Related Experiment Video
Updated: Aug 28, 2026

JenaTron - An Experimental Approach to Study the Effects of Plant History and Soil History on Grassland Ecosystem Functioning
Published on: March 21, 2025
Interactive Effects of Tillage and Soil Depth on Soil Aggregate Stability in Relation to Soil Properties and
Chunjuan Wang1, Xinyi Bi2, Yue Yang2
1Teaching Affairs Office of Beihua University, Institute of Higher Education, Beihua University, Jilin 132013, China.
Abstract:
Tillage practices influence soil structural stability by modifying the soil physicochemical environment and biological processes. However, the relationships among tillage, soil depth, Glomalin-related soil proteins (GRSP), and soil aggregate stability remain insufficiently understood, particularly in the Mollisols of Northeast China. A long-term field experiment was conducted to investigate the effects of three tillage practices, including no tillage (NT), deep tillage (DT), and rotary tillage (RT), across four soil depths (0-10, 10-20, 20-30, and 30-40 cm). Soil physicochemical properties, glomalin-related soil proteins (total glomalin, TTG; easily extractable glomalin, EEG), and soil aggregate stability indices, including mean weight diameter (MWD), geometric mean diameter (GMD), and the percentage of water-stable aggregates (R0.25), were determined. Pearson correlation analysis and structural equation modeling (SEM) were employed to elucidate the relationships among soil physicochemical properties, GRSP, and aggregate stability. Tillage practices significantly altered soil physicochemical properties, particularly soil moisture and electrical conductivity, with responses varying across soil depths. Deep tillage generally enhanced EEG accumulation and improved aggregate stability compared with rotary tillage, whereas TTG exhibited relatively smaller variations among treatments. Soil moisture was positively correlated with GRSP and aggregate stability, whereas electrical conductivity showed predominantly negative relationships with biological indicators. Correlation analysis showed significant associations among soil physicochemical properties, GRSP, and aggregate stability. In the SEM, soil physicochemical properties were positively associated with both GRSP (standardized path coefficient = 0.205, p < 0.05) and aggregate stability (standardized path coefficient = 0.416, p < 0.05), whereas the direct pathway from GRSP to aggregate stability was not statistically significant. Tillage and soil depth were significantly associated with variation in soil physicochemical properties and GRSP, while soil depth also showed a significant direct association with aggregate stability. These results indicate that the final SEM supported a stronger statistical association of soil physicochemical properties with aggregate stability than of GRSP with aggregate stability. Although GRSP was correlated with aggregate stability in the correlation analysis, its independent contribution to aggregate stability was not supported by the final SEM. These results provide new insights into the processes associated with soil structural stabilization and offer a scientific basis for optimizing tillage management to improve soil quality and promote sustainable agricultural development in the black soil region of Northeast China.
More Related Videos
Related Concept Videos
Unsoundness of Aggregate due to Volume Change
Soil Microbial Ecology
Porosity and Absorption of Aggregate
When all pores in an aggregate are filled with water, the aggregate is considered saturated and surface-dry. If left in dry air, water will evaporate until the aggregate...
The Soil Ecosystem
Deleterious Substances in Aggregate
Another type of impurity is clay and fine material that...
Bonding and Strength of Aggregate

