Journal of Applied Microbiology, Vol.108, No.4, 1123-1135, 2010
Quantifying the heterogeneous heat response of Escherichia coli under dynamic temperatures
Aims: Non-sigmoid growth curves of Escherichia coli obtained at constant temperatures near the maximum growth temperature (T-max) were previously explained by the coexistence of two subpopulations, i.e. a stress-sensitive and a stress-resistant subpopulation. Mathematical simulations with a heterogeneous model support this hypothesis for static experiments at 45 degrees C. In this article, the behaviour of E. coli, when subjected to a linearly increasing temperature crossing T-max, is studied. Methods and Results: Subpopulation dynamics are studied by culturing E. coli K12 MG1655 in brain heart infusion broth in a bioreactor. The slowly increasing temperature (degrees C h-1) starting from 42 degrees C results in growth up to 60 degrees C, a temperature significantly higher than the known T-max. Given some additional presumptions, mathematical simulations with the heterogeneous model can describe the dynamic experiments rather well. Conclusions: This study further confirms the existence of a stress-resistant subpopulation and reveals the unexpected growth of E. coli at temperatures significantly higher than T-max. Significance and Impact of the Study: The growth of the small stress-resistant subpopulation at unexpectedly high temperatures asks for a revision of currently applied models in food safety and food quality strategies.
Keywords:Escherichia coli;heat;heat tolerance;heterogeneous model;maximum temperature for growth;stress response;subpopulations;temperature