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February 14, 2026Foods7 citationsOpen Access

Phenolics Distribution in Rice and Their Macromolecular Interactions: A Matrix-Centric Perspective

HAHalah AalimMAMuhammad ArslanHAHamza M. A. Abaker

Key Points

  • The aim is to synthesize knowledge on the distribution of phenolic compounds in rice and their interactions with macromolecules.
  • Conducted a comprehensive review on phenolic compounds in rice across various genotypes.
  • Examined interactions within binary and ternary systems as well as whole-matrix perspectives.
  • Integrated evidence regarding structural, functional, and nutritional implications.
  • Identified and quantified 76 polyphenols in rice, including phenolic acids, flavonoids, and anthocyanins.
  • Established that phenolic binding is primarily driven by non-covalent interactions.
  • Demonstrated that matrix-mediated interactions influence the stability and bioaccessibility of phenolics.

Abstract

Rice is a globally indispensable staple food and a major dietary source of phenolic compounds, whose nutritional and functional properties are influenced by their interactions within the rice matrix. This review provides a comprehensive synthesis of current knowledge on rice phenolics distribution and their macromolecule interactions, integrating evidence from binary, and ternary systems, to whole-matrix perspectives and examines their structural, functional, and nutritional consequences. Across rice genotypes, 76 polyphenols have been identified and quantified, encompassing phenolic acids, flavonoids, proanthocyanidins, and anthocyanins. Their abundance, chemical structure, and localization significantly dictated by grain anatomy, pigmentation, and processing. Mechanistically, phenolic binding is dominated by non-covalent interactions, including hydrogen bonding, hydrophobic interactions, electrostatic forces, CH–π interactions, and π–π stacking, facilitating multiscale structural reorganizations through amylose inclusion complexation, protein conformational rearrangements, lipid-assisted V-type crystallization, and dietary fiber binding. In ternary systems, competitive and synergistic interactions further modulate binding strength and structural organization. Functionally, these matrix-mediated interactions regulate stability and bioaccessibility of phenolic, macronutrient digestibility, glycemic response, and key technofunctional properties. By integrating compositional, mechanistic, and functional evidence, this review establishes a robust framework for understanding rice matrix–phenolic interactions and supports the rational design of phenolic-enriched, low-glycemic rice products with targeted nutritional benefits.

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Cite This Study

Aalim et al. (2026) studied this question.

synapsesocial.com/papers/699011a12ccff479cfe588bahttps://doi.org/10.3390/foods15040660
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