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June 3, 2026Foods1 citationsOpen Access

Investigation of Chemical and Processing Hurdle Impacts upon Microbial Control and Physicochemical Quality of Manufactured Pepperoni Products

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CCCiarán H. CrowleyJKJoseph P. KerryGDGeraldine Duffy

Key Points

  • The aim is to evaluate how different processing variables affect microbial control and quality in pepperoni production.
  • Utilized a 2 × 2 × 3 × 2 factorial design across four processing stages: pre-fermentation, post-fermentation, post-heat treatment, and post-drying.
  • Applied multivariate analysis of variance (MANOVA) followed by univariate testing with FDR correction for data analysis.
  • Examined eight formulations to assess the interactions between salt, nitrite, heat treatment, and water activity on meat products.
  • Heat treatment significantly reduced microbes, with short high-temperature treatments being the most effective.
  • Nitrite and salt interactions influenced microbial variations in early processing stages (η2 ≤ 0.72).
  • At the final processing stage, salt and nitrite were linked to quality and microbial parameters, while water activity's influence was not independent in the multivariate model.

Abstract

This study investigated the stage-dependent effects of salt, nitrite, heat treatment, and water activity (aW) on physicochemical and microbiological parameters during fermented meat manufacture. Eight formulations representing a fractional subset of a 2 × 2 × 3 × 2 factorial design were evaluated across four processing stages (pre-fermentation, post-fermentation, post-heat treatment, and post-drying). A stage-resolved multivariate analysis of variance (MANOVA) framework was applied, followed by univariate testing with Benjamini–Hochberg false discovery rate (FDR) correction. Results demonstrated that hurdle effects were strongly stage dependent. Nitrite and its interaction with salt were associated with early stage microbial variation (η2 ≤ 0.72), while heat treatment was the dominant factor influencing microbial reduction at the post-processing stage. Notably, short high-temperature heat treatments were most effective at microbial reduction, followed by longer lower-temperature heat treatments, with the intermediate treatment being the least effective, indicating that equivalent time–temperature combinations did not yield equivalent microbiological outcomes. At the final stage, salt and nitrite were associated with compositional, microbial, and quality-related parameters, while aW influenced product structure and concentration effects but was not retained as an independent factor in the multivariate model. These findings indicate that hurdle effects evolve throughout processing and should be considered within a dynamic, stage-specific framework. The results provide a basis for the development of integrated reformulation strategies to reduce salt and nitrite levels while maintaining microbial stability and product quality.

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Cite This Study

Crowley et al. (2026) studied this question.

synapsesocial.com/papers/6a1fc76ddee9eb8c0dce85b3https://doi.org/10.3390/foods15111952
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