| Literature DB >> 30619182 |
Hana Zouch1,2, Léa Cabrol2, Sandrine Chifflet2, Marc Tedetti1,2, Fatma Karray1, Hatem Zaghden1, Sami Sayadi1, Marianne Quéméneur1,2.
Abstract
Both industrial effluent discharge and the resuspension of contaminated marine sediments are important sources of trace ass="Chemical">metals inEntities:
Keywords: Flavobacteriaceae; Gulf of Gabès; Mediterranean Sea; acidic wastewater; bacteria; marine sediments; phosphogypsum; trace metals
Year: 2018 PMID: 30619182 PMCID: PMC6302000 DOI: 10.3389/fmicb.2018.03103
Source DB: PubMed Journal: Front Microbiol ISSN: 1664-302X Impact factor: 5.640
Figure 1Map of the study area in the south Mediterranean Sea (A) and in the Sfax coast (B) and photograph of the laboratory experiments of sediment resuspension (C). Location of sampling sites is shown by black circles. Location of the fertilizer plant in the industrial area is indicated in blue. Red arrows indicate the direction of flow of acidic wastewater.
Treatments used to test the effect of acidic wastewater (AWW) on microbial and trace metal dynamics during the resuspension of contaminated sediment (SED) into coastal seawater (SW).
| Biotic conditions | S | S1, S2, S3 | 20 gDW | 2L | 0 | 0 |
| P | P1, P2, P3 | 20 gDW | 2L | 10 mL | 0 | |
| Abiotic controls | SA | SA1, SA2, SA3 | 20 gDW | 2L | 0 | 50 mM |
| PA | PA1, PA2, PA3 | 20 gDW | 2L | 10 mL | 50 mM |
Experiments were performed in triplicates.
Chemical properties of sediment (SED) used in resuspension experiments and collected on the Sfax southern coast (Tunisia, South Mediterranean Sea).
| pH | 6.3 |
| Temperature | 31.3 |
| Eh | 203 |
| Water content (% of wet weight) | 39.7 |
| Total carbon (% of dry weight) | 2.4 |
| Organic carbon (% of dry weight) | 1.4 |
| Total nitrogen (% of dry weight) | 0.2 |
| Total sulfur (% of dry weight) | 0.9 |
| Total hydrogen (% of dry weight) | 0.7 |
| P (mg kg−1) | 367–15110 (2456) |
| As | 3.2 |
| Cd | 16.4 |
| Co | 1.5 |
| Cr | 330.8 |
| Mn | 113.5 |
| Mo | 8.1 |
| Ni | 34.9 |
| Pb | 0.2 |
| U | 19.7 |
| V | 25.9 |
Data obtained from Naifar et al. (.
Figure 2Composition of microbial communities at the phylum or class level in initial sediment (S), seawater (SW), and acid wastewater (AWW) of Sfax coast (south Mediterranean Sea), and in sediment samples collected from biotic incubations with or without AWW addition (S and P conditions, respectively) at 4 different times (T3, T5, T7, and T10 days). Each bar represents the color-coded relative abundance of microbial taxa in the studied samples. The dendrogram was constructed from the OTU abundance table using Bray–Curtis dissimilarity. The scale bar of the dendrogram represents the dissimilarity level (%) between microbial community.
Figure 3Dynamics of bacterial growth (optical density OD 600 nm; A), pH (B), and dissolved concentrations of cadmium (C), uranium (D), arsenic (E), and vanadium (F) during sediment resuspension experiments. Two treatments were tested: biotic sediment (S, blue), and biotic sediment with AWW addition (P, red). Corresponding abiotic controls (SA and PA) were represented by dotted lines. Values are means of triplicate resuspension microcosms ± standard deviations (error bars).
Figure 4Principal Coordinate Analysis (PCoA) computed from the OTU abundance table of resuspended sediments, either exposed (P,▴) or not (S,∙) to acidic effluent (AWW), performed in triplicate (each replicate is indicated by the second digit, from 1 to 3), and collected at 4 different times along the incubation (time T3 to T10). The size and color intensity of symbols is proportional to elapsed time. Ellipses represent sample partitioning (Bray Curtis dissimilarity) between the P and S groups (standard deviation at 90% confidence, p-value 0.002). (A) Correlation between ordination and unrelated environmental variables (after removing the linearly-correlated variables). Only significant correlations are represented (p-value < 0.01, in light blue, p-value < 0.001, in dark blue). (B) Identification of 32 most discriminant OTU (labeled with their OTU number). Arrow colors represent the OTU affiliation at different taxonomic levels (class/order/family, represented by c/o/f respectively). BLAST affiliation of those OTU can be found in Table S8.
Figure 5Heat map showing the relative abundance of the most discriminant OTU selected from the PCoA of initial samples (SED, SW, and AWW) and samples collected during resuspension experiments (at 4 different times from T3 to T10), either in exposed (P) or not (S) to AWW. Data are average abundances calculated on biological triplicates. The color intensity for each panel corresponds to the OTU abundance, red indicates high level of relative abundance, while yellow indicates low relative abundance.