Low concentrations of silver nanoparticles in biosolids cause adverse ecosystem responses under realistic field scenario.

dc.contributor.author

Colman, Benjamin P

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Arnaout, Christina L

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Anciaux, Sarah

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Gunsch, Claudia K

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Hochella, Michael F

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Kim, Bojeong

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Lowry, Gregory V

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McGill, Bonnie M

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Reinsch, Brian C

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Richardson, Curtis J

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Unrine, Jason M

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Wright, Justin P

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Yin, Liyan

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Bernhardt, Emily S

dc.contributor.editor

Johnson, Stephen J

dc.coverage.spatial

United States

dc.date.accessioned

2017-11-01T15:54:32Z

dc.date.available

2017-11-01T15:54:32Z

dc.date.issued

2013

dc.description.abstract

A large fraction of engineered nanomaterials in consumer and commercial products will reach natural ecosystems. To date, research on the biological impacts of environmental nanomaterial exposures has largely focused on high-concentration exposures in mechanistic lab studies with single strains of model organisms. These results are difficult to extrapolate to ecosystems, where exposures will likely be at low-concentrations and which are inhabited by a diversity of organisms. Here we show adverse responses of plants and microorganisms in a replicated long-term terrestrial mesocosm field experiment following a single low dose of silver nanoparticles (0.14 mg Ag kg(-1) soil) applied via a likely route of exposure, sewage biosolid application. While total aboveground plant biomass did not differ between treatments receiving biosolids, one plant species, Microstegium vimeneum, had 32 % less biomass in the Slurry+AgNP treatment relative to the Slurry only treatment. Microorganisms were also affected by AgNP treatment, which gave a significantly different community composition of bacteria in the Slurry+AgNPs as opposed to the Slurry treatment one day after addition as analyzed by T-RFLP analysis of 16S-rRNA genes. After eight days, N2O flux was 4.5 fold higher in the Slurry+AgNPs treatment than the Slurry treatment. After fifty days, community composition and N2O flux of the Slurry+AgNPs treatment converged with the Slurry. However, the soil microbial extracellular enzymes leucine amino peptidase and phosphatase had 52 and 27% lower activities, respectively, while microbial biomass was 35% lower than the Slurry. We also show that the magnitude of these responses was in all cases as large as or larger than the positive control, AgNO3, added at 4-fold the Ag concentration of the silver nanoparticles.

dc.identifier

https://www.ncbi.nlm.nih.gov/pubmed/23468930

dc.identifier

PONE-D-12-17052

dc.identifier.eissn

1932-6203

dc.identifier.uri

https://hdl.handle.net/10161/15714

dc.language

eng

dc.publisher

Public Library of Science (PLoS)

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PLoS One

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10.1371/journal.pone.0057189

dc.subject

Biomass

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Ecosystem

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Metal Nanoparticles

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Microscopy, Electron, Transmission

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Plants

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Silver

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Silver Nitrate

dc.title

Low concentrations of silver nanoparticles in biosolids cause adverse ecosystem responses under realistic field scenario.

dc.type

Journal article

duke.contributor.orcid

Wright, Justin P|0000-0002-9102-5347

duke.contributor.orcid

Bernhardt, Emily S|0000-0003-3031-621X

pubs.author-url

https://www.ncbi.nlm.nih.gov/pubmed/23468930

pubs.begin-page

e57189

pubs.issue

2

pubs.organisational-group

Biology

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Civil and Environmental Engineering

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Duke

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Environmental Sciences and Policy

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Marine Science and Conservation

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Nicholas School of the Environment

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Pratt School of Engineering

pubs.organisational-group

Staff

pubs.organisational-group

Trinity College of Arts & Sciences

pubs.publication-status

Published

pubs.volume

8

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