Growth and enumeration of the meat spoilage bacterium Brochothrix thermosphacta.
暂无分享,去创建一个
M Al-Rubeai | C. McFarlane | P. Fryer | M. Al‐Rubeai | P J Fryer | N Rattanasomboon | S R Bellara | C L Harding | C R Thomas | C M McFarlane | S. R. Bellara | C. Thomas | C. Harding | N. Rattanasomboon
[2] Tom Ross,et al. Predictive Microbiology : Theory and Application , 1993 .
[3] P Dalgaard,et al. Estimation of bacterial growth rates from turbidimetric and viable count data. , 1994, International journal of food microbiology.
[4] Howard M. Shapiro,et al. Practical Flow Cytometry , 1985 .
[5] R. Dainty,et al. Aerobic metabolism of Brochothrix thermosphacta growing on meat surfaces and in laboratory media. , 1980, The Journal of applied bacteriology.
[6] A. Pinder,et al. Validation of flow cytometry for rapid enumeration of bacterial concentrations in pure cultures. , 1990, The Journal of applied bacteriology.
[7] J. Mol,et al. Observations on the microflora of vacuum packed sliced cooked meat products. , 1971, The Journal of applied bacteriology.
[8] József Baranyi,et al. A non-autonomous differential equation to model bacterial growth. , 1993 .
[9] Mohamed Al-Rubeai,et al. Flow Cytometry Applications in Cell Culture , 2020 .
[10] M. Boon,et al. Routine Cytological Staining Techniques , 1986 .
[11] C Laplace-Builhé,et al. Application of flow cytometry to rapid microbial analysis in food and drinks industries , 1993, Biology of the cell.
[12] Enrique Galindo,et al. Advances in Bioprocess Engineering , 1994, Springer Netherlands.
[13] G. Kozub,et al. Comparison of methods to determine the microbiological contamination of surfaces of beef carcasses by hydrophobic grid membrane filters, standard pour plates or flow cytometry , 1996 .
[14] E. Borch,et al. Bacterial spoilage of meat and cured meat products. , 1996, International journal of food microbiology.
[15] W. L. Sulzbacher,et al. MICROBACTERIUM THERMOSPHACTUM, SPEC NOV; A NONHEAT RESISTANT BACTERIUM FROM FRESH PORK SAUSAGE , 1953, Journal of bacteriology.
[16] M. Jakobsen,et al. The combined effects of temperature, pH and NaCl on growth of Debaryomyces hansenii analyzed by flow cytometry and predictive microbiology. , 1997, International journal of food microbiology.
[17] C. Edwards,et al. Rapid assessment of physiological status in Escherichia coli using fluorescent probes. , 1995, The Journal of applied bacteriology.
[18] D Lloyd,et al. Characterization of bacteria by multiparameter flow cytometry. , 1992, The Journal of applied bacteriology.
[19] M W Peck,et al. Modelling the growth, survival and death of microorganisms in foods: the UK food micromodel approach. , 1994, International journal of food microbiology.
[20] Zhibing Zhang,et al. THE EFFECT OF HYDRODYNAMICS ON BIOLOGICAL MATERIALS , 1998 .
[21] G. Frelat,et al. Recent advances of flow cytometry in fundamental and applied microbiology , 1993, Biology of the cell.
[22] J. T. Staley,et al. Microbiology: Dynamics and Diversity , 1997 .
[23] W. Davis,et al. The Combined Effects of , 1957 .
[24] J. Hudson,et al. COMPARISON OF LAG TIMES OBTAINED FROM OPTICAL DENSITY AND VIABLE COUNT DATA FOR A STRAIN OF PSEUDOMONAS FRAGI , 1994 .
[25] J. Sutherland,et al. Predictive modelling of growth of Yersinia enterocolitica: the effects of temperature, pH and sodium chloride. , 1994, International journal of food microbiology.
[26] T. Abee,et al. Flow cytometry applications in physiological study and detection of foodborne microorganisms. , 1995, International journal of food microbiology.
[27] C. M. Davidson,et al. Some morphological and physiological properties of Microbacterium thermosphactum. , 1968, The Journal of applied bacteriology.
[28] J Baranyi,et al. Predicting growth of Brochothrix thermosphacta at changing temperature. , 1995, International journal of food microbiology.
[29] T. A. Roberts,et al. Predictive modelling of growth of Staphylococcus aureus: the effects of temperature, pH and sodium chloride. , 1994, International journal of food microbiology.