Growth kinetics and model comparison of Cronobacter sakazakii in reconstituted powdered infant formula

Ting Fang1, Joshua B Gurtler, Lihan Huang

  • 1School of Food Science, Fujian Agriculture and Forestry Univ, Fuzhou, China.

Journal of Food Science
|August 21, 2012
PubMed

Insights

Cronobacter sakazakii can grow in reconstituted powdered infant formula (PIF) even when heat-injured. Predictive models help assess risks associated with temperature abuse of PIF, protecting infants from this life-threatening bacterium.

Area of Science:

  • Food safety microbiology
  • Bacterial growth kinetics
  • Mathematical modeling in food science

Background:

  • Cronobacter sakazakii is a dangerous pathogen linked to infant illnesses from powdered infant formula (PIF).
  • Understanding C. sakazakii growth in reconstituted PIF (RPIF) is crucial for infant safety.
  • Heat injury can affect bacterial behavior, necessitating specific growth studies.

Purpose of the Study:

  • To investigate the growth kinetics of heat-injured and non-heat-injured Cronobacter sakazakii in RPIF.
  • To develop predictive mathematical models for C. sakazakii growth in RPIF under various temperatures.
  • To assess the risk posed by both uninjured and heat-injured C. sakazakii in RPIF.

Main Methods:

  • Inoculating RPIF with non-heat-treated and heat-injured C. sakazakii strains.
  • Incubating inoculated RPIF at temperatures ranging from 6 °C to 48 °C.
  • Applying logistic, Baranyi, and Huang models to growth data for kinetic analysis.

Main Results:

  • C. sakazakii grew well in RPIF between 10 °C and 48 °C, with minimal growth at 6 °C.
  • Uninjured C. sakazakii showed no lag phase, while heat-injured cells exhibited a short, temperature-dependent lag phase.
  • Growth rates did not significantly differ between non-heat-treated and heat-injured cells; predictive models were developed.

Conclusions:

  • Both non-heat-treated and heat-injured C. sakazakii pose a risk in RPIF if not fully inactivated.
  • Temperature abuse of RPIF can lead to pathogen growth, endangering infants.
  • Developed models aid in estimating C. sakazakii growth and conducting risk assessments for PIF.
Abstract

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