| Literature DB >> 32722363 |
Binggan Wei1, Jiangping Yu1, Zhiqiang Cao1,2, Min Meng1,2, Linsheng Yang1,2, Qing Chen3.
Abstract
In China, greenhouse agriculture, which provides abundant vegetable products for human consumption, has been rapidly developed in recent decades. Heavy metal accumulation in greenhouse soil and products obtained have received increasing attention. Therefore, the availability and accumulation of cadmium (Cd), copper (Cu), nickel (Ni), lead (Pb), and zinc (Zn) and their association with soil pH, soil organic matter (SOM), inorganic nitrogen (IN), total nitrogen (TN), available phosphorus (AP), and planting year (PY) in greenhouse soils were analyzed. The results showed that the mean concentrations of available Cd, Cu, Ni, Pb, and Zn were 17.25 μg/kg, 2.89, 0.18, 0.36, and 5.33 mg/kg, respectively, while their suggested levels in China are 0.6, 100, 100, 120, and 250 mg/kg. Cd, Cu, and Zn might be mainly originated from fertilizer application. A lower soil pH significantly increased the available Cu, Ni, and Zn concentrations and reduced Cd, Cu, Ni, and Zn accumulation. A higher AP significantly increased the proportions of available Cu, Ni, and Zn and elevated Cd, Cu, and Zn accumulation. There was a strong positive correlation between Cd, Pb, and Zn availability and TN, while IN was negatively related to the availability and accumulation of Cu and Zn. It was concluded that chemical fertilizer application increased the availability of Cu, Ni, Pb, and Zn and the accumulation of Cd, Cu, and Zn. Manure application clearly elevated the accumulation and availability of Cd and Zn in greenhouse soil.Entities:
Keywords: fertilizer application; greenhouse soil; heavy metal; planting year; soil pH
Mesh:
Substances:
Year: 2020 PMID: 32722363 PMCID: PMC7432447 DOI: 10.3390/ijerph17155359
Source DB: PubMed Journal: Int J Environ Res Public Health ISSN: 1660-4601 Impact factor: 3.390
Figure 1The study area and sampling site.
The descriptive statistics for heavy metal concentrations (Cd: μg/kg; others: mg/kg).
| Item | Available Metal Concentration (Proportion, %) | Total Metal Concentration | ||||||||
|---|---|---|---|---|---|---|---|---|---|---|
| Cd (%) | Cu (%) | Ni (%) | Pb (%) | Zn (%) | Cd | Cu | Ni | Pb | Zn | |
| Mean | 17.25 (8.97) | 2.89 (5.57) | 0.18 (0.68) | 0.36 (2.55) | 5.33 (3.91) | 173.98 | 41.91 | 28.12 | 13.25 | 112.85 |
| Median | 11.50 (7.68) | 1.44 (4.69) | 0.15 (0.53) | 0.28 (2.19) | 3.02 (3.47) | 147.86 | 31.22 | 27.67 | 12.94 | 88.80 |
| SD | 16.18 (5.27) | 3.98 (2.80) | 0.13 (0.53) | 0.36 (1.51) | 6.07 (2.57) | 83.61 | 32.54 | 4.46 | 4.22 | 77.64 |
| Min | 1.90 (1.36) | 0.56 (2.08) | 0.03 (0.12) | 0.07 (0.66) | 0.18 (0.33) | 115.29 | 19.72 | 10.49 | 7.05 | 54.69 |
| Max | 69.80 (23.84) | 17.93 (13.17) | 0.78 (3.23) | 2.42 (7.91) | 28.40 (11.04) | 653.81 | 171.54 | 36.93 | 38.05 | 453.10 |
| Background Value a | - | - | - | - | - | 56.0 | 21.0 | 28.7 | 20.5 | 71.9 |
a CNEMC, 1990 [19].
Figure 2The properties of soil from the sampling sites: (a) inorganic N (IN); (b) available P (AP); (c) total N (TN); (d) pH; (e) organic matter (SOM); (f) planting year (PY).
Pearson’s correlation coefficients between metals and soil IN, AP, TN, OM, PY, and pH.
| Metal | IN | AP | TN | pH | SOM | PY |
|---|---|---|---|---|---|---|
| Available metal concentration | ||||||
| ACd | 0.289 * | 0.530 ** | 0.577 ** | −0.027 | 0.330 * | 0.465 ** |
| ACu | 0.016 | 0.561 ** | 0.232 | −0.807 ** | 0.243 | 0.123 |
| ANi | 0.357 * | 0.729 ** | 0.617 ** | −0.385 ** | 0.233 | 0.326 * |
| APb | −0.008 | 0.015 | 0.167 | 0.140 | 0.028 | 0.522 ** |
| AZn | 0.220 | 0.777 ** | 0.492 ** | −0.765 ** | 0.317 * | 0.192 |
| Proportion of available metal concentration | ||||||
| PCd | 0.279 * | 0.469 ** | 0.573 ** | 0.113 | 0.248 | 0.422 ** |
| PCu | 0.035 | 0.504 ** | 0.214 | −0.509 ** | 0.183 | 0.106 |
| PNi | 0.473 ** | 0.687 ** | 0.619 ** | −0.244 | 0.240 | 0.356 * |
| PPb | 0.185 | 0.195 | 0.379 ** | 0.255 | 0.167 | 0.384 ** |
| PZn | 0.388 ** | 0.734 ** | 0.550 ** | −0.331 * | 0.382 ** | 0.163 |
| Total metal concentration | ||||||
| TCd | 0.150 | 0.433 ** | 0.358 ** | −0.225 | 0.333 * | 0.360 ** |
| TCu | −0.014 | 0.552 ** | 0.257 | −0.875 ** | 0.263 | 0.102 |
| TNi | −0.391 ** | −0.156 | −0.183 | −0.224 | −0.101 | −0.110 |
| TPb | −0.198 | −0.171 | −0.003 | 0.039 | −0.092 | 0.430 ** |
| TZn | 0.066 | 0.669 ** | 0.378 ** | −0.871 ** | 0.290 * | 0.163 |
* Significant at the <0.05 level; ** Significant at the <0.01 level.
Figure 3Correlations between metals and soil factors.
The results of the principal component analysis.
| Element | Component | ||
|---|---|---|---|
| PC1 | PC2 | PC3 | |
| TCd | 0.379 | 0.611 | −0.270 |
| TCu | 0.215 | 0.960 | 0.150 |
| TNi | −0.343 | 0.278 | 0.806 |
| TPb | −0.095 | −0.136 | 0.826 |
| TZn | 0.322 | 0.972 | 0.078 |
| IN | 0.825 | 0.003 | −0.396 |
| AP | 0.845 | 0.644 | −0.193 |
| TN | 0.883 | 0.368 | −0.106 |
| SOM | 0.803 | 0.320 | −0.120 |
| % of Variance | 42.33 | 22.28 | 13.03 |
| Cumulative % | 42.33 | 64.61 | 77.64 |
Figure 4Factor loadings for the principal component analysis (PCA) of heavy metals in soils.
Stepwise regression analysis between available metals and soil factors (C, coefficient).
| Metal Y | R2 | AP | TN | pH | SOM | PY | IN |
|---|---|---|---|---|---|---|---|
| Available metal concentration | |||||||
| ACd | 0.423 | 0.479 ** | 0.316 ** | ||||
| ACu | 0.651 | −0.807 ** | |||||
| ANi | 0.609 | 0.949 ** | −0.356 ** | ||||
| APb | 0.258 | 0.522 ** | |||||
| AZn | 0.782 | 0.664 ** | −0.430 ** | −0.226 ** | |||
| Proportions of available metal concentration | |||||||
| PCd | 0.563 | 0.445 ** | 0.286 ** | 0.258 * | |||
| PCu | 0.392 | 1.092 ** | −0.523 * | −0.279 * | |||
| PNi | 0.539 | 1.026 ** | 0.240 * | −0.330 * | |||
| PPb | 0.332 | 0.431 ** | 0.410 ** | 0.270 * | |||
| PZn | 0.530 | 0.734 ** | |||||
| Total metal concentration | |||||||
| TCd | 0.171 | 0.433 ** | |||||
| TCu | 0.835 | 0.492 ** | −0.224 * | −0.720 ** | −0.279 ** | ||
| TNi | 0.206 | −0.295 * | −0.439 ** | ||||
| TPb | 0.259 | −0.338 * | 0.536 ** | ||||
| TZn | 0.861 | 0.481 ** | −0.652 ** | −0.312 ** | |||
* Significant at the <0.05 level; ** Significant at the <0.01 level.