Showing posts with label edible. Show all posts
Showing posts with label edible. Show all posts

Green tea and grape seed extracts to control Listeria monocytogenes, Escherichia coli O157: H7 and Salmonella Typhimurium in whey protein edible film ... monocytogenes and Escherichia coli O157:H7.

IMAGE OF Green tea and grape seed extracts to control Listeria monocytogenes, Escherichia coli O157: H7 and Salmonella Typhimurium in whey protein edible film ... monocytogenes and Escherichia coli O157:H7.

Green tea and grape seed extracts to control Listeria monocytogenes, Escherichia coli O157: H7 and Salmonella Typhimurium in whey protein edible film ... monocytogenes and Escherichia coli O157:H7.

Green tea and grape seed extracts to control Listeria monocytogenes, Escherichia coli O157: H7 and Salmonella Typhimurium in whey protein edible film ... monocytogenes and Escherichia coli O157:H7.




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Green tea and grape seed extracts to control Listeria monocytogenes, Escherichia coli O157: H7 and Salmonella Typhimurium in whey protein edible film ... monocytogenes and Escherichia coli O157:H7.

Green tea and grape seed extracts to control Listeria monocytogenes, Escherichia coli O157: H7 and Salmonella Typhimurium in whey protein edible film ... monocytogenes and Escherichia coli O157:H7.Foodborne diseases caused by Listeria monocytogenes, E. coli O157:H7 and Salmonella Typhimurium have been associated with the consumption of a range of food products including ready-to-eat poultry and meat products. There is an increasing interest in natural therapies and consumer demand for effective, safe, natural products. Hence, it is important to investigate antimicrobial activities of plant extracts as potential sources of novel antimicrobials. Combinations of natural antimicrobials can serve as potential intervention strategies for controlling foodborne pathogens. Also, understanding mode of action of grape seed extract (GSE) and green tea extract (GTE) is important if they are to find commercial application as natural preservatives. Therefore, the objectives of this study were to evaluate the inhibitory effect of GSE and GTE combined with nisin (N) and malic acid (MA) in whey protein edible films against the three major pathogens in the turkey frankfurter system and to investigate the mode of action of GTE and GSE in inhibiting the pathogens. GSE and GTE had synergistic effects when combined with N and MA and lowered the Listeria monocytogenes population by 4.6 log cycles after 28 days in turkey frankfurters stored at 4 °C. No such synergistic effects between the extracts and N and MA were observed in Salmonella Typhimurium and E. coli O157:H7. MA alone lowered the Salmonella Typhimurium population by 3.3 log cycles compared to the control, while the combination of N, MA, GSE and EDTA lowered the counts by 2.0 log cycles only compared to the control. The E. coli O157:H7 population was lowered by 4.6 log cycles compared to the control, while combination of N, MA, GSE and EDTA lowered the counts by 3.4 log cycles. GSE and GTE had bactericidal effects on Listeria monocytogenes and E. coli O157:H7 at concentrations of more than 4 and 6 mg/ml, respectively. At bactericidal concentrations GSE and GTE resulted in a high percentage (90%) of cells with propidium iodide uptake in Listeria monocytogenes and E. coli O157:H7, respectively. Cell killing was accompanied by depletion in the ATP pools of the cells due to cellular cytoplasmic leakage, indicating that the bactericidal activity of GSE and GTE results from damage to the cytoplasmic membrane. Both GSE and GTE inhibited the membrane bound ATPase activity significantly at concentrations of more than 2 and 6 mg/ml in Listeria monocytogenes and E. coli O157:H7, respectively.


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Characterization of heat cured and transglutaminase cross-linked whey protein-based edible films.

Characterization of heat cured and transglutaminase cross-linked whey protein-based edible films.

Edible whey protein films were produced using whey protein isolate (WPI), glycerol and candelilla wax. Films were also produced with the addition of microbial transglutaminase (TG) to the film forming solution after heating. Both sets of films were vacuum heat cured for 0, 12 and 24h at 90°C. The effect of heat curing and transglutaminase treatments on mechanical properties [tensile strength (TS), elongation at break (%E) and toughness], the free suflhydryl, disulfide, and lysine contents and degree of cross-linking of WPI films were assessed. Heat curing increased the TS of WPI and WPI/TG films compared to uncured films. Heat curing films for 24h had increased %E compared to other films. Heat curing increased the toughness of WPI films. Heat curing decreased the free sulfhydryl content of WPI and WPI/TG films. The disulfide bond content of WPI films heat cured for 12h was higher than for films heat cured at 0 and 24h. The disulfide content of WPI/TG films heat cured for 12 and 24h was higher than for films at 0 and 48h. Heat cured WPI films had lower lysine content compared to uncured films. WPI/TG films heat cured for 24h had lower lysine content compared to films heat cured at 0 and 12h. SDS-PAGE was used to confirm heat curing and TG treatment resulted in the formation of covalent cross-links, between whey protein fractions. The water vapor permeability (WVP) of WPI and WPI/TG films heat cured for 0 and 24h was determined at 37.8°C and 85% RH as well as the oxygen permeability at 23°C and 0% RH. Moisture sorption isotherms (MSI) of films were determined at 23°C and 5°C using the Guggenheim-Anderson-de Boer equation (GAB). Heat curing WPI/TG films reduced the WVP compared to uncured WPI, WPI/TG and cured WPI films. The addition of TG reduced the oxygen permeability (O2P) compared to films without TG. Heat curing reduced the O2P of films compared to uncured films. Heat curing of WPI/TG films produced the greatest reduction in O2P of films tested. The moisture sorption isotherm of WPI and WPI/TG films heat cured for 0 and 24h at 90°C were found to closely follow the GAB mode) at 5 and 23°C. The films MSI, at 5°C were higher than the MSI of films at 23°C. The ultraviolet and visible light transmission and the color characteristics of WPI and WPI/TG films heat cured for 0 and 24h were assessed. Heat curing increased the yellowness of films. All films had low transmission of ultraviolet light. The effect of heat curing and transglutaminase treatments on the thermal properties (melting onset temperature, peak melting temperature and enthalpy of fusion) of whey protein isolate films with and without transglutaminase, and heat cured at 90°C for 0, 12 and 24h was assessed. The peak melting temperatures for films increased with heat curing and time. ...Read more

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Characterization of heat cured and transglutaminase cross-linked whey protein-based edible films.



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Characterization of heat cured and transglutaminase cross-linked whey protein-based edible films.

Characterization of heat cured and transglutaminase cross-linked whey protein-based edible films.

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