Chin J Plant Ecol ›› 2025, Vol. 49 ›› Issue (9): 1374-1387.DOI: 10.17521/cjpe.2024.0443 cstr: 32100.14.cjpe.2024.0443
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CHANG Peng-Fei1,2,3(
)(
), LI Ping1,2, Nairsag 1,2,3, WANG Jing1,2,3,4, WANG Zhen-Hua1,2,3,5, YANG Sen1,2,3,6, JIA Zhou1,2,3,7, YANG Lu1,2,3, LIU Ling-Li1,2,3, DENG Mei-Feng1,2,*
Received:2024-12-06
Accepted:2025-04-16
Online:2025-09-20
Published:2025-04-17
Contact:
CHANG Peng-Fei, DENG Mei-Feng
Supported by:CHANG Peng-Fei, LI Ping, Nairsag , WANG Jing, WANG Zhen-Hua, YANG Sen, JIA Zhou, YANG Lu, LIU Ling-Li, DENG Mei-Feng. Contributions of soil organic carbon and inorganic carbon stocks to total soil carbon stock and their driving factors across different types in Nei Mongol temperate grasslands[J]. Chin J Plant Ecol, 2025, 49(9): 1374-1387.
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URL: https://www.plant-ecology.com/EN/10.17521/cjpe.2024.0443
Fig. 1 Impacts of grassland types and climatic variables on soil carbon stocks. SIC, soil inorganic carbon; SOC, soil organic carbon. A, Impacts of grassland types on total soil carbon and its organic and inorganic component stocks (mean ± SE). B, C, Impacts of mean annual precipitation (MAP) on soil organic and inorganic carbon stocks in different grassland types. D, E, Impacts of mean annual air temperatures (MAT) on soil organic and inorganic carbon stocks in different grassland types. Different uppercase letters in A indicate that significant differences in total soil carbon stock between grassland types (p < 0.05); different lowercase letters indicate significant differences between grassland types within the SOC or SIC (p < 0.05). Solid lines in B-E represent significant relationships (p < 0.05).
Fig. 2 Changes of the soil carbon content along the soil profile across different grassland types (mean ± SE). The significant sign in A-C indicate that there are significant differences in soil carbon content between typical steppe and meadow at different soil depths (·, p < 0.1; *, p < 0.05; **, p < 0.01; ***, p < 0.001).
Fig. 3 Impacts of soil (A, B), plant (C-F), and microbial (G-H) properties on total soil carbon stocks across different grassland types. Solid lines represent significant relationships (p < 0.05). C:N, carbon to nitrogen ratio; F:B, fungi to bacteria ratio.
Fig. 4 Relative influence of different factors on total soil carbon stocks in typical steppe and meadow steppe. Al, aluminum; C:N, carbon to nitrogen ratio; Ca, calcium; DIN, dissolved inorganic nitrogen; F:B, fungi to bacteria ratio; Fe, iron; MAP, mean annual precipitation; MAT, mean annual air temperature; MBC, microbial biomass carbon content; Mn, manganese; P, phosphorus.
Fig. 5 Direct and indirect drivers of soil carbon stocks in the grassland. Grassland types, climate, plant, soil, and microbial properties were divided into composite variables. Numbers at arrows are standardized path coefficients. Arrow thickness represents the strength of the relationships (*, p < 0.05; **, p < 0.01; ***, p < 0.001). Red arrows indicate significant positive relationships and black arrows indicate significant negative relationships (p < 0.05). Dashed arrows represent nonsignificant relationships (p ≥ 0.5). C:N, carbon to nitrogen ratio; F:B, fungi to bacteria ratio; MAP, mean annual precipitation; MAT, mean annual air temperature; MBC, microbial biomass carbon content. AIC, Akaike information criterion; RMSE, root mean square error.
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