
doi: 10.1111/geb.12341
handle: 10342/10095
AbstractAimUnderstanding how ecological and evolutionary processes together determine patterns of biodiversity remains a central aim in biology. Guided by ecological theory, we use data from multiple arthropod lineages across the Hawaiian archipelago to explore the interplay between ecological (population dynamics, dispersal, trophic interactions) and evolutionary (genetic structuring, adaptation, speciation, extinction) processes. Our goal is to show how communities develop from the dynamic feedbacks that operate at different temporal and spatial scales.LocationThe Hawaiian islands (19–22° N, 155–160° W).MethodsWe synthesize genetic data from selected arthropods across the Hawaiian archipelago to determine the relative role of dispersal and in situ differentiation across the island chronosequence. From four sites on three high islands with geological ages ranging from < 1 Ma to 5 Ma, we also generate ecological metrics on plant–herbivore bipartite networks drawn from the literature. We compare the structure of these networks with predictions derived from the principle of maximum information entropy.ResultsFrom the perspective of the island chronosequence we show that species at lower trophic levels develop population genetic structure at smaller temporal and spatial scales than species at higher trophic levels. Network nestedness decreases while modularity increases with habitat age. Single‐island endemics exhibit more specialization than broadly distributed species, but both show the least specialization in communities on middle‐aged substrates. Plant–herbivore networks also show the least deviation from theoretical predictions in middle‐aged communities.Main conclusionsThe application of ecological theory to island chronosequences can illuminate feedbacks between ecological and evolutionary processes in community assembly. We show how patterns of population genetic structure, decreasing network nestedness, increasing network modularity and increased specialization shift from early assembly driven by immigration, to in situ diversification after > 1 Myr. Herbivore–plant communities only transiently achieve statistical steady state during assembly, presumably due to incomplete assembly from dispersal in the early stages, and the increasing influence of island ontogeny on older islands.
570, Ecology (science-metrix), maximum entropy, Life on Land, ANIMAL MUTUALISTIC NETWORKS, DIVERSITY, Environmental Sciences & Ecology, 0602 Ecology (for), 4102 Ecological applications (for-2020), 3105 Genetics (for-2020), 3104 Evolutionary Biology (for-2020), Hawaii, 3103 Ecology (for-2020), Genetics, Physical, Arthropods, Evolutionary Biology, ARCHITECTURE, Science & Technology, 31 Biological Sciences (for-2020), Ecology, Geography, STABILITY, 41 Environmental Sciences (for-2020), 500, population genetics, 0501 Ecological Applications (for), Biological Sciences, 4104 Environmental management (for-2020), ADAPTIVE RADIATION, chronosequence, Physical Geography, networks, Physical Sciences, PATTERNS, 0406 Physical Geography and Environmental Geoscience (for), DIVERSIFICATION, 15 Life on Land (sdg), Life Sciences & Biomedicine, Environmental Sciences, HAWAIIAN, BIOGEOGRAPHY
570, Ecology (science-metrix), maximum entropy, Life on Land, ANIMAL MUTUALISTIC NETWORKS, DIVERSITY, Environmental Sciences & Ecology, 0602 Ecology (for), 4102 Ecological applications (for-2020), 3105 Genetics (for-2020), 3104 Evolutionary Biology (for-2020), Hawaii, 3103 Ecology (for-2020), Genetics, Physical, Arthropods, Evolutionary Biology, ARCHITECTURE, Science & Technology, 31 Biological Sciences (for-2020), Ecology, Geography, STABILITY, 41 Environmental Sciences (for-2020), 500, population genetics, 0501 Ecological Applications (for), Biological Sciences, 4104 Environmental management (for-2020), ADAPTIVE RADIATION, chronosequence, Physical Geography, networks, Physical Sciences, PATTERNS, 0406 Physical Geography and Environmental Geoscience (for), DIVERSIFICATION, 15 Life on Land (sdg), Life Sciences & Biomedicine, Environmental Sciences, HAWAIIAN, BIOGEOGRAPHY
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