Chin J Plant Ecol ›› 2026, Vol. 50 ›› Issue (3): 685-699.DOI: 10.17521/cjpe.2025.0117 cstr: 32100.14.cjpe.2025.0117
• Research Articles • Previous Articles Next Articles
JIANG Kang-Wei1, LÜ Cheng2, WANG Ya-Fei3, LI Hong1, ZHANG Zhi-Qing2, WANG Yu2, ZHANG Qing-Qing2,*(
), Tuerxunnayi REYIMU2
Received:2025-04-01
Accepted:2025-07-10
Online:2026-03-20
Published:2026-04-07
Contact:
ZHANG Qing-Qing
Supported by:JIANG Kang-Wei, LÜ Cheng, WANG Ya-Fei, LI Hong, ZHANG Zhi-Qing, WANG Yu, ZHANG Qing-Qing, Tuerxunnayi REYIMU. Effects of soil arbuscular mycorrhizal fungal communities on soil multifunctionality under grazing disturbance[J]. Chin J Plant Ecol, 2026, 50(3): 685-699.
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| 放牧强度 Grazing intensity | 植物优势种 Dominant plant species | 高度 Height (cm) | 盖度 Coverage (%) | 地上生物量 Aboveground biomass (g·m-2) |
|---|---|---|---|---|
| 对照 No grazing | 针茅、羊茅、草地早熟禾 Carex stenocarpa, Festuca ovina, Poa pratensis | 26.18 ± 3.63 | 87.50 ± 2.21 | 265.29 ± 60.24 |
| 轻度放牧 Light grazing | 细果薹草、针茅、无芒雀麦 Carex stenocarpa, Stipa capillata, Bromus inermis | 22.68 ± 1.77 | 93.50 ± 2.73 | 175.35 ± 19.29 |
| 重度放牧 Heavy grazing | 醉马草、细果薹草、平车前 Achnatherum inebrians, Carex stenocarpa, Plantago depressa | 13.21 ± 2.49 | 59.16 ± 3.67 | 123.31 ± 33.21 |
Table 1 Plant community composition in different grazing treatments in the mountain meadow steppes on the northern slope at middle section of the Tianshan Mountains (mean ± SE)
| 放牧强度 Grazing intensity | 植物优势种 Dominant plant species | 高度 Height (cm) | 盖度 Coverage (%) | 地上生物量 Aboveground biomass (g·m-2) |
|---|---|---|---|---|
| 对照 No grazing | 针茅、羊茅、草地早熟禾 Carex stenocarpa, Festuca ovina, Poa pratensis | 26.18 ± 3.63 | 87.50 ± 2.21 | 265.29 ± 60.24 |
| 轻度放牧 Light grazing | 细果薹草、针茅、无芒雀麦 Carex stenocarpa, Stipa capillata, Bromus inermis | 22.68 ± 1.77 | 93.50 ± 2.73 | 175.35 ± 19.29 |
| 重度放牧 Heavy grazing | 醉马草、细果薹草、平车前 Achnatherum inebrians, Carex stenocarpa, Plantago depressa | 13.21 ± 2.49 | 59.16 ± 3.67 | 123.31 ± 33.21 |
Fig. 1 Location of ungrazed, lightly grazed and heavily grazed plots in the mountain meadow steppes on the northern slope at middle section of the Tianshan Mountains. CK, no grazing; HG, heavy grazing; LG, light grazing.
Fig. 2 Changes in operational taxonomic unit (OTU) rarefaction curve (A), coverage index (B) and number (C) (mean ± SE) in different grazing treatments in the mountain meadow steppes on the northern slope at middle section of the Tianshan Mountains. CK, no grazing; HG, heavy grazing; LG, light grazing. Different lowercase letters indicate significant differences among different grazing treatments (p < 0.05).
Fig. 3 Changes in alpha diversity (A), beta diversity (B), composition (C), and structure (D) of arbuscular mycorrhizal fungal communities in different grazing treatments. CK, no grazing; HG, heavy grazing; LG, light grazing. Similarity, 1 - Total β; Total β, total β diversity; Turnover β, turnover β diversity (replacement); Nestedness β, nestedness β diversity (richness difference). ADONIS, permutational multivariate analysis of variance; ANOSIM, similarity analysis; NMDS1/NMDS2, non-metric multidimensional scaling analysis axis 1/axis 2; Stress, stress coefficient. Different lowercase letters indicate significant differences among different grazing treatments (p < 0.05).
Fig. 4 Changes in the co-occurrence network of arbuscular mycorrhizal fungal communities in different grazing treatments. A, Co-occurrence network characteristics. B, Key species based on co-occurrence network. Dashed lines indicate that nodes with Zi ≥ 2.5 or Pi ≥ 0.62 are identified as key species. C, Co-occurrence network topological properties. D, Positive cohesion. E, Negative cohesion. F, Co-occurrence network complexity. G, Stability. H, Relationship between network complexity and stability. CK, no grazing; HG, heavy grazing; LG, light grazing. Different lowercase letters indicate significant differences among different grazing treatments (p < 0.05).
Fig. 5 Arbuscular mycorrhizal fungal communities drive soil multifunctionality in different grazing treatments. A, Soil multifunctionality. B, Driving factors of soil multifunctionality based on random forest. C, Relationship between soil multifunctionality and the diversity of arbuscular mycorrhizal fungal communities. D, Relationship between soil multifunctionality and the complexity and stability of the co-occurrence network of arbuscular mycorrhizal fungal communities. E, Influencing factors based on the multifunctionality of soils in random forests. F, Driving process of soil multifunctionality based on structural equation model. G, Effect value of driving factors on soil multifunctionality based on structural equation model. AB, aboveground biomass; AP, alkaline phosphatase activity; Av-K, available potassium content; Av-N, available nitrogen content; Av-P, available phosphorus content; BB, belowground biomass; BD, soil density; BG, β-1,4-glucosidase activity; CBH, β-α-cellobiohydrolase activity; Coverage, coverage of plant community; Density, plant density; EC, electrical conductivity; Height, height of plant community; LAP, leucine aminopeptidase activity; MBC, microbial biomass carbon content; MBN, microbial biomass nitrogen content; MBP, microbial biomass phosphorus content; NAG, β-1,4-N-acetylglucosaminidase activity; Nestedness β, nested β diversity; pH, soil pH; SOC, soil organic carbon content; SW, soil water content; TK, total potassium content; TN, total nitrogen; Total β, total β diversity; TP, total phosphorus content; Turnover β, turnover β diversity. CK, no grazing; HG, heavy grazing; LG, light grazing. Different lowercase letters indicate significant differences among different grazing treatments (p < 0.05).
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