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bioRxiv · 10.1101/021683

Life history evolution in response to changes in metapopulation structure in an arthropod herbivore

Abstract

O_LIThe persistence and dynamics of populations largely depends on the way they are configured and integrated into space and the ensuing eco-evolutionary dynamics.\nC_LIO_LIWe manipulated spatial and temporal variation in patch size in replicated experimental metapopulations of the herbivore mite Tetranychus urticae and followed evolutionary dynamics over approximately 30 generations.\nC_LIO_LIA significant divergence in life history traits, physiological endpoints and gene expression was recorded in the spatially and spatiotemporally variable metapopulation, but also a remarkable convergence relative to the stable reference metapopulation in traits related to size and fecundity and in its transcriptional regulation.\nC_LIO_LIThe observed evolutionary dynamics are tightly linked to demographic changes, more specifically frequent episodes of resource shortage that increased the reproductive performance of mites on tomato, a challenging host plant. This points towards a general, adaptive stress response in stable spatial variable and spatiotemporal variable metapopulations that pre-adapts a herbivore arthropod to novel environmental stressors.\nC_LI

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Annelies De Roissart, Nicky Wybouw, David Renault, Thomas Van Leeuwen, Dries Bonte. 2015-06-29. Life history evolution in response to changes in metapopulation structure in an arthropod herbivore. https://doi.org/10.1101/021683

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