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Chakraborty, P. P.

Publications and source records attributed to Chakraborty, P. P..

2 recordsLinked to original sources

Experimental evidence that metapopulation structure can accelerate adaptive evolution

Whether the spatial arrangement of a population influences adaptive evolution has puzzled evolutionary biologists. Theoretical models make contrasting predictions about the probability a beneficial mutation will become fixed in a population for certain topologies like stars, where leaf populations are connected through a hub. To date, these predictions have not been evaluated under realistic conditions. Here, we test the prediction that topology can change the fixation probability both in vitro and in silico by tracking the dynamics of a beneficial mutant under positive selection as it spreads through networks of different topologies. Our results provide empirical support that metapopulation topology can increase the likelihood that a beneficial mutation spreads, broadens the conditions under which this phenomenon is thought to occur, and points the way towards using network topology to amplify the effects of weakly favored mutations under directed evolution in industrial applications.

evolutionary biology↗

Dispersal evolution diminishes the negative density dependence in dispersal

In many organisms, dispersal varies with the local population density. Such patterns of density-dependent dispersal (DDD) are expected to shape the dynamics, spatial spread and invasiveness of populations. Despite their ecological importance, empirical evidence for the evolution of DDD patterns remains extremely scarce. This is especially relevant because rapid evolution of dispersal traits has now been empirically confirmed in several taxa. Changes in DDD of dispersing populations could help clarify not only the role of DDD in dispersal evolution, but also the possible pattern of subsequent range expansion. Here, we investigate the relationship between dispersal evolution and DDD using a long-term experimental evolution study on Drosophila melanogaster. We compared the DDD patterns of four dispersal-selected populations and their non-selected controls. The control populations showed negative DDD, which was stronger in females than in males. In contrast, the dispersal-selected populations showed density-independent dispersal, where neither males nor females exhibited DDD. We compare our results with previous evolutionary predictions that focused largely on positive DDD, and highlight how the direction of evolutionary change depends on the initial DDD pattern of a population. Finally, we discuss the implications of DDD evolution for spatial ecology and evolution.

evolutionary biology↗