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Preventing physical destabilization and bioactive isoflavone loss in germinated soy milk using nisin.

TL;DR

BACKGROUND: Germinated soy milk (GSM) is a promising functional beverage rich in bioavailable aglycone isoflavones. However, its nutrient-dense matrix renders it highly susceptible to microbial spoilage and rapid physical destabilization. This study evaluated the efficacy of nisin as a non-thermal biopreservation intervention to retard quality deterioration in GSM at ambient temperature (25 °C). RESULTS: The untreated control spoiled rapidly within 3 days, characterized by a microbial surge (tot

Credibility Assessment Preliminary — 46/100
Study Design
Rigor of the research methodology
5/20
Sample Size
Whether the study was sufficiently powered
7/20
Peer Review
Review status and journal reputation
18/20
Replication
Has this finding been independently reproduced?
6/20
Transparency
Funding disclosure and data availability
10/20
Overall
Sum of all five dimensions
46/100

BACKGROUND: Germinated soy milk (GSM) is a promising functional beverage rich in bioavailable aglycone isoflavones. However, its nutrient-dense matrix renders it highly susceptible to microbial spoilage and rapid physical destabilization. This study evaluated the efficacy of nisin as a non-thermal biopreservation intervention to retard quality deterioration in GSM at ambient temperature (25 °C).
RESULTS: The untreated control spoiled rapidly within 3 days, characterized by a microbial surge (total colony count reaching 6.43 log CFU mL-1 by day 7), a precipitous pH drop (from 6.48 to 5.33), macroscopic gelation, and severe particle enlargement (volume-weighted mean diameter D[4, 3] increased from ~1.0 μm to >64.0 μm). Conversely, nisin intervention (0.4 g kg-1) effectively suppressed microbial growth, maintaining total colony count at a safe level of 2.67 log CFU mL-1 on day 7. This microbial inhibition sustained the system pH at ~5.99, successfully preventing acid-induced protein aggregation and preserving emulsion homogeneity (D[4, 3] at 6.0 μm). Furthermore, nisin significantly mitigated the microbial-driven degradation of phytochemicals, reducing the loss rate of aglycone isoflavones from 56.63% (control) to 29.29% after 7 days.
CONCLUSION: By effectively blocking the 'microbial proliferation-acidification-aggregation' deterioration cascade, nisin extended the ambient shelf life of GSM to 5 days. This targeted biopreservation strategy provides a robust framework for developing physically stable, clean-label, and nutritionally enhanced plant-based functional beverages. © 2026 Society of Chemical Industry.

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