Xylanase B from the hyperthermophile Thermotoga maritima as an indicator for temperature gradients in high pressure high temperature processing

被引:3
|
作者
Vervoort, Liesbeth [1 ]
Van der Plancken, Iesel [1 ]
Grauwet, Tara [1 ]
Verjans, Priscilla [2 ]
Courtin, Christophe M. [2 ]
Hendrickx, Marc E. [1 ]
Van Loey, Ann [1 ]
机构
[1] Katholieke Univ Leuven, Dept Microbial & Mol Syst M2S, Leuven Food Sci & Nutr Res Ctr LFoRCe, Lab Food Technol, B-3001 Heverlee, Belgium
[2] Katholieke Univ Leuven, Dept Microbial & Mol Syst M2S, Leuven Food Sci & Nutr Res Ctr LFoRCe, Lab Food Chem & Biochem, B-3001 Heverlee, Belgium
关键词
Pressure-temperature-time indicator (pTTI); High pressure high temperature (HPHT) processing; High pressure sterilization; Temperature uniformity; Xylanase; Thermotoga maritima; HIGH HYDROSTATIC-PRESSURE; SUBTILIS ALPHA-AMYLASE; CLOSTRIDIUM-BOTULINUM; STERILIZATION; QUALITY; TIME; INACTIVATION; PROTEINS; ENZYMES; SYSTEM;
D O I
10.1016/j.ifset.2011.01.006
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
Within the scope of high pressure food sterilization, an important issue that should be taken into account in refining process and equipment design is the time- and position-dependent temperature gradient that exists throughout the pressure vessel and the product load. Since enzymes from thermophilic microorganisms show good prospects for the development of indicators to map out the temperature non-uniformity in high pressure high temperature (HPHT) processing, in this work, the potential of xylanase B from Thermotoga maritima (XTMB) was investigated. Its inactivation at isothermal-isobaric conditions was best described by a first-order model. The pressure dependence of the D values was negligible at HPHT, the temperature dependence however was substantial. The Thermal Death Time (TDT) model, and its corresponding parameters, describing this large temperature dependence were successfully validated under dynamic processing conditions, relevant for industrial HPHT applications. Industrial relevance: Despite extensive research progress on high pressure high temperature (HPHT) processing as a new food sterilization technique, food industry should be aware of a possible non-uniform temperature distribution, occurring in the pressure vessel and its consequence for the quality and safety of treated products. Since direct measurement of the temperature distribution is not feasible with the measuring devices currently available and constructive computation of the temperature profile by numerical simulation is inadequate, the development of specific temperature-sensitive wireless sensors, or pressure-temperature-time indicators (pills) can be put forward. In this work, xylanase B from Thermotoga maritima (XTMB) was evaluated as a potential enzymatic indicator for mapping the temperature non-uniformity in HPHT processing. (C) 2011 Elsevier Ltd. All rights reserved.
引用
收藏
页码:187 / 196
页数:10
相关论文
共 50 条
  • [21] A NULL-POINT PRESSURE INDICATOR FOR USE AT HIGH TEMPERATURE
    LILEY, PE
    JOURNAL OF SCIENTIFIC INSTRUMENTS, 1958, 35 (08): : 308 - 309
  • [22] Fermented minced pepper by high pressure processing, high pressure processing with mild temperature and thermal pasteurization
    Li, Jingyu
    Zhao, Feng
    Liu, Haihua
    Li, Renjie
    Wang, Yongtao
    Liao, Xiaojun
    INNOVATIVE FOOD SCIENCE & EMERGING TECHNOLOGIES, 2016, 36 : 34 - 41
  • [23] Permeability and reactivity of Thermotoga maritima in latex bimodal blend coatings at 80°C: a model high temperature biocatalytic coating
    Olav K. Lyngberg
    Chris Solheid
    Salim Charaniya
    Yue Ma
    Venkata Thiagarajan
    L. E. Scriven
    Michael C. Flickinger
    Extremophiles, 2005, 9 : 197 - 207
  • [24] High Pressure/High Temperature
    Das, Santanu
    JPT, Journal of Petroleum Technology, 2023, 75 (03): : 71 - 72
  • [25] High pressure/high temperature
    SPE
    Ziegler, Robert, 1600, Society of Petroleum Engineers (SPE) (72):
  • [26] Permeability and reactivity of Thermotoga maritima in latex bimodal blend coatings at 80°C:: a model high temperature biocatalytic coating
    Lyngberg, OK
    Solheid, C
    Charaniya, S
    Ma, Y
    Thiagarajan, V
    Scriven, LE
    Flickinger, MC
    EXTREMOPHILES, 2005, 9 (03) : 197 - 207
  • [27] Temperature Effects for High-Pressure Processing of Picornaviruses
    David H. Kingsley
    Xinhui Li
    Haiqiang Chen
    Food and Environmental Virology, 2014, 6 : 58 - 61
  • [28] High pressure/high temperature
    Ziegler, Robert
    JPT, Journal of Petroleum Technology, 2019, 71 (03):
  • [29] High Pressure/High Temperature
    Das, Santanu
    JPT, Journal of Petroleum Technology, 2024, 76 (03): : 75 - 76
  • [30] Temperature Effects for High-Pressure Processing of Picornaviruses
    Kingsley, David H.
    Li, Xinhui
    Chen, Haiqiang
    FOOD AND ENVIRONMENTAL VIROLOGY, 2014, 6 (01) : 58 - 61