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July 28, 2025Environmental Science & Technology14 citations

Biogeochemical Pathways of Phytate-P Utilization in Soil: Plant and Microbial Strategies

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CLChenjing LiuRHRan HanCHChunyan Hu

Key Points

  • Plant and microbial phytases are crucial for the efficient utilization of soil phytate as a phosphorus source.
  • Strategies like expressing phytase genes in roots and modifying soil microbe compositions can enhance phytate availability.
  • The interaction of phytate with soil minerals and organic matter limits its solubility and availability to plants.
  • Future innovations involve developing high-activity phytases and engineering microbial teams for better phosphorus mobilization.

Abstract

Phytate (salts of myo-inositol-1,2,3,4,5,6-hexakisphosphate) constitutes a large portion of the organic phosphorus in most soils, but its strong interactions with soil minerals and organic matter limit its availability to plants. Phytate can be used by plants only after it is desorbed from the soil matrix, with the inorganic P being released by phytases via cleavage of its phosphomonoester bonds. While plant phytases function primarily in its internal phytate remobilization, the role of microbial phytases in facilitating phytate-P utilization by plants remains poorly understood. This review focuses on phytase-producing plants and microbes and their uses in improving crop P acquisition from soil phytate. We discuss the behaviors of phytate and phytase in soils, especially their complex interactions with metal oxides, silicate minerals, and organic matter. Strategies to optimize soil phytase activity, including enzyme immobilization, site-directed mutagenesis, and rational protein design are also explored. Besides, we examine the mechanisms and hydrolysis pathways involved in phytase-mediated phytate hydrolysis, identifying situations where phytate utilization is limited by phytate solubility or phytase activity from an evolutionary perspective based on cultivation conditions and plant characteristics. Finally, we summarize strategies to increase plant utilization of soil phytate, including (1) amending soil with phytase-producing microbes, (2) expressing phytase gene in plant roots, (3) coupling phytase and organic acid exudation from plant roots, (4) intercropping phytase-producing plants with organic acid-secreting plants, and (5) incorporating phytase into plants with great organic acid production as cover crops. As these strategies are effective only in specific environments, future studies should focus on: (1) developing novel phytases with high activity and resistance to soil deactivation, (2) cultivating plants that effectively secrete phytase and mobilize soil phytate, and (3) engineering microbial consortia with stable and efficient phytate hydrolysis capabilities. Besides, integrated catalyst systems combining biological and chemical approaches also offer promising solutions for soil phytate hydrolysis. These strategies will exploit stable soil organic P by crop plants while simultaneously decreasing agricultural dependence on P fertilizer and reducing P loss to the environment.

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Cite This Study

Liu et al. (2025) studied this question.

synapsesocial.com/papers/689a093fe6551bb0af8cea8fhttps://doi.org/10.1021/acs.est.5c00724
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Organic Anion–Driven Solubilization of Precipitated and Sorbed Phytate Improves Hydrolysis by Phytases and Bioavailability to Nicotiana tabacum2012 · 46 citations
  2. 2Molecular and enzymatic characterization of acid phosphatase from venom of Scleroderma guani2017 · 3 citations
  3. 3Abiotic reactions of inositol phosphates in soil.2006 · 89 citations
  4. 4Overexpression of phyA and appA Genes Improves Soil Organic Phosphorus Utilisation and Seed Phytase Activity in Brassica napus2013 · 46 citations
  5. 5Unraveling the potential of bacterial phytases for sustainable management of phosphorous2023 · 14 citations