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Jacobsen, A. G. G.

Publications and source records attributed to Jacobsen, A. G. G..

2 recordsLinked to original sources

Lunar Reproductive Timing Acts as a Magic Trait and May Recruit Additional Isolating Barriers in Sympatric Marine Midge Populations

Population divergence with gene flow has proven more common than expected, but the underlying mechanisms are not fully understood. Magic traits (i.e. characters involved in both ecological adaptation and assortative mating) offer a tantalizing mechanism to explain the phenomenon, yet empirical demonstrations are rare. Moreover, speciation is assumed to involve genomic processes that couple multiple reproductive barriers, rather than being driven by a single barrier, and it re-mains unclear how magic traits interact with these processes. Here, we investigate the marine midge Clunio marinus, whose reproduction is timed to the extreme spring tide low tides during full moon or new moon. In Roscoff (Brittany, France) there are two sympatric chronotypes, i.e. subpopulations which reproduce only during full or new moons. Lunar reproductive timing is hypothesized to act as a magic trait, as it is both ecologically relevant and isolates reproduction in time. Based on wild-caught mating pairs and laboratory crosses, we show that lunar timing indeed is the major reproductive barrier (RI > 0.87). We also identify additional barriers which further increase reproductive isolation (total RI > 0.94). To explore the genomic basis of these barriers, we perform association testing on several high-FST loci. Two loci were associated with multiple barriers, and patterns of linkage disequilibrium suggest that these effects may arise from a combination of genetic link-age and pleiotropy. Together, our results indicate that lunar timing played a pivotal role in chronotype divergence, not only as a magic trait but also by promoting the recruitment of additional isolating barriers. We hypothesize that this recruitment is due to the polygenic and complex genetic architecture of lunar timing, highlighting the joint role of magic traits and genomic architecture in divergence with gene flow.

evolutionary biology↗

How competition can drive allochronic divergence: a case study in the marine midge, Clunio marinus

Synchronizing mating to extrinsic environmental cycles can increase the chance of successful reproduction. However, the resulting temporally-assorted mating may precipitate speciation if coupled with divergent selection. This process might be particularly relevant to the marine midge Clunio marinus, which synchronizes its reproduction to different lunar phases. In Ro-scoff (France) two sympatric populations differ in reproductive timing but are still connected by gene flow. A previous study found a relationship between the timing of reproduction and larval depth in the intertidal zone. Building on this observation, we ask if the link between reproductive timing and depth could be a mechanism for divergence when coupled with competition-induced density-dependent fitness. We devise an individual-based model replicating the reproductive behavior of C. marinus and find that sympatric divergence can occur, even when we model sexual reproduction with recombination and an explicit genetic basis. Our results suggest this mechanism is a likely hypothesis for the allochronic divergence observed in the Roscoff populations. Additionally, our study provides insights into how density-dependent fitness and competition may play a role in allochronic divergence in general.

evolutionary biology↗