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Geology topics

W. D. Koenig

Publications and source records attributed to W. D. Koenig.

3 recordsLinked to original sources

Mast seeding patterns are asynchronous at a continental scale

Resource pulses are short duration, high magnitude, rare events that drive the dynamics of both plant and animal populations and communities1. Mast seeding is perhaps the most common type of resource pulse occurring in terrestrial ecosystems2, is characterized by the synchronous and highly variable production of seed crops by a population of perennial plants3,4, and is widespread both taxonomically and geographically5. The rare production of abundant seed crops (‘mast events’) that are orders of magnitude higher than in low seed years lead to high reproductive success in seed consumers, and has cascading impacts in ecosystems2,6. While it is suggested that mast seeding is synchronized at continental scales7, studies are largely constrained to local areas covering 10-100’s of kilometers. Furthermore, summer temperature, which acts as a cue in mast seeding8, shows patterns at continental scales manifested as a juxtaposition of positive and negative anomalies that have been linked to irruptive movements of boreal seed eating birds9. Here we show a breakdown in synchrony of mast seeding patterns across space, leading to asynchrony at a continental scale. We found in an analysis of synchrony for a transcontinental North America tree species spanning distances >5,200 km that mast seeding patterns were significantly asynchronous at distances >2,000 km apart. Other studies have shown declines in synchrony across distance, but not asynchrony. Spatio-temporal variation in summer temperatures at the continental scale drives patterns of synchrony in mast seeding, and we anticipate this impacts the spatial dynamics of numerous seed-eating communities, from insects to small mammals to the large-scale migration patterns of boreal seed eating birds.

Nature Plants

From theory to experiments for testing the proximate mechanisms of mast seeding: An agenda for an experimental ecology

Highly variable and synchronised production of seeds by plant populations is called masting and is implicated in many important ecological processes, but how it arises remains poorly understood. The lack of experimental studies prevents underlying mechanisms from being explicitly tested, and thereby precludes meaningful predictions on the consequences of changing environments for plant reproductive patterns and global vegetation dynamics. Here we review the most relevant hypothetical drivers of masting and outline a research agenda that takes the biology of masting from a largely observational field of ecology to one rooted in mechanistic understanding. We divide the experimental framework into three main processes: resource dynamics, pollen limitation, and genetic and hormonal regulation, and illustrate how specific predictions about proximate mechanisms can be tested, highlighting the few successful experiments as examples. We envision that the experiments we outline will deliver new insights into how and why masting patterns might respond to a changing environment.

Ecology Letters

Nutrient scarcity as a selective pressure for mast seeding

Mast seeding is one of the most intriguing reproductive traits in nature. Despite its potential drawbacks in terms of fitness, the widespread existence of this phenomenon suggests that it should have evolutionary advantages under certain circumstances. Using a global dataset of seed production time series for 219 plant species from all of the continents, we tested whether masting behaviour appears predominantly in species with low foliar nitrogen and phosphorus concentrations when controlling for local climate and productivity. Here, we show that masting intensity is higher in species with low foliar N and P concentrations, and especially in those with imbalanced N/P ratios, and that the evolutionary history of masting behaviour has been linked to that of nutrient economy. Our results support the hypothesis that masting is stronger in species growing under limiting conditions and suggest that this reproductive behaviour might have evolved as an adaptation to nutrient limitations and imbalances.

Nature Plants