Chin J Plant Ecol ›› 2026, Vol. 50 ›› Issue (6): 1316-1330.DOI: 10.17521/cjpe.2025.0085 cstr: 32100.14.cjpe.2025.0085
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YUAN Shu-Ya1, HE Jing1,2,*(
), GUO Jia-Qing1, SU De-Rong1,2
Received:2025-03-07
Accepted:2025-10-17
Online:2026-06-28
Published:2026-08-26
Contact:
HE Jing
Supported by:YUAN Shu-Ya, HE Jing, GUO Jia-Qing, SU De-Rong. Effects of grassland utilization and altered precipitation intervals on soil inorganic phosphorus fractions in a temperate meadow steppe[J]. Chin J Plant Ecol, 2026, 50(6): 1316-1330.
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URL: https://www.plant-ecology.com/EN/10.17521/cjpe.2025.0085
Fig. 1 Layout diagram of experimental plots for experiments on different grassland utilization methods and control of precipitation time intervals. A two-factor random complete block design was adopted. The two fixed factors were the grassland utilization methods (enclosure, mowing, grazing) and the precipitation time intervals (normal precipitation interval (CK), precipitation interval of 10 days (10 d), precipitation interval of 15 days (15 d)). There were a total of 9 treatment combinations, and each treatment was replicated 3 times.
| pH | SOC (g·kg-1) | TP (mg·kg-1) | AP (mg·kg-1) | MBC (mg·kg-1) | MBN (mg·kg-1) | MBP (mg·kg-1) | ||
|---|---|---|---|---|---|---|---|---|
| CK | M | 7.23 ± 0.35a | 13.52 ± 3.21a | 129.33 ± 21.89a | 6.04 ± 2.03a | 284.73 ±70.70a | 48.85 ± 9.75a | 14.18 ± 9.95a |
| E | 7.20 ± 0.14a | 12.35 ± 3.11a | 130.53 ± 14.84a | 3.64 ± 0.98b | 425.63 ± 285.00a | 81.84 ± 62.86a | 12.82 ± 8.87a | |
| G | 7.24 ± 0.25a | 12.88 ± 5.14a | 148.47 ± 40.30a | 5.81 ± 2.30a | 390.91 ± 26.16a | 67.36 ± 18.96a | 14.49 ± 7.40a | |
| 10 d | M | 7.09 ± 0.14a | 11.09 ± 2.91a | 107.81 ± 24.04b | 6.31 ± 3.76a | 501.60 ± 288.84a | 87.30 ± 69.46a | 9.71 ± 8.77b |
| E | 7.11 ± 0.12a | 13.73 ± 5.64a | 147.90 ± 26.58a | 7.92 ± 3.46a | 390.96 ± 187.04a | 76.80 ± 16.49a | 10.11 ± 8.88b | |
| G | 6.92 ± 0.26b | 14.58 ± 4.86a | 125.69 ± 20.97ab | 5.44 ± 2.87a | 505.84 ± 176.42a | 88.20 ± 28.96a | 45.21 ± 34.51a | |
| 15 d | M | 7.06 ± 0.20a | 15.63 ± 4.63a | 129.72 ± 20.33a | 6.60 ± 10.10a | 513.24 ± 245.32a | 82.25 ± 42.63ab | 17.44 ± 12.83a |
| E | 7.09 ± 0.17a | 18.45 ± 3.05a | 143.38 ± 31.78a | 6.77 ± 2.98a | 722.20 ± 219.73a | 121.69 ± 31.95a | 12.90 ± 5.05a | |
| G | 7.20 ± 0.33a | 14.52 ± 4.90a | 120.28 ± 26.03a | 7.30 ± 3.90a | 602.79 ± 146.47a | 73.92 ± 46.55b | 17.95 ± 16.43a |
Table 1 Soil physicochemical properties at different precipitation intervals and different grassland utilization methods (mean ± SE)
| pH | SOC (g·kg-1) | TP (mg·kg-1) | AP (mg·kg-1) | MBC (mg·kg-1) | MBN (mg·kg-1) | MBP (mg·kg-1) | ||
|---|---|---|---|---|---|---|---|---|
| CK | M | 7.23 ± 0.35a | 13.52 ± 3.21a | 129.33 ± 21.89a | 6.04 ± 2.03a | 284.73 ±70.70a | 48.85 ± 9.75a | 14.18 ± 9.95a |
| E | 7.20 ± 0.14a | 12.35 ± 3.11a | 130.53 ± 14.84a | 3.64 ± 0.98b | 425.63 ± 285.00a | 81.84 ± 62.86a | 12.82 ± 8.87a | |
| G | 7.24 ± 0.25a | 12.88 ± 5.14a | 148.47 ± 40.30a | 5.81 ± 2.30a | 390.91 ± 26.16a | 67.36 ± 18.96a | 14.49 ± 7.40a | |
| 10 d | M | 7.09 ± 0.14a | 11.09 ± 2.91a | 107.81 ± 24.04b | 6.31 ± 3.76a | 501.60 ± 288.84a | 87.30 ± 69.46a | 9.71 ± 8.77b |
| E | 7.11 ± 0.12a | 13.73 ± 5.64a | 147.90 ± 26.58a | 7.92 ± 3.46a | 390.96 ± 187.04a | 76.80 ± 16.49a | 10.11 ± 8.88b | |
| G | 6.92 ± 0.26b | 14.58 ± 4.86a | 125.69 ± 20.97ab | 5.44 ± 2.87a | 505.84 ± 176.42a | 88.20 ± 28.96a | 45.21 ± 34.51a | |
| 15 d | M | 7.06 ± 0.20a | 15.63 ± 4.63a | 129.72 ± 20.33a | 6.60 ± 10.10a | 513.24 ± 245.32a | 82.25 ± 42.63ab | 17.44 ± 12.83a |
| E | 7.09 ± 0.17a | 18.45 ± 3.05a | 143.38 ± 31.78a | 6.77 ± 2.98a | 722.20 ± 219.73a | 121.69 ± 31.95a | 12.90 ± 5.05a | |
| G | 7.20 ± 0.33a | 14.52 ± 4.90a | 120.28 ± 26.03a | 7.30 ± 3.90a | 602.79 ± 146.47a | 73.92 ± 46.55b | 17.95 ± 16.43a |
| pH | SOC | TP | AP | MBC | MBN | MBP | ||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| F | p | F | p | F | p | F | p | F | p | F | p | F | p | |
| 草地利用方式 Grassland utilization method | 0.06 | 0.94 | 0.76 | 0.47 | 3.315 | 0.04 | 0.017 | 0.98 | 1.21 | 0.30 | 1.919 | 0.15 | 6.840 | <0.01** |
| 降水时间间隔 Precipitation interval | 4.58 | 0.01* | 4.97 | <0.01** | 0.800 | 0.45 | 1.198 | 0.31 | 10.13 | <0.001*** | 2.923 | 0.06 | 1.944 | 0.15 |
| 草地利用方式×降水时间间隔 Utilization method × precipitation interval | 1.56 | 0.20 | 1.53 | 0.20 | 2.645 | 0.04* | 0.815 | 0.52 | 1.67 | 0.17 | 1.586 | 0.19 | 5.002 | <0.01*** |
Table 2 Two-factor ANOVA of soil physicochemical properties at different precipitation intervals and different grassland utilization methods
| pH | SOC | TP | AP | MBC | MBN | MBP | ||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| F | p | F | p | F | p | F | p | F | p | F | p | F | p | |
| 草地利用方式 Grassland utilization method | 0.06 | 0.94 | 0.76 | 0.47 | 3.315 | 0.04 | 0.017 | 0.98 | 1.21 | 0.30 | 1.919 | 0.15 | 6.840 | <0.01** |
| 降水时间间隔 Precipitation interval | 4.58 | 0.01* | 4.97 | <0.01** | 0.800 | 0.45 | 1.198 | 0.31 | 10.13 | <0.001*** | 2.923 | 0.06 | 1.944 | 0.15 |
| 草地利用方式×降水时间间隔 Utilization method × precipitation interval | 1.56 | 0.20 | 1.53 | 0.20 | 2.645 | 0.04* | 0.815 | 0.52 | 1.67 | 0.17 | 1.586 | 0.19 | 5.002 | <0.01*** |
Fig. 2 Relative abundances of bacterial (A) and fungal (B) communities at the phylum level at different precipitation intervals under different grassland utilization methods. CK-M, mowing at regular precipitation intervals; CK-E, enclosure at regular precipitation intervals; CK-G, grazing at regular precipitation intervals; 10 d-M, mowing 10 days apart from precipitation; 10 d-E, enclosure 10 days apart from precipitation; 10 d-G, grazing 10 days apart from precipitation; 15 d-M, mowing 15 days apart from precipitation; 15 d-E, enclosure 15 days apart from precipitation; 15 d-G, grazing 15 days apart from precipitation.
| Al-P (mg·kg-1) | Fe-P (mg·kg-1) | O-P (mg·kg-1) | Ca-P (mg·kg-1) | ||
|---|---|---|---|---|---|
| CK | M | 4.04 ± 1.60a | 8.96 ± 1.32b | 1.26 ± 0.23a | 17.29 ± 2.14b |
| E | 3.96 ± 1.11a | 13.89 ± 4.01a | 1.52 ± 0.51a | 22.83 ± 3.54a | |
| G | 3.96 ± 1.11a | 13.75 ± 4.00a | 1.63 ± 0.30a | 17.85 ± 0.82b | |
| 10 d | M | 2.86 ± 0.32b | 12.09 ± 2.45a | 1.30 ± 0.28b | 17.09 ± 1.24b |
| E | 6.09 ± 0.87a | 13.86 ± 5.16a | 1.79 ± 0.36a | 19.82 ± 1.94a | |
| G | 3.23 ± 0.35b | 11.39 ± 3.80a | 1.50 ± 0.30ab | 16.25 ± 2.18b | |
| 15 d | M | 3.69 ± 1.72ab | 10.12 ± 2.33b | 1.69 ± 0.29a | 18.41 ± 1.25a |
| E | 5.01 ± 2.04a | 13.11 ± 3.10a | 1.97 ± 0.59a | 19.01 ± 0.56a | |
| G | 2.89 ± 0.29b | 8.78 ± 1.84b | 1.30 ± 0.82b | 18.05 ± 3.81a |
Table 3 Comparison of inorganic soil inorganic phosphorus (Pi) fractions concentrations at different precipitation intervals and different grassland utilization methods (mean ± SE)
| Al-P (mg·kg-1) | Fe-P (mg·kg-1) | O-P (mg·kg-1) | Ca-P (mg·kg-1) | ||
|---|---|---|---|---|---|
| CK | M | 4.04 ± 1.60a | 8.96 ± 1.32b | 1.26 ± 0.23a | 17.29 ± 2.14b |
| E | 3.96 ± 1.11a | 13.89 ± 4.01a | 1.52 ± 0.51a | 22.83 ± 3.54a | |
| G | 3.96 ± 1.11a | 13.75 ± 4.00a | 1.63 ± 0.30a | 17.85 ± 0.82b | |
| 10 d | M | 2.86 ± 0.32b | 12.09 ± 2.45a | 1.30 ± 0.28b | 17.09 ± 1.24b |
| E | 6.09 ± 0.87a | 13.86 ± 5.16a | 1.79 ± 0.36a | 19.82 ± 1.94a | |
| G | 3.23 ± 0.35b | 11.39 ± 3.80a | 1.50 ± 0.30ab | 16.25 ± 2.18b | |
| 15 d | M | 3.69 ± 1.72ab | 10.12 ± 2.33b | 1.69 ± 0.29a | 18.41 ± 1.25a |
| E | 5.01 ± 2.04a | 13.11 ± 3.10a | 1.97 ± 0.59a | 19.01 ± 0.56a | |
| G | 2.89 ± 0.29b | 8.78 ± 1.84b | 1.30 ± 0.82b | 18.05 ± 3.81a |
| Al-P | Fe-P | O-P | Ca-P | |||||
|---|---|---|---|---|---|---|---|---|
| F | p | F | p | F | p | F | p | |
| 草地利用方式 Grassland utilization methods | 15.35 | <0.001*** | 6.78 | <0.01** | 6.83 | <0.01** | 17.15 | <0.001*** |
| 降水时间间隔 Precipitation interval | 0.18 | 0.83 | 2.28 | 0.11 | 1.80 | 0.17 | 3.53 | 0.04* |
| 草地利用方式×降水时间间隔 Utilization methods × precipitation interval | 5.47 | <0.01** | 2.49 | 0.05 | 3.72 | <0.01** | 3.28 | 0.02* |
Table 4 Two-factor analysis results of soil inorganic phosphorus (Pi) fractions concentrations at different precipitation intervals under different grassland utilization methods
| Al-P | Fe-P | O-P | Ca-P | |||||
|---|---|---|---|---|---|---|---|---|
| F | p | F | p | F | p | F | p | |
| 草地利用方式 Grassland utilization methods | 15.35 | <0.001*** | 6.78 | <0.01** | 6.83 | <0.01** | 17.15 | <0.001*** |
| 降水时间间隔 Precipitation interval | 0.18 | 0.83 | 2.28 | 0.11 | 1.80 | 0.17 | 3.53 | 0.04* |
| 草地利用方式×降水时间间隔 Utilization methods × precipitation interval | 5.47 | <0.01** | 2.49 | 0.05 | 3.72 | <0.01** | 3.28 | 0.02* |
Fig. 3 Percentage of inorganic phosphorus content (Pi) fractions in total phosphorus content (TP). CK-M, mowing at regular precipitation intervals; CK-E, enclosure at regular precipitation intervals; CK-G, grazing at regular precipitation intervals; 10 d-M, mowing 10 days apart from precipitation; 10 d-E, enclosure 10 days apart from precipitation; 10 d-G, grazing 10 days apart from precipitation; 15 d-M, mowing 15 days apart from precipitation; 15 d-E, enclosure 15 days apart from precipitation; 15 d-G, grazing 15 days apart from precipitation. Al-P, the content of aluminum-bound phosphorus; Fe-P,the contents of ferrum-bound phosphorus; O-P, the content of occluded phosphate; Ca-P, the content of calcium-bound phosphorus.
Fig. 4 Correlation analysis of inorganic phosphorus (Pi) fractions in different soils and related soil properties. In the Pearson correlation analysis (A), red indicates a positive correlation, and blue indicates a negative correlation. The redundancy analysis (RDA) (B) takes pH, SOC, TP, AP, MBC, MBN, and MBP contents as environmental factors, and the four inorganic phosphorus components (Al-P, Fe-P, O-P, and Ca-P) contents as the explained variables. CK-M, mowing at regular precipitation intervals; CK-E, enclosure at regular precipitation intervals; CK-G, grazing at regular precipitation intervals; 10 d-M, mowing 10 days apart from precipitation; 10 d-E, enclosure 10 days apart from precipitation; 10 d-G, grazing 10 days apart from precipitation; 15 d-M, mowing 15 days apart from precipitation; 15 d-E, enclosure 15 days apart from precipitation; 15 d-G, grazing 15 days apart from precipitation; AP, available phosphorus content in soil; MBC, microbial biomass carbon in soil; MBN, microbial biomass nitrogen in soil; MBP, microbial biomass phosphorus in soil; SOC, soil organic carbon content; TP, total phosphorus content in soil; Al-P, the content of aluminum-bound phosphorus; Fe-P,the contents of ferrum-bound phosphorus; O-P, the content of occluded phosphate; Ca-P, the content of calcium-bound phosphorus. *, p < 0.05; **, p < 0.01; ***, p < 0.001.
Fig. 5 Effects of precipitation interval and utilization pattern on soil inorganic phosphorus (Pi) fractions were investigated using Partial least squares path modeling (PLS-PM). The numbers on the arrows are the effect values of the relationships, with the red line indicating a significant positive relationship and the gray color indicating an insignificant relationship. GUM, grassland utilization methods; MB, microbial biomass carbon, nitrogen and phosphorus content; PI, precipitation intervals; Pi_fraction, soil inorganic phosphorus component; PU, precipitation intervals and grassland utilization methods; SOC, soil organic carbon content; TP, total phosphorus content in soil. GOF, goodness of fit. **, p < 0.01; ***, p < 0.001.
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