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March 17, 2026SHILAP Revista de lepidopterología0 citationsOpen Access

Biochemical thresholds to differentiate mineralizing and stabilizing organic waste amendments for soil carbon management

SRSirine RideneLKLotfi KhiariHBHaithem Bahri

Key Points

  • The aim is to identify organic amendments that enhance soil carbon retention and health while minimizing greenhouse gas emissions.
  • Assessed carbon stability of 104 organic waste materials using biochemical fractionation
  • Utilized a 91-day incubation protocol for organic amendments
  • Derived kinetic parameters through first-order kinetic modeling
  • Applied the Cate-Nelson partitioning method to test eight biochemical indicators for differentiation
  • Identified three key indicators with strong discriminatory power: lignin content, Biological Stability Index, and stability ratio
  • Critical intervals for effective amendments ranged from 27.3 to 32.8 g lignin per 100 g dry matter and 0.77 to 0.99 for the stability index
  • Amendments exceeding critical values showed high residual carbon content and low mineralization rates, indicating enhanced stability

Abstract

Introduction Identifying organic amendments that can retain stable organic carbon is essential for improving soil health and mitigating greenhouse gas emissions. Methods This study assessed the carbon stability of 104 fertilizing residual materials (including manure) using a biochemical fractionation method (Van Soest) and a standardized 91-day incubation protocol. Two kinetic parameters, residual organic carbon and the mineralization rate constant, were derived from first-order kinetic modeling. Eight biochemical indicators were tested for their diagnostic performance using the Cate-Nelson partitioning method to distinguish between amendments with predominantly mineralizing or stabilizing behavior. Results Three indicators showed strong discriminatory power and consistent performance: lignin content, the Biological Stability Index, and the stability ratio LIC SOL + HEM + CEL . For each, a critical interval was identified beyond which amendments shifted toward carbon stabilization. These intervals ranged from 27.3 to 32.8 g lignin per 100 g dry matter, 0.77 to 0.99 g stability index per gram, and 0.38 to 0.49 for the lignin-to-polysaccharide ratio. Amendments exceeding these ranges were associated with high residual carbon content (up to 71.8 g per 100 g) and low mineralization rates (as low as 0.067 day -1 ), indicating enhanced carbon persistence. Discussion This work led to the development of a robust diagnostic framework for classifying and recommending organic amendments based on their potential for carbon retention. The approach offers practical value for selecting materials suited to long-term soil improvement and climate mitigation strategies. Further validation under field conditions is recommended to support the implementation of this approach in sustainable agricultural systems.

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Cite This Study

Ridene et al. (2026) studied this question.

synapsesocial.com/papers/69b8ef12deb47d591b8c515dhttps://doi.org/10.3389/fsoil.2026.1754334
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