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May 7, 2026Industrial Crops and Products0 citationsOpen Access

Degradation of soil aggregate stability is associated with phosphorus limitation in successive eucalyptus plantations

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YYYu YanYCYuhong CuiHZHan Zhang

Key Points

  • This study investigates how phosphorus limitation affects soil aggregate stability and microbial dynamics in Eucalyptus plantations.
  • Chronosequence analysis of first- to third-generation Eucalyptus plantations in subtropical China.
  • Assessment of soil aggregate stability, phosphorus fractionation, and microbial functional guilds.
  • Path analysis to evaluate relationships between soil properties and phosphorus availability.
  • Soil aggregate stability declined significantly in successive Eucalyptus plantings, correlating with increased soil acidification.
  • Bioavailable phosphorus decreased by up to 20.6% while recalcitrant phosphorus pools rose by 17.84%.
  • Escalating soil acidification and Al/Fe activation negatively impacted phosphorus availability, with path coefficients of β = −0.465.

Abstract

Intensively managed Eucalyptus plantations are critical timber supply, yet their long-term sustainability is threatened by declining productivity linked to phosphorus (P) limitation. This study aimed to reveal and quantify the mechanisms underlying this process using a chronosequence of first- to third-generation plantations in subtropical China, integrating analyses of soil aggregate stability, sequential P fractionation, active Al/Fe oxides, and microbial functional guild dynamics. We found that successive planting was associated with degradation of aggregate stability and severe soil acidification. This physicochemical deterioration coincided with shifts in P-cycling-related microbial indicators, including declines in arbuscular mycorrhizal fungi, phosphate-solubilizing bacteria, and acid phosphatase activity. Concurrently, P speciation shifted systematically, with the contribution of bioavailable P pools decreasing by up to 20.6% while recalcitrant pools increased by 17.84%. Path analysis revealed that escalating chemical stress (soil acidification and Al/Fe activation) showed the strongest negative association with P availability (path coefficient β = −0.465), while aggregate stability showed the strongest positive association (β = 0.384). Generation-specific models indicated that the P transformation network shifted from a complex, multi-pathway configuration in the first generation to a constrained system with fewer supportive linkages by the third generation. We conclude that the decline in P availability is associated with coupled physical, chemical, and biological changes, wherein physicochemical deterioration coincides with reduced biological P-mobilizing capacity. These findings provide a process-based framework for diagnosing soil degradation and developing integrated management strategies for intensively managed plantations.

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Cite This Study

Yan et al. (2026) studied this question.

synapsesocial.com/papers/69fc2b608b49bacb8b3478a5https://doi.org/10.1016/j.indcrop.2026.123376
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