Assessing the Performance of Clostridium perfringens Cooling Models for Cooked, Uncured Meat and Poultry Products

被引:13
作者
Mohr, T. B. [1 ]
Juneja, V. K. [2 ]
Thippareddi, H. H. [3 ]
Schaffner, D. W. [4 ]
Bronstein, P. A. [5 ]
Silverman, M. [6 ]
Cook, L. V., Jr. [7 ]
机构
[1] Food Safety & Inspect Serv, USDA, Off Publ Hlth Sci, Salem, OR 97301 USA
[2] ARS, USDA, Eastern Reg Res Ctr, Wyndmoor, PA 19038 USA
[3] Univ Nebraska, Dept Food Sci & Technol, Lincoln, NE 68583 USA
[4] Rutgers State Univ, Dept Food Sci, Sch Environm & Biol Sci, New Brunswick, NJ 08901 USA
[5] Food Safety & Inspect Serv, USDA, Off Publ Hlth Sci, Washington, DC 20250 USA
[6] Food Safety & Inspect Serv, USDA, Off Policy & Program Dev, Risk Innovat & Management Div, Washington, DC 20250 USA
[7] SafetyTaste Solut LLC, Burke, VA 22015 USA
关键词
PREDICTIVE MODEL; SALMONELLA-TYPHIMURIUM; ORGANIC-ACIDS; GROUND-BEEF; ROAST BEEF; SPORE GERMINATION; GROWTH-RATE; OUTGROWTH; INHIBITION; VALIDATION;
D O I
10.4315/0362-028X.JFP-15-015
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
Heat-resistant spores of Clostridium perfringens may germinate and multiply in cooked meat and poultry products when the rate and extent of cooling does not occur in a timely manner. Therefore, six cooling models (PMP 7.0 broth model; PMIP uncured beef, chicken, and pork models; Smith-Schaffner version 3; and UK IFR ComBase Perfringens Predictor) were evaluated for relative performance in predicting growth of C. pelfringens under dynamic temperature conditions encountered during cooling of cooked, uncured meat and poultry products. The predicted growth responses from the models were extensively compared with those observed in food. Data from 188 time-temperature cooling profiles (176 for single-rate exponential cooling and 12 for dual-rate exponential cooling) were collected from 17 independent sources (16 peer-reviewed publications and one report) for model evaluation. Data were obtained for a variety of cooked products, including meat and poultry slurries, ground meat and poultry products with and without added ingredients (e.g., potato starch, sodium triphosphate, and potassium tetrapyrophosphate), and processed products such as ham and roast beef. Performance of the models was evaluated using three sets of criteria, and accuracy was defined within a 1- to 2-log range. The percentages of accurate, fail-safe, or fail-dangerous predictions for each cooling model differed depending on which criterion was used to evaluate the data set. Nevertheless, the combined percentages of accurate and fail-safe predictions based on the three performance criteria were 34.66 to 42.61% for the PMP 7.0 beef broth model, 100% for the PMIP cooling models for uncured beef, uncured pork and uncured chicken, 80.11 to 93.18% for the Smith-Schaffner cooling model, and 74.43 to 85.23% for the UK IFR ComBase Perfringens Predictor model during single-rate exponential chilling. Except for the PMP 7.0 broth model, the other five cooling models (PMIP, Smith-Schaffner, and UK ComBase) are useful and reliable tools that food processors and regulatory agencies can use to evaluate the safety of cooked or heat-treated uncured meat and poultry products exposed to cooling deviations or to develop customized cooling schedules.
引用
收藏
页码:1512 / 1526
页数:15
相关论文
共 39 条
[1]   A DYNAMIC APPROACH TO PREDICTING BACTERIAL-GROWTH IN FOOD [J].
BARANYI, J ;
ROBERTS, TA .
INTERNATIONAL JOURNAL OF FOOD MICROBIOLOGY, 1994, 23 (3-4) :277-294
[2]   MATHEMATICS OF PREDICTIVE FOOD MICROBIOLOGY [J].
BARANYI, J ;
ROBERTS, TA .
INTERNATIONAL JOURNAL OF FOOD MICROBIOLOGY, 1995, 26 (02) :199-218
[3]  
Juneja V. K., 2001, Innovative Food Science and Emerging Technologies, V2, P289, DOI 10.1016/S1466-8564(01)00050-9
[4]  
Juneja V.K., 1993, J. Rapid Methods Autom. Microbiol, V2, P203, DOI DOI 10.1111/J.1745-4581.1993.TB00290.X
[5]   Control of Clostridium perfringens spores by green tea leaf extracts during cooling of cooked ground beef, chicken, and pork [J].
Juneja, Vijay K. ;
Bari, M. L. ;
Inatsu, Y. ;
Kawamoto, S. ;
Friedman, Mendel .
JOURNAL OF FOOD PROTECTION, 2007, 70 (06) :1429-1433
[6]   Control of Clostridium perfringens in cooked ground beef by carvacrol, cinnamaldehyde, thymol, or oregano oil during chilling [J].
Juneja, Vijay K. ;
Thippareddi, H. ;
Friedman, Mendel .
JOURNAL OF FOOD PROTECTION, 2006, 69 (07) :1546-1551
[7]   Growth Potential of Clostridium perfringens from Spores in Acidified Beef, Pork, and Poultry Products during Chilling [J].
Juneja, Vijay K. ;
Baker, David A. ;
Thippareddi, H. ;
Snyder, O. Peter, Jr. ;
Mohr, Tim B. .
JOURNAL OF FOOD PROTECTION, 2013, 76 (01) :65-71
[8]   Predictive model for growth of Clostridium perfringens during cooling of cooked uncured meat and poultry [J].
Juneja, Vijay K. ;
Marks, Harry ;
Huang, Lihan ;
Thippareddi, H. .
FOOD MICROBIOLOGY, 2011, 28 (04) :791-795
[9]  
Juneja VK, 2010, PATHOGENS AND TOXINS IN FOODS: CHALLENGES AND INTERVENTIONS, P53
[10]   Control of Clostridium perfringens in a model roast beef by salts of organic acids during chilling [J].
Juneja, VK ;
Thippareddi, H .
JOURNAL OF FOOD SAFETY, 2004, 24 (02) :95-108