Effects of Bacillus fermentation on the protein microstructure and anti-nutritional factors of soybean meal

L Zheng1, D Li1, Z-L Li1

  • 1Institute of Agro-food Technology, Jilin Academy of Agricultural Sciences, Jilin, China.

Insights

Bacillus fermentation significantly improved soybean meal protein quality by reducing anti-nutritional factors and altering microstructure, enhancing in vitro digestibility and absorbability.

Area of Science:

  • Food Science
  • Microbiology
  • Biotechnology

Background:

  • Soybean meal protein (SBMP) contains anti-nutritional factors (ANFs) that limit its nutritional value.
  • Bacillus fermentation is a potential method to improve the quality of protein sources.

Purpose of the Study:

  • To evaluate the effects of Bacillus fermentation on SBMP microstructure and ANFs.
  • To assess the impact of fermentation on the in vitro digestibility and absorbability of soybean meal.

Main Methods:

  • Selected Bacillus siamensis isolate JL8 for fermentation.
  • Analyzed ANF content, in vitro digestibility, and absorbability.
  • Utilized Scanning Electron Microscopy (SEM) and secondary structure examination to assess microstructure changes.

Main Results:

  • Fermentation with Bacillus siamensis significantly reduced glycinin, β-conglycinin, and trypsin inhibitor by 86.0%, 70.3%, and 95.01%, respectively.
  • In vitro digestibility and absorbability increased by 8.7% and 18.9%.
  • SEM revealed smaller aggregates and a looser network in fermented soybean meal protein, with a 43.2% decrease in β-sheet structure and a 59.9% increase in random coil structure.

Conclusions:

  • Bacillus fermentation effectively improves the nutritional quality of soybean meal.
  • Changes in protein microstructure and reduction of ANFs are key mechanisms for improved digestibility and absorbability.
  • Bacillus siamensis shows potential for industrial production of fermented soybean meal.

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