Past, present, and future perspectives of environmental DNA (eDNA) metabarcoding: A systematic review in methods, monitoring, and applications of global eDNA

被引:710
作者
Ruppert, Krista M. [1 ]
Kline, Richard J. [1 ,2 ]
Rahman, Md Saydur [1 ,2 ]
机构
[1] Univ Texas Rio Grande Valley, Sch Earth Environm & Marine Sci, Brownsville, TX 78520 USA
[2] Univ Texas Rio Grande Valley, Dept Biol, Brownsville, TX 78520 USA
关键词
Environmental DNA; Metabarcoding; Methods; Monitoring; Applications; Systemic review; FLY-DERIVED DNA; DIET ANALYSIS; FUNGAL COMMUNITIES; ANCIENT DNA; BIODIVERSITY ASSESSMENT; MICROBIAL COMMUNITIES; ARCTIC VEGETATION; REVEALS; WATER; SEDIMENTS;
D O I
10.1016/j.gecco.2019.e00547
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
Environmental DNA (eDNA) metabarcoding is a novel method of assessing biodiversity wherein samples are taken from the environment via water, sediment or air from which DNA is extracted, and then amplified using general or universal primers in polymerase chain reaction and sequenced using next-generation sequencing to generate thousands to millions of reads. From this data, species presence can be determined, and overall biodiversity assessed. It is an interdisciplinary method that brings together traditional field-based ecology with in-depth molecular methods and advanced computational tools. As an emerging monitoring method, there are many pitfalls and roadblocks to be considered and avoided, but the method may still have the ability to revolutionize modern biodiversity surveys for the molecular era. In this paper, we review the basic methodology, benefits, and concerns of eDNA metabarcoding, and systematically cover the applications of the method in global ecology thus far, including biodiversity monitoring across all habitats and taxonomic groups, ancient ecosystem reconstruction, plant-pollinator interactions, diet analysis, invasive species detection, pollution responses, and air quality monitoring. We also discuss the future applications of the method as well as expected technological advances and how they may impact the way that eDNA metabarcoding may used in the future. eDNA metabarcoding is a unique method still in development and will likely remain in flux for some time as technology advances and procedures become standardized. However, as metabarcoding is optimized and its use becomes more widespread, it is likely to become an essential tool for ecological monitoring and global conservation study. (C) 2019 The Authors. Published by Elsevier B.V.
引用
收藏
页数:29
相关论文
共 203 条
[61]   Evaluating a multigene environmental DNA approach for biodiversity assessment [J].
Drummond, Alexei J. ;
Newcomb, Richard D. ;
Buckley, Thomas R. ;
Xie, Dong ;
Dopheide, Andrew ;
Potter, Benjamin C. M. ;
Heled, Joseph ;
Ross, Howard A. ;
Tooman, Leah ;
Grosser, Stefanie ;
Park, Duckchul ;
Demetras, Nicholas J. ;
Stevens, Mark I. ;
Russell, James C. ;
Anderson, Sandra H. ;
Carter, Anna ;
Nelson, Nicola .
GIGASCIENCE, 2015, 4
[62]   Environmental Metabarcoding Reveals Contrasting Belowground and Aboveground Fungal Communities from Poplar at a Hg Phytomanagement Site [J].
Durand, Alexis ;
Maillard, Francois ;
Foulon, Julie ;
Gweon, Hyun S. ;
Valot, Benoit ;
Chalot, Michel .
MICROBIAL ECOLOGY, 2017, 74 (04) :795-809
[63]   Effects of Temperature and Trophic State on Degradation of Environmental DNA in Lake Water [J].
Eichmiller, Jessica J. ;
Best, Sendrea E. ;
Sorensen, Peter W. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2016, 50 (04) :1859-1867
[64]   DNA metabarcoding and morphological macroinvertebrate metrics reveal the same changes in boreal watersheds across an environmental gradient [J].
Emilson, Caroline E. ;
Thompson, Dean G. ;
Venier, Lisa A. ;
Porter, Teresita M. ;
Swystun, Tom ;
Chartrand, Derek ;
Capell, Scott ;
Hajibabaei, Mehrdad .
SCIENTIFIC REPORTS, 2017, 7
[65]   New environmental metabarcodes for analysing soil DNA: potential for studying past and present ecosystems [J].
Epp, Laura S. ;
Boessenkool, Sanne ;
Bellemain, Eva P. ;
Haile, James ;
Esposito, Alfonso ;
Riaz, Tiayyba ;
Erseus, Christer ;
Gusarov, Vladimir I. ;
Edwards, Mary E. ;
Johnsen, Arild ;
Stenoien, Hans K. ;
Hassel, Kristian ;
Kauserud, Havard ;
Yoccoz, Nigel G. ;
Brathen, Karianne ;
Willerslev, Eske ;
Taberlet, Pierre ;
Coissac, Eric ;
Brochmann, Christian .
MOLECULAR ECOLOGY, 2012, 21 (08) :1821-1833
[66]   Merging DNA metabarcoding and ecological network analysis to understand and build resilient terrestrial ecosystems [J].
Evans, Darren M. ;
Kitson, James J. N. ;
Lunt, David H. ;
Straw, Nigel A. ;
Pocock, Michael J. O. .
FUNCTIONAL ECOLOGY, 2016, 30 (12) :1904-1916
[67]   Fish community assessment with eDNA metabarcoding: effects of sampling design and bioinformatic filtering [J].
Evans, Nathan T. ;
Li, Yiyuan ;
Renshaw, Mark A. ;
Olds, Brett P. ;
Deiner, Kristy ;
Turner, Cameron R. ;
Jerde, Christopher L. ;
Lodge, David M. ;
Lamberti, Gary A. ;
Pfrender, Michael E. .
CANADIAN JOURNAL OF FISHERIES AND AQUATIC SCIENCES, 2017, 74 (09) :1362-1374
[68]   Quantification of mesocosm fish and amphibian species diversity via environmental DNA metabarcoding [J].
Evans, Nathan T. ;
Olds, Brett P. ;
Renshaw, Mark A. ;
Turner, Cameron R. ;
Li, Yiyuan ;
Jerde, Christopher L. ;
Mahon, Andrew R. ;
Pfrender, Michael E. ;
Lamberti, Gary A. ;
Lodge, David M. .
MOLECULAR ECOLOGY RESOURCES, 2016, 16 (01) :29-41
[69]   Large-Scale Monitoring of Plants through Environmental DNA Metabarcoding of Soil: Recovery, Resolution, and Annotation of Four DNA Markers [J].
Fahner, Nicole A. ;
Shokralla, Shadi ;
Baird, Donald J. ;
Hajibabaei, Mehrdad .
PLOS ONE, 2016, 11 (06)
[70]   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