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Clucas, G. V.

Publications and source records attributed to Clucas, G. V..

2 recordsLinked to original sources

Multiple methods of diet assessment reveal differences in Atlantic puffin adult and chick diets both between and within years

Atlantic puffin (Fratercula arctica, hereafter "puffin") reproductive success in the Gulf of Maine (GoM) has decreased following a recent oceanographic regime shift and subsequent rapid warming. Concurrent changes in both the regional forage fish community and puffin chick diet and provisioning rates suggest that inadequate prey resources may be driving this decline. To determine what prey GoM puffins were feeding on during two years of marine heatwave conditions, we assessed puffin diet using two methods: traditional, observational methods that utilize bill-load photography and emerging methods employing fecal DNA metabarcoding. We identified a strong correlation between the composition of chick diet as estimated through traditional and emerging methods, supporting the interpretation of DNA relative read abundance as a quantitative metric of diet composition. Both methods identified the same dominant prey groups, but metabarcoding identified a greater number of species and offered higher taxonomic resolution. Puffin adults and chicks fed on many of the same prey types, although adults consumed a greater variety of taxa and consumed more low quality prey than they provisioned chicks, as predicted by optimal foraging theory. For both age classes, diet varied both between and within years, likely reflecting changes in the local forage fish community in response to environmental variability. During these two years of marine heatwave conditions, puffins exploited unusual abundances of typically-uncommon prey, yet low puffin productivity suggests the observed dietary plasticity was not able to compensate for apparent prey shortages. Continued refinement of molecular tools and the interpretation of the data they provide will enable better assessments of how seabirds of diverse ages and breeding stages are compensating for changing forage fish communities in response to global climate change.

ecology↗

From presence/absence to reliable prey proportions: A field test of dietary DNA for characterizing seabird diets

Climate change and human impacts are causing rapid shifts in species distributions and abundance, potentially disrupting predator-prey relationships. Monitoring animal diets can elucidate these relationships and potentially provide a mechanistic understanding of population declines, but efficient methods to monitor diets are needed. Dietary DNA can be used to gather data on species diets with high-taxonomic resolution, but the question of whether it can provide quantitative information on animal diets has so far limited its applications. Here we show that dietary DNA can efficiently provide quantitative information on the relative proportions of fish in the diets of piscivorous seabirds. Over three breeding seasons, we observed common tern chick feeding events and collected fecal samples from chicks. We compared the frequency of occurrence (FOO) and relative read abundance (RRA) of fish prey in the fecal samples to the relative biomass recorded through visual observations and found a high correlation (R = 0.94) between RRA and relative biomass at the colony level. We also found that RRA outperformed FOO in capturing interannual changes in relative prey biomass, and that FOO systematically over-estimated the relative importance across all prey categories. The high taxonomic resolution provided by dietary DNA and the high correlation between RRA and relative biomass we found here suggest that dietary DNA can be used as a quantitative metric to monitor seabird diets. This has important applications for studying the impact of changing forage fish availability on seabird populations, but also for harnessing seabirds as sentinels of ecosystem health. Since quantitative diet data can be collected highly efficiently using dietary DNA, this method could provide key information about food web dynamics and forage fish availability as we move towards ecosystem-based fisheries management.

ecology↗