Interactive effects of multiple stressors revealed by sequencing total (DNA) and active (RNA) components of experimental sediment microbial communities.
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Peter Scanes | Stuart L. Simpson | Brendan P. Kelaher | Katherine A. Dafforn | Emma L. Johnston | S. Simpson | E. Johnston | K. Dafforn | P. Scanes | B. Kelaher | S. Birrer | J. Potts | Simone C. Birrer | Jaimie Potts
[1] A. Moenne,et al. Mechanisms of metal tolerance in marine macroalgae, with emphasis on copper tolerance in Chlorophyta and Rhodophyta. , 2016, Aquatic toxicology.
[2] John S. Gray,et al. Effects of hypoxia and organic enrichment on the coastal marine environment , 2002 .
[3] R. Amann,et al. In situ distribution and activity of nitrifying bacteria in freshwater sediment. , 2003, Environmental microbiology.
[4] J. Bowen,et al. Long-term nutrient addition differentially alters community composition and diversity of genes that control nitrous oxide flux from salt marsh sediments , 2015 .
[5] S. Yooseph,et al. Metagenomic Analysis of the Indian Ocean Picocyanobacterial Community: Structure, Potential Function and Evolution , 2016, PloS one.
[6] M. Gilpin,et al. Perturbation Experiments in Community Ecology: Theory and Practice , 1984 .
[7] G. Stotzky,et al. Heavy metal toxicity to microbe-mediated ecologic processes: a review and potential application to regulatory policies. , 1985, Environmental research.
[8] W. Huber,et al. which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. MAnorm: a robust model for quantitative comparison of ChIP-Seq data sets , 2011 .
[9] C. Wong,et al. The challenge of choosing environmental indicators of anthropogenic impacts in estuaries. , 2012, Environmental pollution.
[10] M. Flindt,et al. Recovery of organic-enriched sediments through microbial degradation: implications for eutrophic estuaries , 2014 .
[11] H. Ducklow,et al. Correction: A Method for Studying Protistan Diversity Using Massively Parallel Sequencing of V9 Hypervariable Regions of Small-Subunit Ribosomal RNA Genes , 2009, PLoS ONE.
[12] L. Meyer-Reil,et al. Eutrophication of marine waters: effects on benthic microbial communities. , 2000 .
[13] W. Al-Soud,et al. Local diversity of heathland Cercozoa explored by in-depth sequencing , 2016, The ISME Journal.
[14] N. A. Knott,et al. Contemporary ecological threats from historical pollution sources: impacts of large‐scale resuspension of contaminated sediments on sessile invertebrate recruitment , 2009 .
[15] E. Kandeler,et al. Influence of heavy metals on the functional diversity of soil microbial communities , 1996, Biology and Fertility of Soils.
[16] E. Jeppesen,et al. Warming and nutrient enrichment in combination increase stochasticity and beta diversity of bacterioplankton assemblages across freshwater mesocosms , 2016, The ISME Journal.
[17] G. M. Luna,et al. Bacterial diversity in deep Mediterranean sediments: relationship with the active bacterial fraction and substrate availability. , 2004, Environmental microbiology.
[18] Ying Huang,et al. Diversity, Biogeography, and Biodegradation Potential of Actinobacteria in the Deep-Sea Sediments along the Southwest Indian Ridge , 2016, Front. Microbiol..
[19] Mark V Brown,et al. Bacterial communities are sensitive indicators of contaminant stress. , 2012, Marine pollution bulletin.
[20] W. Luo,et al. Organic carbon effects on aerobic polychlorinated biphenyl removal and bacterial community composition in soils and sediments. , 2008, Chemosphere.
[21] The urgent global need to understand port and harbour ecosystems , 2015 .
[22] David A. Caron,et al. New Accomplishments and Approaches for Assessing Protistan Diversity and Ecology in Natural Ecosystems , 2009 .
[23] E. Johnston,et al. Assessing contaminated sediments in the context of multiple stressors , 2010, Environmental toxicology and chemistry.
[24] A. Ravishankara,et al. Nitrous Oxide (N2O): The Dominant Ozone-Depleting Substance Emitted in the 21st Century , 2009, Science.
[25] D. Lane. 16S/23S rRNA sequencing , 1991 .
[26] R. Rosenberg,et al. Biodiversity of benthic invertebrates and organic matter processing in shallow marine sediments: an experimental study , 2005 .
[27] Sarah L. Westcott,et al. Development of a Dual-Index Sequencing Strategy and Curation Pipeline for Analyzing Amplicon Sequence Data on the MiSeq Illumina Sequencing Platform , 2013, Applied and Environmental Microbiology.
[28] R. Duran,et al. The roles of biological interactions and pollutant contamination in shaping microbial benthic community structure. , 2013, Chemosphere.
[29] C. Pedrós-Alió. The rare bacterial biosphere. , 2012, Annual review of marine science.
[30] J. Giesy,et al. Environmental DNA metabarcoding reveals primary chemical contaminants in freshwater sediments from different land-use types. , 2017, Chemosphere.
[31] H. Kirkman,et al. Megacity development: managing impacts on marine environments , 2001 .
[32] N. Das,et al. Microbial Degradation of Petroleum Hydrocarbon Contaminants: An Overview , 2010, Biotechnology research international.
[33] Mark V Brown,et al. Elevated nutrients change bacterial community composition and connectivity: high throughput sequencing of young marine biofilms , 2016, Biofouling.
[34] C. J. van der Gast,et al. Anthropogenic disturbance affects the structure of bacterial communities. , 2010, Environmental microbiology.
[35] A. Howe,et al. Microbial activity in forest soil reflects the changes in ecosystem properties between summer and winter. , 2016, Environmental microbiology.
[36] J. Palmer,et al. Investigating Deep Phylogenetic Relationships among Cyanobacteria and Plastids by Small Subunit rRNA Sequence Analysis 1 , 1999, The Journal of eukaryotic microbiology.
[37] G. Allison,et al. THE INFLUENCE OF SPECIES DIVERSITY AND STRESS INTENSITY ON COMMUNITY RESISTANCE AND RESILIENCE , 2004 .
[38] L. Balthis,et al. Organic carbon content of sediments as an indicator of stress in the marine benthos , 2005 .
[39] E. Johnston,et al. Contaminant cocktails: Interactive effects of fertiliser and copper paint on marine invertebrate recruitment and mortality. , 2016, Marine pollution bulletin.
[40] M. Kennish. Environmental threats and environmental future of estuaries , 2002, Environmental Conservation.
[41] S. Raghukumar. Ecology of the marine protists, the Labyrinthulomycetes (Thraustochytrids and Labyrinthulids) , 2002 .
[42] Anastasija Zaiko,et al. Wanted dead or alive? Using metabarcoding of environmental DNA and RNA to distinguish living assemblages for biosecurity applications , 2017, PloS one.
[43] Susan Holmes,et al. phyloseq: An R Package for Reproducible Interactive Analysis and Graphics of Microbiome Census Data , 2013, PloS one.
[44] L. Katz,et al. Diversity of diversity: conceptual and methodological differences in biodiversity estimates of eukaryotic microbes as compared to bacteria. , 2014, Trends in microbiology.
[45] Thomas Rattei,et al. The Genome of Nitrospina gracilis Illuminates the Metabolism and Evolution of the Major Marine Nitrite Oxidizer , 2012, Front. Microbio..
[46] J. Giesy,et al. Using in situ bacterial communities to monitor contaminants in river sediments. , 2016, Environmental pollution.
[47] Jean-Michel Claverie,et al. Patterns of Rare and Abundant Marine Microbial Eukaryotes , 2014, Current Biology.
[48] B. Bergman,et al. Microbial metagenomics in the Baltic Sea: Recent advancements and prospects for environmental monitoring , 2015, AMBIO.
[49] Mehrdad Hajibabaei,et al. Biomonitoring 2.0: a new paradigm in ecosystem assessment made possible by next‐generation DNA sequencing , 2012, Molecular ecology.
[50] T. Stoeck,et al. Environmental DNA metabarcoding of benthic bacterial communities indicates the benthic footprint of salmon aquaculture. , 2018, Marine pollution bulletin.
[51] Xavier Pochon,et al. Development and preliminary validation of a multi-trophic metabarcoding biotic index for monitoring benthic organic enrichment , 2018 .
[52] R. Danovaro,et al. Composition of organic matter in sediments facing a river estuary (Tyrrhenian Sea): relationships with bacteria and microphytobenthic biomass , 1994, Hydrobiologia.
[53] H. Reichenbach,et al. The Order Cytophagales , 1992 .
[54] Christian G. Klatt,et al. The unseen world: environmental microbial sequencing and identification methods for ecologists , 2014 .
[55] Steve A. Johnson,et al. Community ecology theory predicts the effects of agrochemical mixtures on aquatic biodiversity and ecosystem properties. , 2014, Ecology letters.
[56] W. Röling,et al. Microbial community structure and functioning along metal pollution gradients , 2013, Environmental toxicology and chemistry.
[57] S. Simpson,et al. Importance of subcellular metal partitioning and kinetics to predicting sublethal effects of copper in two deposit-feeding organisms. , 2015, Environmental science & technology.
[58] Z. Piotrowska-Seget,et al. Metal-tolerant bacteria occurring in heavily polluted soil and mine spoil , 2005 .
[59] S. Simpson,et al. Performance and sensitivity of rapid sublethal sediment toxicity tests with the amphipod Melita plumulosa and copepod Nitocra spinipes , 2011, Environmental toxicology and chemistry.
[60] S. Simpson,et al. The influence of sediment particle size and organic carbon on toxicity of copper to benthic invertebrates in oxic/suboxic surface sediments , 2011, Environmental toxicology and chemistry.
[61] S. Simpson,et al. Sediment Quality Assessment: A Practical Guide , 2016 .
[62] Marcel Martin. Cutadapt removes adapter sequences from high-throughput sequencing reads , 2011 .
[63] M. Cadotte,et al. Consequences of dominance: a review of evenness effects on local and regional ecosystem processes. , 2008, Ecology.
[64] T. Balser,et al. Microbial stress-response physiology and its implications for ecosystem function. , 2007, Ecology.
[65] F. A. Melton. LINEAR AND DENDRITIC SINK-HOLE PATTERNS IN SOUTHEASTERN NEW MEXICO. , 1934, Science.
[66] Matthew J. Colloff,et al. Ecological assessment of estuarine sediments by pyrosequencing eukaryotic ribosomal DNA , 2010 .
[67] E. Madsen,et al. Evaluation and Optimization of DNA Extraction and Purification Procedures for Soil and Sediment Samples , 1999, Applied and Environmental Microbiology.
[68] Qingjing Zhang,et al. Microbial Community Diversity in Water and Sediment of an Eutrophic Lake during Harmful Algal Bloom Using MiSeq Illumina Technology , 2022 .
[69] Mehrdad Hajibabaei,et al. Large-Scale Biomonitoring of Remote and Threatened Ecosystems via High-Throughput Sequencing , 2015, PloS one.
[70] Daniele Daffonchio,et al. Release and persistence of extracellular DNA in the environment. , 2007, Environmental biosafety research.
[71] Gerhard G. Thallinger,et al. Wx Scout Fashion Sneaker Splash Navy Women's Keds qAS4tR1wn4 for bawln.com , 2009 .
[72] R. Knight,et al. A comprehensive survey of soil acidobacterial diversity using pyrosequencing and clone library analyses , 2009, The ISME Journal.
[73] B. Nogales,et al. Anthropogenic perturbations in marine microbial communities. , 2011, FEMS microbiology reviews.
[74] Mark V Brown,et al. Multiple stressors in sediments impact adjacent hard substrate habitats and across biological domains. , 2017, The Science of the total environment.
[75] R. Rosenberg,et al. Macrobenthic succession in relation to organic enrichment and pollution of the marine environment , 1978 .
[76] A. Blomberg,et al. Metagenomics reveals that detoxification systems are underrepresented in marine bacterial communities , 2014, BMC Genomics.
[77] P. Giorgio,et al. Increase in the proportion of metabolically active bacteria along gradients of enrichment in freshwater and marine plankton: implications for estimates of bacterial growth and production rates , 1995 .
[78] Rob Knight,et al. Metagenomics reveals sediment microbial community response to Deepwater Horizon oil spill , 2014, The ISME Journal.
[79] David R. Johnson,et al. Can meta-omics help to establish causality between contaminant biotransformations and genes or gene products? , 2015, Environmental science : water research & technology.
[80] Bo Sun,et al. Independent Shifts of Abundant and Rare Bacterial Populations across East Antarctica Glacial Foreland , 2017, Front. Microbiol..
[81] C. Pedrós-Alió,et al. Ecology of marine Bacteroidetes: a comparative genomics approach , 2013, The ISME Journal.
[82] D. Chattopadhyay,et al. Bacterial diversity assessment of pristine mangrove microbial community from Dhulibhashani, Sundarbans using 16S rRNA gene tag sequencing , 2015, Genomics data.
[83] T. Barkay,et al. Monitoring of microbial metal transformations in the environment. , 2005, Current opinion in biotechnology.
[84] M. Schwartz,et al. Rare Species Loss Alters Ecosystem Function – Invasion Resistance , 2001 .
[85] B. Antízar-Ladislao. Bioremediation: Working with Bacteria , 2010 .
[86] J. Gilbert,et al. The microbial nitrogen cycling potential is impacted by polyaromatic hydrocarbon pollution of marine sediments , 2014, Front. Microbiol..
[87] Yan Dong,et al. Assessment of Metal Toxicity in Marine Ecosystems: Comparative Toxicity Potentials for Nine Cationic Metals in Coastal Seawater. , 2016, Environmental science & technology.
[88] Stuart L. Simpson,et al. Faster, Higher and Stronger? The Pros and Cons of Molecular Faunal Data for Assessing Ecosystem Condition , 2014 .
[89] E. Casamayor,et al. Ecology of the rare microbial biosphere of the Arctic Ocean , 2009, Proceedings of the National Academy of Sciences.
[90] Á. Borja,et al. A bacterial community-based index to assess the ecological status of estuarine and coastal environments. , 2017, Marine pollution bulletin.
[91] Victor Kunin,et al. Effects of OTU Clustering and PCR Artifacts on Microbial Diversity Estimates , 2012, Microbial Ecology.
[92] Nitrous Oxide Production in River Sediment of Highly Urbanized Area and the Effects of Water Quality , 2015, Wetlands.
[93] S. Simpson,et al. Dissolved and particulate copper exposure induces differing gene expression profiles and mechanisms of toxicity in the deposit feeding amphipod Melita plumulosa. , 2014, Environmental science & technology.
[94] Hadley Wickham,et al. ggplot2 - Elegant Graphics for Data Analysis (2nd Edition) , 2017 .
[95] S. Simpson,et al. Sub-lethal effects of copper to benthic invertebrates explained by sediment properties and dietary exposure. , 2012, Environmental science & technology.
[96] M. Coleman,et al. Polychaete Richness and Abundance Enhanced in Anthropogenically Modified Estuaries Despite High Concentrations of Toxic Contaminants , 2013, PloS one.
[97] Xiaowei Zhang,et al. Ecogenomic responses of benthic communities under multiple stressors along the marine and adjacent riverine areas of northern Bohai Sea, China. , 2017, Chemosphere.
[98] S. Simpson,et al. Resuspended contaminated sediments cause sublethal stress to oysters: A biomarker differentiates total suspended solids and contaminant effects , 2015, Environmental toxicology and chemistry.
[99] A. Devol,et al. Denitrification, anammox, and N₂ production in marine sediments. , 2015, Annual review of marine science.
[100] Lei Dai,et al. Generic Indicators for Loss of Resilience Before a Tipping Point Leading to Population Collapse , 2012, Science.
[101] B. K. Sullivan,et al. NUTRIENTS AND THE PRODUCTIVITY OF ESTUARINE AND COASTAL MARINE ECOSYSTEMS , 1986 .
[102] A. Bull,et al. Erratum , 2005, Antonie van Leeuwenhoek.
[103] P. Rainbow. Kenneth Mellanby Review Award. Trace metal concentrations in aquatic invertebrates: why and so what? , 2002, Environmental pollution.
[104] M. Keough,et al. DIRECT AND INDIRECT EFFECTS OF REPEATED POLLUTION EVENTS ON MARINE HARD-SUBSTRATE ASSEMBLAGES , 2002 .
[105] E. Johnston,et al. Contaminants reduce the richness and evenness of marine communities: a review and meta-analysis. , 2009, Environmental pollution.
[106] Benjamin S Halpern,et al. Interactive and cumulative effects of multiple human stressors in marine systems. , 2008, Ecology letters.
[107] C. Pedrós-Alió,et al. Phylogenetic and Ecological Analysis of Novel Marine Stramenopiles , 2004, Applied and Environmental Microbiology.
[108] Adam Koling,et al. Urban stress is associated with variation in microbial species composition—but not richness—in Manhattan , 2015, The ISME Journal.
[109] G. Michel,et al. Environmental and Gut Bacteroidetes: The Food Connection , 2011, Front. Microbio..