| Literature DB >> 27504108 |
Yujia Zhai1, Ellard R Hunting1, Marja Wouters2, Willie J G M Peijnenburg3, Martina G Vijver1.
Abstract
Silver nanoparticles (AgNPs) affect microbial metabolic processes at single cell level or lab-culture strains. However, the impact of different AgNPs properties such as the particle, ion release, and shape on functional responses of natural soil microbial communities remain poorly understood. Therefore, we assessed the relative importance of particles and ions of AgNPs in bacterial toxicity and how the functional diversity of soil microbial communities were impacted by AgNPs shapes (i.e., plates, spheres, and rods) in laboratory incubations. Our results showed that the relative contribution of AgNPs(particle) increased with increasing exposure concentrations (accounted for about 60-68% of the total toxicity at the highest exposure level). In addition, the functional composition of the microbial community differed significantly according to different AgNPs shapes. The various properties of AgNPs thus can significantly and differentially affect the functional composition of microbial communities and associated ecosystem processes depending on the level of environmental exposure.Entities:
Keywords: Biolog Ecoplates; functional diversity; microbial community; nanoecotoxicology; nanosilver
Year: 2016 PMID: 27504108 PMCID: PMC4959451 DOI: 10.3389/fmicb.2016.01123
Source DB: PubMed Journal: Front Microbiol ISSN: 1664-302X Impact factor: 5.640
Hydrodynamic diameter of 1 mg/L suspensions of silver nanoparticles (AgNPs) in the exposure medium.
| Hydrodynamic diameter (nm)a | ||||
|---|---|---|---|---|
| Type | 1 h | 24 h | 48 h | 96 h |
| 50–80 nm nanoplates | 196 ± 15 | 352 ± 27 | 368 ± 41 | 382 ± 54 |
| 15 nm nanospheres | 191 ± 12 | 346 ± 42 | 385 ± 36 | 393 ± 78∗ |
| 20–40 nm nanospheres | 187 ± 5 | 337 ± 13 | 373 ± 21 | 387 ± 76∗ |
| 50 nm nanorods | 288 ± 20 | 463 ± 48 | 487 ± 76 | 496 ± 148∗ |
The EC50 values of AgNPs and AgNPs expressed on initial concentrations and expressed on time weighted average concentrations.
| EC50 (mg/L)a | 95% Confidence intervals | ||||
|---|---|---|---|---|---|
| Total | Particle | Total | Particle | ||
| Initial concentrations | 50–80 nm nanoplates | 0.354 | 0.228 | 0.331–0.506 | 0.216–0.242 |
| 15 nm nanospheres | 0.409 | 0.249 | 0.318–0.394 | 0.227–0.267 | |
| 20–40 nm nanospheres | 0.535 | 0.313 | 0.487–0.715 | 0.234–0.264 | |
| 50 nm nanorods | 0.590 | 0.402 | 0.376–0.763 | 0.361–0.446 | |
| TWAb | 50–80 nm nanoplates | 0.242 | 0.201 | 0.205–0.286 | 0.184–0.220 |
| 15 nm nanospheres | 0.299 | 0.212 | 0.255–0.351 | 0.198–0.227 | |
| 20–40 nm nanospheres | 0.337 | 0.222 | 0.307–0.369 | 0.207–0.237 | |
| 50 nm nanorods | 0.521 | 0.342 | 0.380–0.714 | 0.302–0.387 | |
Relative contribution of particles and shedding ions of AgNPs to toxicity at different effect levels of nanoparticle suspensions.
| 50–80 nm nanoplates | 15 nm nanospheres | 20–40 nm nanospheres | 50 nm nanorods | ||||||
|---|---|---|---|---|---|---|---|---|---|
| Conc. (mg/L) | Contrib. (%) | Conc. (mg/L) | Contrib. (%) | Conc. (mg/L) | Contrib. (%) | Conc. (mg/L) | Contrib. (%) | ||
| EC20 | Particle | 0.067 | 32 | 0.075 | 33 | 0.137 | 40 | 0.176 | 43 |
| Ion | 0.045 | 68 | 0.052 | 67 | 0.085 | 60 | 0.092 | 57 | |
| EC 60 | Particle | 0.188 | 53 | 0.199 | 55 | 0.213 | 58 | 0.383 | 62 |
| Ion | 0.087 | 47 | 0.144 | 45 | 0.184 | 42 | 0.194 | 38 | |
| EC80 | Particle | 0.237 | 58 | 0.251 | 61 | 0.260 | 62 | 0.447 | 68 |
| Ion | 0.118 | 42 | 0.152 | 39 | 0.203 | 38 | 0.310 | 32 | |
| EC 90 | Particle | 0.307 | 60 | 0.327 | 63 | 0.389 | 64 | 0.708 | 68 |
| Ion | 0.182 | 40 | 0.193 | 37 | 0.209 | 36 | 0.467 | 32 | |