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Biology subjects

Donohue, K.

Publications and source records attributed to Donohue, K..

2 recordsLinked to original sources

Seed dormancy increased population persistence in permissive environments, but not in stressful environments in an annual plant.

1. Background and AimsSeed dormancy can delay germination timing to more favorable growth conditions, not only increasing seedling survival, but potentially increasing lifetime fitness. As such, seed dormancy can be a form of seasonal environmental tracking. In addition, seed dormancy can act as a bet-hedging strategy by spreading the germination risk across time, within or between years. Through both environmental tracking and bet-hedging, seed dormancy can stabilize population demography, potentially enhancing long-term population persistence. 2. MethodsTo test whether populations that express seed dormancy are more likely to persist than populations not capable of dormancy, we established genetically variable, experimental field populations of Arabidopsis thaliana that differ in their capacity to control the seasonal timing of germination through seed dormancy. Four environmental treatments were imposed to test for demographic differences across environments and to test whether dormancy mitigates the effects of environmental variation. 3. Key ResultsSeasonal seed dormancy influenced demography and population persistence primarily via early seedling or rosette mortality. Dormant populations had larger seedling populations and higher population persistence over the three years in the most permissive environmental treatments. However, stressful environments diminished the demographic effects of dormancy. These dynamics, in turn, resulted in dormant populations unexpectedly exhibiting more variation across environmental treatments than non-dormant populations. Therefore, dormancys enhancement of demographic performance may be caused more by allowing populations to take advantage of favorable conditions than by helping them to escape poor conditions. 4. ConclusionsThis study shows that seasonal seed dormancy may help populations persist over time, but not under all environmental conditions. In more permissive environments, dormancy can reduce population bottlenecks and maintain larger populations. Some conditions, however, may be too adverse for seed dormancy to overcome.

ecology↗

Rapid adaptation and extinction across climates in synchronized outdoor evolution experiments of Arabidopsis thaliana

Climate change is threatening species with extinction, and rapid evolutionary adaptation may be their only option for population rescue over short ecological timescales. However, direct observations of rapid genetic adaptation and population dynamics across climates are rare across species. To fill this gap, we conducted a replicated, globally synchronized evolution experiment with the plant Arabidopsis thaliana for 5 years in over 30 outdoor experimental gardens with distinct climates across Europe, the Levant, and North America. We performed whole-genome sequencing on [~]70,000 surviving reproductive individuals and directly observed rapid and repeatable adaptation across climates. Allele frequency changes over time were parallel in experimental evolution replicates within the same climates, while they diverged across contrasting climates--with some allele frequency shifts best explained by strong selection between -46% to +60%. Screening the genome for signals of rapid climate adaptation identified a polygenic architecture with both known and novel adaptive genetic variants connected to important ecological phenotypes including environmental stress responses, CAM5 and HEAT SHOCK FACTORs, and germination and spring flowering timing, CYTOCHROME P450s and TSF. We found evolutionary adaptation trends were often predictable, but variable across environments. In warm climates, high evolutionary predictability was associated with population survival up to 5 years, while erratic trends were an early warning for population extinction. Together, these results show rapid climate adaptation may be possible, but understanding its limits across species will be key for biodiversity forecasting.

evolutionary biology↗