Trends in Food Science & Technology· 2025Q1· Review
Fermentation-based valorization of agro-industrial cereal wastes and by-products
- 24citations
- Q1SCImago
- 2025year
Short summary
Fermentation significantly enhances the nutritional and functional properties of agro-industrial cereal wastes (bran, husks, spent grains) by improving protein digestibility, phenolic bioaccessibility, and prebiotic oligosaccharide yield, while reducing antinutrients like phytic acid and tannins.
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Key points
- Fermentation improves protein digestibility, phenolic bioaccessibility, and prebiotic oligosaccharide yield in cereal wastes.
- Fermentation reduces antinutrients like phytic acid, tannins, and mycotoxins in bran, husks, and spent grains.
- Pretreatment combined with fermentation enhances nutrient release and functional properties.
- Potential applications include functional foods, nutraceuticals, biofuels, and bioplastics.
- Scalability issues, substrate variability, and economic feasibility remain key challenges.
AI-generated from the title and abstract; the full text is not read.
Abstract
Background Agro-industrial cereal processing generates large volumes of nutrient-rich by-products such as bran, husks, and spent grains that remain underutilized. These residues contain proteins, fibers, phenolics, and micronutrients that can be efficiently recovered through sustainable bioprocessing. Scope and approach This review synthesizes recent advances in fermentation-based valorization of cereal waste and by-products, focusing on solid-state and submerged systems involving bacteria, fungi, and yeasts. It uniquely integrates microbial fermentation strategies with sustainability and examines their compositional enhancement, bioactive compound release, and antinutrient reduction. It also highlights emerging developments such as AI- and ML-assisted fermentation process optimization, which aligns cereal waste valorization with SDGs and next-generation bioprocess design. Key findings and conclusions Fermentation enhances protein digestibility, phenolic bioaccessibility, and prebiotic oligosaccharide yield, while reducing phytic acid, tannins, and mycotoxins. Pretreatment, followed by fermentation, enhances nutrient release and improves the functional properties of bran, husks, and spent grains. These improvements support industrial applications range from functional foods and nutraceuticals to biofuels and bioplastics. However, scalability remains constrained by substrate variability, process optimization challanges, and economic feasibility. Integrating multi-omics datasets, adaptive biorefinery models, and AI-based control systems could accelerate the transition toward sustainable, data-driven cereal waste valorization, establishing fermentation as a cornerstone technology linking waste reduction, functional food innovation, and the global sustainability agenda.
The authors' abstract, as published at the source. Trends in Food Science & Technology, 2025 · DOI ↗
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Field: Nutrition and Dietetics
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