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February 21, 2026International Journal of Food Microbiology0 citationsOpen Access

Impact of acid and alkaline hydrolyses used in gelatin production on the inactivation variability of aerobic and anaerobic bacterial spores

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CHCaroline HecklerMLMatheus P.S. LáscarisSCStéfany T.Q. Carvalho

Key Points

  • Assess how acid and alkaline hydrolysis affect the inactivation of aerobic and anaerobic spore-forming bacteria during gelatin production.
  • Evaluated 12 resistant spore-forming strains during hydrolysis processes.
  • Exposed porcine skin and bovine tissue to acid and alkaline treatment to simulate gelatin production.
  • Applied first-order, Weibull, and biphasic models to analyze inactivation data and variability.
  • 24-hour acid hydrolysis achieved log 10 reductions of 0.6 to 2.0 spores.
  • 48-hour acid treatment increased reductions to 1.0 to 3.8 log 10.
  • 7-day alkaline hydrolysis produced reductions from 0.9 to 3.1 log 10, increasing to 1.6 to 3.7 after 10 days.
  • Strain variability in log reductions was greater than variability among spore batches.

Abstract

The present study aimed to assess the variability in the inactivation of aerobic and anaerobic spore-forming bacteria during acid and alkaline hydrolyses commonly used in gelatin production. For this, 12 strains previously identified as highly resistant to gelatin processing were used: three Bacillus cereus sensu stricto, three aerobic mesophiles, three aerobic thermophiles, and three anaerobic mesophiles. Porcine skin and bovine tissue samples were inoculated with spores for achieving 6.0 log 10 CFU / g . Subsequently, porcine skin samples were treated with approximately 0.41 M sulfuric acid (H₂SO₄) for 24 to 48 h (pH 10) to simulate chemical hydrolysis used in gelatin production. Chemical inactivation data were fitting using the first-order, Weibull, and biphasic models, with model fitting performance evaluated by the mean square error, F-test, and lack-of-fit test. The reparameterized Weibull model provided the best overall fit of the acid and alkaline spore inactivation data, outperforming first-order and biphasic models. However, for some strains, the fit was not statistically acceptable. Acid hydrolysis for 24 h resulted in a log 10 -reduction of spores ranging from 0.6 to 2.0, increasing to 1.0 and 3.8 after 48 h. Alkaline hydrolysis showed log 10 -reduction from 0.9 to 3.1 after 7 days and 1.6 to 3.7 after 10 days. Variability analysis of log 10 -reductions was performed to quantify experimental, biological, and strain sources of variation. The variability in log 10 -reduction among the strains was much higher than variability among spore batches of the same strain, while experimental variability among technical replicates was low. In conclusion, these findings provide insight into the impact of chemical hydrolysis applied in gelatin production on inactivation variability of spores. These findings serve for gelatin industry to customize and optimize acid and alkaline hydrolysis, also considering the need to achieve a specified microbial reduction of spores to meet microbial specifications set by regulatory authorities and ensure product safety and quality. • Hydrolysis resistance of 12 resistant (an)aerobic spore-forming strains was determined. • The conditions simulated the acid and alkaline hydrolysis of gelatin processing. • Acid hydrolysis for 48 h resulted in spore log 10 -reductions ranging from 1.0 to 3.8. • Alkaline hydrolysis after 10 days achieved spore log 10 -reductions between 1.6 and 3.7. • Strain variability was higher than biological and experimental variabilities.

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Cite This Study

Heckler et al. (2026) studied this question.

synapsesocial.com/papers/69994ba9873532290d01fc64https://doi.org/10.1016/j.ijfoodmicro.2026.111698
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