DYNAMIC MATHEMATICAL-MODEL TO PREDICT MICROBIAL-GROWTH AND INACTIVATION DURING FOOD-PROCESSING

被引:104
作者
VANIMPE, JF
NICOLAI, BM
MARTENS, T
DEBAERDEMAEKER, J
VANDEWALLE, J
机构
[1] KATHOLIEKE UNIV LEUVEN,DEPT AGR ENGN,B-3001 LOUVAIN,BELGIUM
[2] UNIV RESTAURANTS ALMA VZW,B-3000 LOUVAIN,BELGIUM
关键词
D O I
10.1128/AEM.58.9.2901-2909.1992
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Many sigmoidal functions to describe a bacterial growth curve as an explicit function of time have been reported in the literature. Furthermore, several expressions have been proposed to model the influence of temperature on the main characteristics of this growth curve: maximum specific growth rate, lag time, and asymptotic level. However, as the predictive value of such explicit models is most often guaranteed only at a constant temperature within the temperature range of microbial growth, they are less appropriate in optimization studies of a whole production and distribution chain. In this paper a dynamic mathematical model-a first-order differential equation-has been derived, describing the bacterial population as a function of both time and temperature. Furthermore, the inactivation of the population at temperatures above the maximum temperature for growth has been incorporated. In the special case of a constant temperature, the solution coincides exactly with the corresponding Gompertz model, which has been validated in several recent reports. However, the main advantage of this dynamic model is its ability to deal with time-varying temperatures, over the whole temperature range of growth and inactivation. As such, it is an essential building block in (time-saving) simulation studies to design, e.g., optimal temperature-time profiles with respect to microbial safety of a production and distribution chain of chilled foods.
引用
收藏
页码:2901 / 2909
页数:9
相关论文
共 11 条
[1]   The logarithmic nature of thermal death time curves [J].
Bigelow, WD .
JOURNAL OF INFECTIOUS DISEASES, 1921, 29 :528-536
[2]  
Gompertz B., 1825, PHILOS T R SOC LOND, V115, P513, DOI DOI 10.1098/RSTL.1825.0026
[3]  
KOHLER HPE, 1991, INT S ENV BIOTECHNOL, P511
[4]   OPTIMAL NUTRIENT RETENTION DURING THE THERMAL-PROCESSING OF CONDUCTION-HEATED CANNED FOODS - APPLICATION OF THE DISTRIBUTED MINIMUM PRINCIPLE [J].
NADKARNI, MM ;
HATTON, TA .
JOURNAL OF FOOD SCIENCE, 1985, 50 (05) :1312-1321
[5]   MODEL FOR BACTERIAL CULTURE-GROWTH RATE THROUGHOUT THE ENTIRE BIOKINETIC TEMPERATURE-RANGE [J].
RATKOWSKY, DA ;
LOWRY, RK ;
MCMEEKIN, TA ;
STOKES, AN ;
CHANDLER, RE .
JOURNAL OF BACTERIOLOGY, 1983, 154 (03) :1222-1226
[6]  
RATKOWSKY DA, 1982, J BACTERIOL, V149, P1
[7]   OPTIMAL RETORT TEMPERATURE PROFILE IN OPTIMIZING THIAMIN RETENTION IN CONDUCTION-TYPE HEATING OF CANNED FOODS [J].
SAGUY, I ;
KAREL, M .
JOURNAL OF FOOD SCIENCE, 1979, 44 (05) :1485-1490
[8]  
STUMBO CR, 1973, THERMOBACTERIOLOGY P
[9]  
TEIXEIRA AA, 1989, COMPUTERIZED FOOD PR
[10]   MODELING OF BACTERIAL-GROWTH AS A FUNCTION OF TEMPERATURE [J].
ZWIETERING, MH ;
DEKOOS, JT ;
HASENACK, BE ;
DEWIT, JC ;
VANTRIET, K .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1991, 57 (04) :1094-1101