Oilseed meal, the primary by-product of oil extraction, is rich in protein, dietary fiber, and minerals, offering significant development potential. However, its application in high-value feed and food is severely restricted due to anti-nutritional factors, leading to resource waste and environmental issues. Solid-state fermentation (SSF) provides a green and efficient approach for the high-value utilization of oilseed meal. This review comprehensively discusses the entire process of strain selection, fermentation strategies, and application of active products in the SSF of oilseed meal. Regarding strain selection, Bacillus spp. degrade macromolecular proteins and inhibit microbial contamination through protease and antimicrobial peptide production. Lactobacillus spp. enhance flavor and safety by producing acids and flavor compounds. Aspergillus spp. decompose cell walls and degrade phytate using their cellulase and phytase systems. For fermentation strategies, mixed fermentation achieves functional complementarity, enzyme–fungus synergy enhances substrate conversion, segmented fermentation optimizes the microbial environment, and physical field assistance boosts enzyme activity, collectively improving fermentation efficiency and nutritional quality. In product applications, fermented oilseed meal serves as both high-quality protein feed and a source of functional peptides and active polysaccharides with antioxidant and immunomodulatory activities, showing potential for functional foods and biomedicine. In conclusion, SSF technology effectively degrades anti-nutritional factors, improving the nutritional value and adding value to oilseed meal, thus representing a key strategy for resource conversion. Future efforts should prioritize high-performance strain selection, intelligent process monitoring, and green preparation of active products to promote industrial application and sustainable development.
Metal-organic frameworks are crystalline porous coordination polymers with tunable pore chemistry and high surface area, making them promising building blocks for advanced food preservation and packaging. Unlike previous reviews that categorize applications primarily by function, this review uniquely adopts a critical structure-function framework to systematically decipher how specific MOF design parameters-metal nodes, organic linkers, pore environments, and composite interfaces-govern preservation performance in real food systems. Within this framework, we highlight recent progress by analyzing how these structural features dictate key packaging functions, including adsorption-based gas/moisture regulation, stabilization and controlled release of bioactive compounds, and reinforcement of film barrier and mechanical properties. We summarize major functionalization strategies that integrate MOFs with bio-derived matrices and active agents (e.g., polysaccharides, proteins, polyphenols, essential oils, and ethylene-regulating components), and we review representative applications in active/intelligent films, coatings, and scavenging systems validated in food models. Crucially, we identify critical disconnects between laboratory-scale materials design and practical packaging engineering, particularly regarding performance translation. Finally, we discuss safety and sustainability challenges-especially migration/leaching risks, residual synthesis-related contaminants, stability under realistic storage conditions, degradability, and scale-up-together with design priorities for multifunctional, smart, and eco-compatible packaging.
Yinghua Tang, Yuqin Feng, Xuefeng Liu et al.· Food Research International· 0 citations
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