PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
February 19, 2026Food and Bioprocess Technology0 citationsOpen Access

Ohmic Heating Destruction Kinetics of Clostridium sporogenes PA 3679 Spores in Low-Acid Foods: Case Study of Concentrated Maple Sap

MZMohammad Reza ZareifardFAFadi AliRRRani Puthukulangara Ramachandran

Key Points

  • This study aims to evaluate the destruction rates of Clostridium sporogenes spores in low-acid concentrated maple sap using ohmic heating.
  • Employed direct ohmic heating at voltage gradient of 90 V/cm.
  • Tested different temperatures (95–121 °C) and concentrations (10, 20, and 28.5°Brix).
  • Fitted survival data to several kinetic models, including Weibull and log-linear.
  • Used electron microscopy to observe structural changes in spores.
  • Observed a nonlinear microbial death rate with significant spore inactivation during initial heating.
  • Weibull model yielded the best fit for survival data with D-values ranging from 0.21 to 3.3 min.
  • Visualized structural destruction of spores due to electrical-thermal shock during ohmic heating.

Abstract

Abstract Food such as concentrated maple sap is prone to microbial contamination during collection, handling and transport, requiring effective processing to ensure safety. Conventional thermal treatments can compromise nutritional quality, sensory and physicochemical properties. Ohmic heating (OH) offers a promising alternative green process with valuable benefits while preserving food quality, reducing energy consumption and greenhouse gas emissions. This study evaluates Clostridium sporogenes PA 3679 destruction rates as a surrogate for low-acid (pH 7.9) concentrated maple sap (10, 20 and 28.5°Brix) at different temperature (95–121 °C) under direct OH at a voltage gradient (V g ) of 90 (V/cm). A nonlinear microbial death rate was observed with a sharp spore inactivation during come-up time (CUT) due to high applied V g , followed by a tailed lag during holding time at a lower V g . This profile likely caused a change in spore protein structure that resulted in a change of spore inactivation rate due to the synergistic effect of the thermal and electrical field. The survival data were fitted to various primary kinetic models (Weibull, log-linear model, Gompertz and sigmoid). The Weibull model provided the best fit (δ: 0.010–0.446; β: 0.238–0.408; adj-R 2 : 0.891–0.934), yielding equivalent D-values ranging from 0.21 to 3.3 min across different temperatures (95 to 121 °C) and media tested. Imaging using transmission electron microscopy and scanning electron microscopy revealed distinct structural destruction changes of C. sporogenes spores under rapid CUT as a result of electrical-thermal shock during OH. These findings offer a scientific basis for designing safe pasteurization or sterilization processes for food products such as concentrated maple sap, fruit juices and milk using a green emerging technology such as OH.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Zareifard et al. (2026) studied this question.

synapsesocial.com/papers/6996a798ecb39a600b3ed627https://doi.org/10.1007/s11947-026-04229-w
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1The Weibull Model for Microbial Inactivation2021 · 76 citations
  2. 2A 3D-CFD-heat-transfer-based model for the microbial inactivation of pasteurized food products2019 · 25 citations
  3. 3Analysis of heat transfer during ohmic processing of a solid food2008 · 118 citations
  4. 4Composition and Properties of Maple Sap, Concentrate, and Permeate2019 · 9 citations
  5. 5Ohmic Heating as an Advantageous Technology for the Food Industry2022 · 11 citations