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May 6, 2026Fermentation2 citationsOpen Access

Recent Progress in the Applications of Levilactobacillus brevis in Food Fermentation: A Review

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MFMuhammad Salman FaridMHMuhammad Imran HussainSASaba Akhtar

Key Points

  • This review aims to assess recent developments in the applications of Levilactobacillus brevis in various food fermentations.
  • Comprehensive evaluation of L. brevis applications in dairy, meat, seafood, and plant-based fermentations.
  • Analysis of co-culture systems and their effectiveness in enhancing food quality and safety.
  • Identification of research gaps and future directions for the application of L. brevis.
  • L. brevis enhances dairy fermentation through co-cultures, improving texture and aroma while increasing GABA levels.
  • In fermented meats, it supports nitrite reduction and flavor formation, maintaining sensory quality.
  • In plant-based products, optimized fermentation can increase phenolic content and GABA levels, despite limitations from acidity.

Abstract

The rising global demand for functional, “clean-label” fermented foods has driven intense interest in versatile microbial starter cultures. Levilactobacillus brevis is an obligately heterofermentative lactic acid bacterium that is highly valued for its robust environmental adaptability and exceptional capacity to synthesize bioactive metabolites, notably γ-aminobutyric acid (GABA) and exopolysaccharides (EPS). This review comprehensively evaluates the recent progress in L. brevis applications across major food fermentations. In dairy systems, L. brevis is most effective in co-cultures, where partner starters compensate for limited proteolysis and acidification, enabling improved texture, aroma profiles, and GABA enrichment. In fermented meats, selected strains contribute to nitrite reduction, flavor formation, and bioprotection, supporting nitrite-reduced strategies while maintaining sensory quality. In fish and seafood fermentations, L. brevis shows promise for controlling spoilage indicators and biogenic amines (notably histamine) in high-salt environments, although strain compatibility in mixed cultures is product-dependent. In plant-based matrices, outcomes are strongly constrained by acidity and nitrogen limitation; however, optimized fermentation can enhance phenolic bioaccessibility, generate high GABA levels, and enable emerging precision-biofortification approaches. Despite these functional advantages, its industrial application is frequently constrained by strain-specific technological limitations, and its use often necessitates synergistic co-culture systems, particularly in challenging matrices. Ultimately, this review highlights current research gaps and proposes future directions, including multi-omics integration and targeted strain evolution, to overcome sensory trade-offs and fully harness the biotechnological potential of L. brevis in next-generation functional foods and agricultural byproduct valorization.

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Cite This Study

Farid et al. (2026) studied this question.

synapsesocial.com/papers/69fadad703f892aec9b1e821https://doi.org/10.3390/fermentation12050225
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