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Dourlens, I.

Publications and source records attributed to Dourlens, I..

2 recordsLinked to original sources

Nutrition mediates extreme growth variation through deep changes in gene expression in the water strider Microvelia longipes

Exaggerated sexually selected traits are known to be highly variable and their degree of expression is dependent on nutritional input. Yet the molecular mechanisms linking nutritional variation to phenotypic variation remain poorly understood. Here, we investigate how nutritional input shapes the development of male rear leg length, an exaggerated and highly variable trait in the water strider Microvelia longipes, using comparative transcriptomics and RNA interference gene knockdown experiments. We demonstrate that nutrition is the primary driver of gene expression variation, with male exaggerated rear legs exhibiting the highest number of nutrition-responsive genes. Moreover, the increase in morphological divergence between leg types or sex, which is systematically exacerbated by rich nutrition, is associated with increased number of leg-biased genes. These comparative analyses allowed us to identify BMP11 as specifically enriched in female and male rear legs. Knockdown of BMP11 abolishes nutritional plasticity in leg length only in males, positioning it as a key integrator of environmental, sex and developmental signals. Our findings reveal that transcriptional modulation provides a molecular interface between nutrition and trait exaggeration. This work advances our understanding of how environmental cues are translated into complex phenotypes and highlights the role of developmental plasticity as a substrate for evolutionary change.

evolutionary biology↗

Sexual conflict, directional sexual selection and phenotypic plasticity jointly drive the evolution of extreme phenotypic variation

How broad phenotypic variation is maintained in natural populations in the face of selection is a central question in evolutionary biology. We address this question in the water strider Microvelia longipes, where males exhibit striking variation in rear leg length used in male-male contests for dominance. Using reaction norm experiments on inbred lines, we demonstrate that phenotypic plasticity contributes to expanding phenotypic variation, but requires high genetic variation to generate the broad range of trait expression observed in natural populations. Experimental evolution favouring trait exaggeration revealed that directional sexual selection not only fails to erode variation of male rear leg length, but rather amplifies it beyond the natural distribution. Additionally, male-limited selection in favour of dominance generated substantial fecundity costs in females, underscoring the role of sexual conflict driven by females in constraining exaggerated secondary sexual traits in males. Our findings show that sexually antagonistic selection and directional sexual selection jointly generate high genetic variation, which phenotypic plasticity inflates into broad phenotypic distribution of male weapon size. This provides an empirical explanation for the high variability of male exaggerated weapons in nature.

evolutionary biology↗