., no harvesting) for 10 generations. I will use these unique, long-term selection lines and the latest next-generation sequencing techniques to test whether five generations of size-selective harvesting have affected the components of adaptive potential and whether these effects have eroded during the recovery period. I will focus on sequence-level (coding and non-coding) variation, epigenetic variation, gene networks and within-generation plasticity. I will finally expose the experimental populations to re-harvesting and to a combination of re-harvesting and climate-change related disturbance. No study thus far has empirically investigated how the exploited populations respond to the re-start of fishing after recovery or how fisheries selection and climate change interact. Furthermore, studies focusing on the persistency of molecular changes induced by size-selective harvesting are rare, although they could give practical information about the recovery timelines and help validating eco-evolutionary models. My additional goal is to improve the communication between researchers and managers and increase the practical value of genomics for fisheries management and conservation by beginning to develop a tool to monitor the changes in the adaptive potential (genetic variation).


Principal Investigator


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Primary responsible unit


Last updated on 2022-17-08 at 10:44