| Literature DB >> 24086647 |
Zhi-Guo Li1, Guo-Shi Zhang, Yi Liu, Kai-Yuan Wan, Run-Hua Zhang, Fang Chen.
Abstract
Recent urban landscape vegetation surveys conducted in many cities in China identified numerous plant nutrient deficiencies, especially in newly developed cities. Soil nutrients and soil nutrient management in the cities of Hubei province have not received adequate attention to date. The aims of this study were to characterize the available nutrients of urban soils from nine cities in Hubei province, China, and to assess how soil nutrient status is related to land use type and topography. Soil nutrients were measured in 405 sites from 1,215 soil samples collected from four land use types (park, institutional [including government building grounds, municipal party grounds, university grounds, and garden city institutes], residential, and roadside verges) and three topographies (mountainous [142-425 m a.s.l], hilly [66-112 m a.s.l], and plain [26-30 m a.s.l]). Chemical analyses showed that urban soils in Hubei had high pH and lower soil organic matter, availableEntities:
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Year: 2013 PMID: 24086647 PMCID: PMC3785424 DOI: 10.1371/journal.pone.0075856
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Descriptions of the nine study cities [14].
| Site | Landforms | Elevation (m) | Average annual precipitation (mm) | Average annual temperature (°C) | Soil types | Population size (thousand) | City area (km2) | Soil sampling numbers |
|---|---|---|---|---|---|---|---|---|
| Shiyan | Mountain | 263 | 800 | 13.1-16 | Yellow brown soil | 310 | 62 | 42 |
| Enshi | Mountain | 425 | 1000-1200 | 13.4-16.3 | Yellow brown soil | 800 | 80 | 39 |
| Yichang | Mountain | 142 | 992 | 13.1-18 | Yellow brown soil | 557 | 92 | 45 |
| Jingmen | Hill | 112 | 949 | 16.1 | Paday soil | 680 | 50 | 39 |
| Suizhou | Hill | 66 | 865-1070 | 15.5 | Yellow brown soil | 650 | 43 | 39 |
| Xiangfan | Hill | 71 | 878 | 15.1-16.9 | Yellow brown soil | 2230 | 107 | 42 |
| Jingzhou | Plain | 30 | 1100-1300 | 15.9-16.6 | Yellow brown soil | 1140 | 66 | 42 |
| Wuhan | Plain | 27 | 1100 | 15.8-17.5 | Yellow brown soil | 5170 | 500 | 78 |
| Xiaogan | Plain | 26 | 1112 | 15.8 | Paday soil | 950 | 33 | 39 |
Characteristics of the four land use types.
| Land use type | Number of samples | Parent material | Vegetation | Management | Disturbance degree [ |
|---|---|---|---|---|---|
| Park | 87 | Natural substrates, small building rubble | Unmanaged and managed trees, shrubs, herbaceous | Irrigation, no fertilizer | Little disturbance |
| Institution | 131 | Transferred natural mixed substrates, building rubble, bricks, cement | Managed trees, shrubs, herbaceous | Irrigation, no fertilization, human trampling | Moderate disturbance |
| Residential | 98 | Transferred natural mixed substrates, building rubble, bricks, cement, domestic garbage | Managed trees, shrubs, herbaceous | Irrigation, no fertilizer, human trampling, pet feces, sewage | Heavy disturbance |
| Roadside | 95 | Transferred natural mixed substrates, building rubble, bricks, cement, domestic waste, plastics pitch | Managed trees, shrubs, herbaceous | Irrigation, no fertilizer, human trampling, mechanical compression | Heaviest disturbance |
Descriptive statistics of soil properties from the 0–20 cm layer in nine cities in Hubei province (n = 405).
| Soil properties | Minimum | Maximum | SE | CV (%) | Mean | Recommended range[ |
|---|---|---|---|---|---|---|
| pH | 4.9 | 8.76 | 0.55 | 6.96 | 7.88 | 4-6 |
| Organic matter, g kg-1 | 0.94 | 19.42 | 2.97 | 43.55 | 6.73 | >10 |
| N, mg kg-1 | 1.96 | 314.01 | 35.55 | 112.52 | 31.56 | 50-100 |
| P, mg kg-1 | 1.2 | 385.85 | 43.72 | 111.43 | 28.33 | 30-60 |
| K, mg kg-1 | 33.45 | 507.42 | 69.13 | 55.39 | 125.31 | 78-156 |
| Ca, mg kg-1 | 892 | 6048 | 916 | 34 | 2694 | 300-1000 |
| Mg, mg kg-1 | 26.25 | 830.1 | 139.16 | 57.26 | 244.35 | 100-500 |
| S, mg kg-1 | 1.93 | 146.31 | 23.87 | 74.74 | 31.92 | 24-40 |
| Fe, mg kg-1 | 5.03 | 149.74 | 21.21 | 64.37 | 32.94 | 20-30 |
| Cu, mg kg-1 | 0.43 | 23.65 | 2.82 | 73.34 | 3.87 | 3.0-4.0 |
| Mn, mg kg-1 | 1.71 | 146.44 | 20.38 | 84.82 | 23.9 | 6.0-15.0 |
| Zn, mg kg-1 | 0.91 | 43.06 | 5.63 | 88.49 | 6.38 | 3.0-6.0 |
| B, mg kg-1 | 0.01 | 5.33 | 0.88 | 101.8 | 0.86 | 0.6-1.00 |
According to Portch and Hunter [7] and Whitcomb [9].
Summary statistics of a two-way ANOVA looking at the effects of land use and topography types on surface soil properties.
| Main effects | df | pH | SOM | N | P | K | Ca | Mg | |||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| F | Sig. | F | Sig. | F | Sig. | F | Sig. | F | Sig. | F | Sig. | F | Sig. | ||
| Land use (A) | 3 | 3.86 | 0.01 | 0.68 | NS | 0.33 | NS | 3.84 | 0.01 | 1.08 | NS | 3.24 | 0.03 | 1.82 | NS |
| Topography (B) | 2 | 8.41 | < 0.01 | 10.25 | 0.01 | 18.34 | < 0.01 | 1.59 | NS | 4.11 | 0.01 | 4.44 | 0.01 | 5.19 | < 0.01 |
| A* B | 6 | 2.61 | 0.02 | 1.97 | NS | 1.35 | NS | 0.88 | NS | 1.84 | NS | 1.31 | NS | 1.68 | NS |
| df | S | Fe | Cu | Mn | Zn | B | |||||||||
| F | Sig. | F | Sig. | F | Sig. | F | Sig. | F | Sig. | F | Sig. | ||||
| Land use (A) | 3 | 4.13 | < 0.01 | 1.9 | NS | 4.07 | < 0.01 | 3.11 | 0.04 | 3.98 | 0.01 | 0.32 | NS | ||
| Topography (B) | 2 | 3.72 | 0.03 | 3.88 | 0.02 | 10.25 | < 0.01 | 6.19 | < 0.01 | 1.73 | NS | 23.35 | < 0.01 | ||
| A* B | 6 | 3.41 | < 0.01 | 1.72 | NS | 1.07 | NS | 1.65 | NS | 0.97 | NS | 0.46 | NS | ||
NS indicates not significance at p < 0.05.
Mean surface soil properties (0–20 cm) for land use types (park, n =87; institution, n =131; residential, n =92; roadside, n =95).
| Soil properties | Land use | ANOVA | |||
|---|---|---|---|---|---|
| Park | Institution | Residential | Roadside | ||
| pH | 7.70±0.1b | 7.81±0.1b | 8.15±0.1a | 7.93±0.1ab | 0.012 |
| Organic matter, g kg-1 | 0.65±0.03 | 0.64±0.03 | 0.67±0.06 | 0.69±0.04 | NS a |
| N, mg kg-1 | 23.57±3.62 | 25.73±3.14 | 29.15±6.87 | 33.13±4.42 | NS |
| P, mg kg-1 | 43.01±4.58a | 33.52±8.35ab | 27.17±3.82b | 35.33±5.37ab | 0.013 |
| K, mg kg-1 | 117±6.85 | 112±5.82 | 117±12.69 | 131±8.13 | NS |
| Ca, mg kg-1 | 2407±80b | 2394±68b | 2634±148ab | 2663±96a | 0.028 |
| Mg, mg kg-1 | 255±14 | 234±11 | 240±26 | 224±16 | NS |
| S, mg kg-1 | 30.87±2.53b | 25.03±2.10b | 26.04±4.77b | 37.23±3.02a | 0.001 |
| Fe, mg kg-1 | 35.11±2.26 | 32.73±1.86 | 28.36±4.13 | 35.12±2.66 | NS |
| Cu, mg kg-1 | 4.64±0.63ab | 3.56±0.57b | 4.82±1.27ab | 6.21±0.73a | 0.003 |
| Mn, mg kg-1 | 27.04±1.85a | 23.93±1.55ab | 20.11±3.46b | 27.08±2.13ab | 0.035 |
| Zn, mg kg-1 | 5.54±0.66b | 6.21±0.55ab | 6.47±1.12ab | 7.91±0.73a | 0.010 |
| B, mg kg-1 | 0.70±0.07 | 0.73±0.06 | 0.68±0.12 | 0.69±0.86 | NS |
The results are presented as mean ± SD. In a row, values with the same letters are not significantly different at 5% level based on Duncan’s multiple range tests. a NS, not significant at the α = 0.05 probability level.
Mean surface soil properties (0–20 cm) for topography types (hill, n =126; mountain, n =120; plain, n =159).
| Soil properties | Physiographic | ANOVA | ||
|---|---|---|---|---|
| Hill | Mountain | Plain | ||
| pH | 7.87±0.1ab | 7.95±0.01a | 7.72±0.01b | 0.001 |
| Organic matter, g kg-1 | 0.74±0.03a | 0.52±0.04c | 0.66±0.03b | 0.010 |
| N, mg kg-1 | 25.42±3.51b | 21.65±4.82b | 34.84±3.16a | 0.001 |
| P, mg kg-1 | 37.76±4.32 | 35.05±5.93 | 29.17±3.82 | NS a |
| K, mg kg-1 | 121.31±6.65a | 98.74±9.02b | 128.39±5.98a | 0.014 |
| Ca, mg kg-1 | 2327±78b | 2160±106b | 2839±69a | 0.011 |
| Mg, mg kg-1 | 218±14b | 178±19c | 295±12a | 0.005 |
| S, mg kg-1 | 25.06±2.53b | 26.93±3.49b | 35.44±2.25a | 0.027 |
| Fe, mg kg-1 | 28.46±2.11b | 31.45±2.92 b | 39.74±1.91a | 0.019 |
| Cu, mg kg-1 | 5.52±0.61a | 2.89±0.84b | 4.70±0.55a | <0.001 |
| Mn, mg kg-1 | 18.03±1.80b | 12.31±2.48c | 40.11±1.68a | 0.003 |
| Zn, mg kg-1 | 6.00±0.59 | 6.82±0.80 | 6.65±0.52 | NS |
| B, mg kg-1 | 0.95±0.08a | 0.69±0.08b | 0.48±0.05c | <0.001 |
The results are presented as mean ± SD. In a row, values with the same letters are not significantly different at 5% level based on Duncan’s multiple range tests. a NS, not significant at the α = 0.05 probability level.