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Lutscher, F.

Publications and source records attributed to Lutscher, F..

2 recordsLinked to original sources

Eco-evolutionary dynamics in competitive systems: Rescue or murder?

Rapid evolution in response to changing environments can have beneficial (e.g. evolutionary rescue) or detrimental (e.g. evolutionary suicide) outcomes for the survival of one species. Responses of multi-species systems are even harder to predict, but important to consider. We simulate eco-evolutionary dynamics in one- and two-species systems, with two traits per species: physiological performance (associated with abiotic pressure) and defense against interference competition (associated with biotic pressure). In the single-species system, evolution is consistently beneficial, enabling evolutionary rescue. In contrast, in the two-species system, evolution can be simultaneously beneficial and detrimental, because rescue of one species can lead to evolutionary murder of the other. Notably, the pattern of rescue and murder was largely independent of different ecological and evolutionary scenarios, indicating that evolutionary murder might be common in competitive systems. Our study enables exploration of eco-evolutionary dynamics in more complex biotic settings, extending understanding of species responses to abiotic and biotic changes.

ecology↗

Evolutionary dynamics at the leading edge ofbiological invasions

Empirical evidence shows that evolution may take place during species range expansion. Indeed, dispersal ability tends to be selected for at the leading edge of invasions, ultimately increasing a species spreading speed. However, for organisms across many different taxa, higher dispersal comes at the cost of fitness, producing evolutionary trade-offs at the leading edge. Using reaction-diffusion equations and adaptive dynamics, we provide new insights on how such evolutionary processes take place. We show how evolution may drive phenotypes at the leading edge to maximize the asymptotic spreading speed, and conditions under which phenotypic plasticity in dispersal is selected for under different dispersal-reproduction trade-off scenarios. We provide some possible future research directions and other systems where the framework can be applied.

evolutionary biology↗