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Refining trophic dynamics through multi‐factor Bayesian mixing models: A case study of subterranean beetles

Food web dynamics are vital in shaping the functional ecology of ecosystems. However, trophic ecology is still in its infancy in groundwater ecosystems due to the cryptic nature of these environments. To unravel trophic interactions between subterranean biota, we applied an interdisciplinary Bayesia...

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Autores principales: Saccò, Mattia, Blyth, Alison J., Humphreys, William F., Cooper, Steven J. B., Austin, Andrew D., Hyde, Josephine, Mazumder, Debashish, Hua, Quan, White, Nicole E., Grice, Kliti
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7452819/
https://www.ncbi.nlm.nih.gov/pubmed/32884659
http://dx.doi.org/10.1002/ece3.6580
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author Saccò, Mattia
Blyth, Alison J.
Humphreys, William F.
Cooper, Steven J. B.
Austin, Andrew D.
Hyde, Josephine
Mazumder, Debashish
Hua, Quan
White, Nicole E.
Grice, Kliti
author_facet Saccò, Mattia
Blyth, Alison J.
Humphreys, William F.
Cooper, Steven J. B.
Austin, Andrew D.
Hyde, Josephine
Mazumder, Debashish
Hua, Quan
White, Nicole E.
Grice, Kliti
author_sort Saccò, Mattia
collection PubMed
description Food web dynamics are vital in shaping the functional ecology of ecosystems. However, trophic ecology is still in its infancy in groundwater ecosystems due to the cryptic nature of these environments. To unravel trophic interactions between subterranean biota, we applied an interdisciplinary Bayesian mixing model design (multi‐factor BMM) based on the integration of faunal C and N bulk tissue stable isotope data (δ(13)C and δ(15)N) with radiocarbon data (Δ(14)C), and prior information from metagenomic analyses. We further compared outcomes from multi‐factor BMM with a conventional isotope double proxy mixing model (SIA BMM), triple proxy (δ(13)C, δ(15)N, and Δ(14)C, multi‐proxy BMM), and double proxy combined with DNA prior information (SIA + DNA BMM) designs. Three species of subterranean beetles (Paroster macrosturtensis, Paroster mesosturtensis, and Paroster microsturtensis) and their main prey items Chiltoniidae amphipods (AM1: Scutachiltonia axfordi and AM2: Yilgarniella sturtensis), cyclopoids and harpacticoids from a calcrete in Western Australia were targeted. Diet estimations from stable isotope only models (SIA BMM) indicated homogeneous patterns with modest preferences for amphipods as prey items. Multi‐proxy BMM suggested increased—and species‐specific—predatory pressures on amphipods coupled with high rates of scavenging/predation on sister species. SIA + DNA BMM showed marked preferences for amphipods AM1 and AM2, and reduced interspecific scavenging/predation on Paroster species. Multi‐factorial BMM revealed the most precise estimations (lower overall SD and very marginal beetles' interspecific interactions), indicating consistent preferences for amphipods AM1 in all the beetles' diets. Incorporation of genetic priors allowed crucial refining of the feeding preferences, while integration of more expensive radiocarbon data as a third proxy (when combined with genetic data) produced more precise outcomes but close dietary reconstruction to that from SIA + DNA BMM. Further multidisciplinary modeling from other groundwater environments will help elucidate the potential behind these designs and bring light to the feeding ecology of one the most vital ecosystems worldwide.
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spelling pubmed-74528192020-09-02 Refining trophic dynamics through multi‐factor Bayesian mixing models: A case study of subterranean beetles Saccò, Mattia Blyth, Alison J. Humphreys, William F. Cooper, Steven J. B. Austin, Andrew D. Hyde, Josephine Mazumder, Debashish Hua, Quan White, Nicole E. Grice, Kliti Ecol Evol Original Research Food web dynamics are vital in shaping the functional ecology of ecosystems. However, trophic ecology is still in its infancy in groundwater ecosystems due to the cryptic nature of these environments. To unravel trophic interactions between subterranean biota, we applied an interdisciplinary Bayesian mixing model design (multi‐factor BMM) based on the integration of faunal C and N bulk tissue stable isotope data (δ(13)C and δ(15)N) with radiocarbon data (Δ(14)C), and prior information from metagenomic analyses. We further compared outcomes from multi‐factor BMM with a conventional isotope double proxy mixing model (SIA BMM), triple proxy (δ(13)C, δ(15)N, and Δ(14)C, multi‐proxy BMM), and double proxy combined with DNA prior information (SIA + DNA BMM) designs. Three species of subterranean beetles (Paroster macrosturtensis, Paroster mesosturtensis, and Paroster microsturtensis) and their main prey items Chiltoniidae amphipods (AM1: Scutachiltonia axfordi and AM2: Yilgarniella sturtensis), cyclopoids and harpacticoids from a calcrete in Western Australia were targeted. Diet estimations from stable isotope only models (SIA BMM) indicated homogeneous patterns with modest preferences for amphipods as prey items. Multi‐proxy BMM suggested increased—and species‐specific—predatory pressures on amphipods coupled with high rates of scavenging/predation on sister species. SIA + DNA BMM showed marked preferences for amphipods AM1 and AM2, and reduced interspecific scavenging/predation on Paroster species. Multi‐factorial BMM revealed the most precise estimations (lower overall SD and very marginal beetles' interspecific interactions), indicating consistent preferences for amphipods AM1 in all the beetles' diets. Incorporation of genetic priors allowed crucial refining of the feeding preferences, while integration of more expensive radiocarbon data as a third proxy (when combined with genetic data) produced more precise outcomes but close dietary reconstruction to that from SIA + DNA BMM. Further multidisciplinary modeling from other groundwater environments will help elucidate the potential behind these designs and bring light to the feeding ecology of one the most vital ecosystems worldwide. John Wiley and Sons Inc. 2020-07-20 /pmc/articles/PMC7452819/ /pubmed/32884659 http://dx.doi.org/10.1002/ece3.6580 Text en © 2020 The Authors. Ecology and Evolution published by John Wiley & Sons Ltd This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Research
Saccò, Mattia
Blyth, Alison J.
Humphreys, William F.
Cooper, Steven J. B.
Austin, Andrew D.
Hyde, Josephine
Mazumder, Debashish
Hua, Quan
White, Nicole E.
Grice, Kliti
Refining trophic dynamics through multi‐factor Bayesian mixing models: A case study of subterranean beetles
title Refining trophic dynamics through multi‐factor Bayesian mixing models: A case study of subterranean beetles
title_full Refining trophic dynamics through multi‐factor Bayesian mixing models: A case study of subterranean beetles
title_fullStr Refining trophic dynamics through multi‐factor Bayesian mixing models: A case study of subterranean beetles
title_full_unstemmed Refining trophic dynamics through multi‐factor Bayesian mixing models: A case study of subterranean beetles
title_short Refining trophic dynamics through multi‐factor Bayesian mixing models: A case study of subterranean beetles
title_sort refining trophic dynamics through multi‐factor bayesian mixing models: a case study of subterranean beetles
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7452819/
https://www.ncbi.nlm.nih.gov/pubmed/32884659
http://dx.doi.org/10.1002/ece3.6580
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