Inactivation of<i>Geobacillus stearothermophilus</i>Spores by High-Pressure CarbonDioxideTreatment
Инактивация спор Geobacillus stearothermophilus с помощью высокодавления CO2
2003-12-01
SCID: 54.1/3hj35xjg
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Activation energy (CO2 vs heat/pressure)Geobacillus stearothermophilus sporesHigh-hydrostatic-pressure treatmentHigh-pressure CO2 treatmentSpore inactivation
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Abstract (AI)
High-pressure CO2 treatment has been studied as a promising method for inactivating bacterial spores. In the present study, we compared this method with other sterilization techniques, including heat and pressure treatment. Spores of Bacillus coagulans, Bacillus subtilis, Bacillus cereus, Bacillus licheniformis, and Geobacillus stearothermophilus were subjected to CO2 treatment at 30 MPa and 35 degrees C, to high-hydrostatic-pressure treatment at 200 MPa and 65 degrees C, or to heat treatment at 0.1 MPa and 85 degrees C. All of the bacterial spores except the G. stearothermophilus spores were easily inactivated by the heat treatment. The highly heat- and pressure-resistant spores of G. stearothermophilus were not the most resistant to CO2 treatment. We also investigated the influence of temperature on CO2 inactivation of G. stearothermophilus. Treatment with CO2 and 30 MPa of pressure at 95 degrees C for 120 min resulted in 5-log-order spore inactivation, whereas heat treatment at 95 degrees C for 120 min and high-hydrostatic-pressure treatment at 30 MPa and 95 degrees C for 120 min had little effect. The activation energy required for CO2 treatment of G. stearothermophilus spores was lower than the activation energy for heat or pressure treatment. Although heat was not necessary for inactivationby CO2 treatment of G. stearothermophilus spores, CO2 treatment at 95 degrees C was more effective than treatment at 95 degrees C alone.
Key Findings
1
Although heat is not required for CO2-based inactivation of G. stearothermophilus spores, CO2 treatment combined with 95°C is more effective than 95°C heat treatment alone.
2
CO2 treatment at 30 MPa and 95°C for 120 min achieved a 5-log reduction of G. stearothermophilus spores, whereas heat alone (95°C, 120 min) and high-hydrostatic-pressure at 30 MPa with 95°C for 120 min had little effect.
3
Geobacillus stearothermophilus spores, though highly heat- and pressure-resistant, were not the most resistant to CO2 treatment.
4
Heat treatment (0.1 MPa, 85°C) easily inactivated spores of B. coagulans, B. subtilis, B. cereus, and B. licheniformis but not Geobacillus stearothermophilus.
5
High-pressure CO2 treatment at 30 MPa and 35°C inactivates bacterial spores and was compared to heat and high-hydrostatic-pressure methods.
6
The activation energy for CO2 inactivation of G. stearothermophilus spores is lower than that for heat or pressure treatments, indicating a different and more efficient inactivation mechanism.
Research Object
Spores of Geobacillus stearothermophilus subjected to high-pressure CO2 treatment
Research Subject
Inactivation (log-order reduction) of G. stearothermophilus spores by high-pressure carbon dioxide treatment including temperature and pressure dependence and activation energy compared to heat and high-hydrostatic-pressure treatments
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2003-12-01
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