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Modelling the effect of temperature and water activity on the growth rate and growth/no growth interface of Byssochlamys fulva and Byssochlamys nivea

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dc.contributor.author Panagou, EZ en
dc.contributor.author Chelonas, S en
dc.contributor.author Chatzipavlidis, I en
dc.contributor.author Nychas, GJE en
dc.date.accessioned 2014-06-06T06:50:35Z
dc.date.available 2014-06-06T06:50:35Z
dc.date.issued 2010 en
dc.identifier.issn 07400020 en
dc.identifier.uri http://dx.doi.org/10.1016/j.fm.2010.02.005 en
dc.identifier.uri http://62.217.125.90/xmlui/handle/123456789/5073
dc.subject Byssochlamys fulva en
dc.subject Byssochlamys nivea en
dc.subject Fungi en
dc.subject Probabilistic modelling en
dc.subject Rosso cardinal model en
dc.subject Temperature en
dc.subject Water activity en
dc.subject.other water en
dc.subject.other article en
dc.subject.other Byssochlamys en
dc.subject.other chemistry en
dc.subject.other culture medium en
dc.subject.other growth, development and aging en
dc.subject.other kinetics en
dc.subject.other metabolism en
dc.subject.other microbial viability en
dc.subject.other statistical model en
dc.subject.other temperature en
dc.subject.other Byssochlamys en
dc.subject.other Culture Media en
dc.subject.other Kinetics en
dc.subject.other Logistic Models en
dc.subject.other Microbial Viability en
dc.subject.other Temperature en
dc.subject.other Water en
dc.subject.other Byssochlamys fulva en
dc.subject.other Byssochlamys nivea en
dc.subject.other Fungi en
dc.title Modelling the effect of temperature and water activity on the growth rate and growth/no growth interface of Byssochlamys fulva and Byssochlamys nivea en
heal.type journalArticle en
heal.identifier.primary 10.1016/j.fm.2010.02.005 en
heal.publicationDate 2010 en
heal.abstract The purpose of the present study was to apply a modelling approach to define the growth rate and growth/no growth interface of Byssochlamys fulva and Byssochlamys nivea on a synthetic medium as a function of temperature and water activity. Both fungal species were grown on malt extract agar at different temperatures (10, 15, 20, 25, 30, 35, 40 and 45 °C) and aw levels (0.88, 0.90, 0.92, 0.94, 0.96 and 0.99) for a period of 30 days. Growth responses were evaluated over time in terms of colony diameter changes. Growth data were fitted to the primary model of Baranyi and the resulting growth rates were further modeled as a function of temperature and water activity using the cardinal model with inflection (CMI) (Rosso et al., 1993). A logistic regression quadratic polynomial model was also employed to predict the probability of growth over storage time. Estimated parameters for minimum, maximum and optimum temperatures for growth were 9.1 °C, 46.4 °C and 32.1 °C for B. fulva and 10.5 °C, 43.2 °C and 32.1 °C for B. nivea. The respective values for aw were 0.893, 0.993 and 0.985 for B. fulva and 0.892, 0.992 and 0.984 for B. nivea. No growth was observed at 0.88 aw regardless of temperature for both species, whereas B. nivea ascospores could not grow at 10 and 45 °C irrespective of aw. Regarding growth boundaries, the degree of agreement between predictions and observations was >98% concordant for both species. The erroneously predicted growth cases were 1.4-4.2% false positive and 2.1-3.5% false negative for B. nivea and B. fulva, respectively. The developed logistic model was validated with two literature data sets as well as with data from independent experiments carried out on fruit juices. Validation results showed that agreement with literature data for growth was 25 out of 36 (69.4%) cases, whereas validation on fruit juice data failed in only 6 cases (5 false positives and 1 false negative) out of 128 cases. © 2010 Elsevier Ltd. en
heal.journalName Food Microbiology en
dc.identifier.issue 5 en
dc.identifier.volume 27 en
dc.identifier.doi 10.1016/j.fm.2010.02.005 en
dc.identifier.spage 618 en
dc.identifier.epage 627 en


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