Comparing eDNA metabarcoding and conventional pelagic netting to inform biodiversity monitoring in deep ocean environments

被引:11
作者
Cote, D. [1 ,2 ]
McClenaghan, B. [3 ]
Desforges, J. [1 ]
Fahner, N. A. [3 ]
Hajibabaei, M. [3 ]
Chawarski, J. [4 ]
Roul, S. [5 ]
Singer, G. [3 ]
Aubry, C. [5 ]
Geoffroy, M. [4 ,6 ]
机构
[1] Northwest Atlantic Fisheries Ctr, 80 East White Hills Rd,POB 5667, St John, NF A1C 5X1, Canada
[2] Mem Univ, Ocean Sci Ctr, St John, NF A1C 5S7, Canada
[3] EDNAtec Inc, Ctr Environm Genom Applicat, St John, NF A1A 0R6, Canada
[4] Mem Univ Newfoundland, Ctr Fisheries Ecosyst Res, Fisheries & Marine Inst, St John, NF A1C 5R3, Canada
[5] Univ Laval, Pavillon Alexandre Vachon, Quebec City, PQ G1V 0A6, Canada
[6] UiT Arctic Univ Norway, Dept Arctic & Marine Biol, N-9019 Tromso, Norway
关键词
biodiversity; conservation; Deep Ocean; eDNA; environmental DNA; marine ecology; mesopelagic; metabarcoding; monitoring; pelagic netting; TWILIGHT ZONE; DNA; FISH; MIGRATION; COMMUNITY; DESIGN;
D O I
10.1093/icesjms/fsad169
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
The performance of environmental DNA (eDNA) metabarcoding has rarely been evaluated against conventional sampling methods in deep ocean mesopelagic environments. We assessed the biodiversity patterns generated with eDNA and two co-located conventional methods, oblique midwater trawls and vertical multinets, to compare regional and sample-level diversity. We then assessed the concordance of ecological patterns across water column habitats and evaluated how DNA markers and the level of sampling effort influenced the inferred community. We found eDNA metabarcoding characterized regional diversity well, detecting more taxa while identifying similar ecological patterns as conventional samples. Within sampling locations, eDNA metabarcoding rarely detected taxa across more than one replicate. While more taxa were found in eDNA than oblique midwater trawls within sample stations, fewer were found compared to vertical multinets. Our simulations show greater eDNA sampling effort would improve concordance with conventional methods. We also observed that using taxonomic data from multiple markers generated ecological patterns most similar to those observed with conventional methods. Patterns observed with Exact Sequence Variants were more stable across markers suggesting they are more powerful for detecting change. eDNA metabarcoding is a valuable tool for identifying and monitoring biological hotspots but some methodological adjustments are recommended for deep ocean environments.
引用
收藏
页码:2545 / 2562
页数:18
相关论文
共 96 条
[31]   Mesozooplankton biodiversity, vertical assemblages, and diel migration in the western tropical Pacific Ocean revealed by eDNA metabarcoding and morphological methods [J].
Feng, Yunzhi ;
Sun, Dong ;
Shao, Qianwen ;
Fang, Chen ;
Wang, Chunsheng .
FRONTIERS IN MARINE SCIENCE, 2022, 9
[32]   Replication levels, false presences and the estimation of the presence/absence from eDNA metabarcoding data [J].
Ficetola, Gentile F. ;
Pansu, Johan ;
Bonin, Aurelie ;
Coissac, Eric ;
Giguet-Covex, Charline ;
De Barba, Marta ;
Gielly, Ludovic ;
Lopes, Carla M. ;
Boyer, Frederic ;
Pompanon, Francois ;
Raye, Gilles ;
Taberlet, Pierre .
MOLECULAR ECOLOGY RESOURCES, 2015, 15 (03) :543-556
[33]   Marine water environmental DNA metabarcoding provides a comprehensive fish diversity assessment and reveals spatial patterns in a large oceanic area [J].
Fraija-Fernandez, Natalia ;
Bouquieaux, Marie-Catherine ;
Rey, Anais ;
Mendibil, Inaki ;
Cotano, Unai ;
Irigoien, Xabier ;
Santos, Maria ;
Rodriguez-Ezpeleta, Naiara .
ECOLOGY AND EVOLUTION, 2020, 10 (14) :7560-7584
[34]   Environmental biomonitoring of reef fish community structure with eDNA metabarcoding in the Coral Triangle [J].
Gelis, Ester Restiana Endang ;
Kamal, M. Mukhlis ;
Subhan, Beginer ;
Bachtiar, Imam ;
Sani, Lalu M. Iqbal ;
Madduppa, Hawis .
ENVIRONMENTAL BIOLOGY OF FISHES, 2021, 104 (08) :887-903
[35]   Large-Scale Biomonitoring of Remote and Threatened Ecosystems via High-Throughput Sequencing [J].
Gibson, Joel F. ;
Shokralla, Shadi ;
Curry, Colin ;
Baird, Donald J. ;
Monk, Wendy A. ;
King, Ian ;
Hajibabaei, Mehrdad .
PLOS ONE, 2015, 10 (10)
[36]   eDNA metabarcoding as a biomonitoring tool for marine protected areas [J].
Gold, Zachary ;
Sprague, Joshua ;
Kushner, David J. ;
Zerecero Marin, Erick ;
Barber, Paul H. .
PLOS ONE, 2021, 16 (02)
[37]   Improved biodiversity detection using a large-volume environmental DNA sampler with in situ filtration and implications for marine eDNA sampling strategies [J].
Govindarajan, Annette F. ;
McCartin, Luke ;
Adams, Allan ;
Allan, Elizabeth ;
Belani, Abhimanyu ;
Francolini, Rene ;
Fujii, Justin ;
Gomez-Ibanez, Daniel ;
Kukulya, Amy ;
Marin, Fredrick ;
Tradd, Kaitlyn ;
Yoerger, Dana R. ;
McDermott, Jill M. ;
Herrera, Santiago .
DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 2022, 189
[38]   Exploring the Use of Environmental DNA (eDNA) to Detect Animal Taxa in the Mesopelagic Zone [J].
Govindarajan, Annette F. ;
Francolini, Rene D. ;
Jech, J. Michael ;
Lavery, Andone C. ;
Llopiz, Joel K. ;
Wiebe, Peter H. ;
Zhang, Weifeng .
FRONTIERS IN ECOLOGY AND EVOLUTION, 2021, 9
[39]   The sceptical optimist: challenges and perspectives for the application of environmental DNA in marine fisheries [J].
Hansen, Brian Klitgaard ;
Bekkevold, Dorte ;
Clausen, Lotte Worsoe ;
Nielsen, Einar Eg .
FISH AND FISHERIES, 2018, 19 (05) :751-768
[40]   eDNA metabarcoding enriches traditional trawl survey data for monitoring biodiversity in the marine environment [J].
He, X. ;
Jeffery, N. W. ;
Stanley, R. R. E. ;
Hamilton, L. C. ;
Rubidge, E. M. ;
Abbott, C. L. .
ICES JOURNAL OF MARINE SCIENCE, 2023, 80 (05) :1529-1538