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Research Article

Acute temperature resistance threshold in heart mitochondria: Febrile temperature activates function but exceeding it collapses the membrane barrier

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Pages 56-66 | Received 03 Jul 2009, Accepted 15 Aug 2009, Published online: 25 Jan 2010

References

  • Ostberg JR, Gellin C, Patel R, Repasky EA. Regulatory potential of fever-range whole body hyperthermia on Langerhans cells and lymphocytes in an antigen-dependent cellular immune response. J Immunol 2001; 167: 2666–2670
  • Dickson JA, Calderwood SK. Thermosensitivity of neoplastic tissues in vivo. Hyperthermia in cancer therapy, FK Storm. GK Hall Medical Publishers, Boston 1983; 63–140
  • Vertrees RA, Leeth A, Girouard M, Roach JD, Zwischenberger JB. Whole-body hyperthermia: A review of theory, design and application. Perfusion 2002; 17: 279–290
  • Wierenga PK, Stege GJJ, Kampinga HH, Konings AWT. Intracellular free calcium concentrations in cell suspensions during hyperthermia. Eur J Cell Biol 1994; 63: 68–76
  • Wieder ED, Fox MH. The role of intracellular free calcium in the cellular response to hyperthermia. Int J Hyperthermia 1995; 11: 733–742
  • Matsumi N, Matsumoto K, Mishima N, et al. Thermal damage threshold of brain tissue: Histological study of heated normal monkey brains. Neurol Med Chir (Tokyo) 1994; 34: 209–215
  • Haveman J, Van der Zee J, Wondergem J, Hoogeveen JF, Hulshof MC. Effects of hyperthermia on the peripheral nervous system: A review. Int J Hyperthermia 2004; 20: 371–391
  • Fajardo LF. Pathological effects of hyperthermia in normal tissues. Cancer Res 1984; 44: 4826S–4835S
  • Qian L, Song X, Ren H, Gong J, Cheng S. Mitochondrial mechanism of heat stress-induced injury in rat cardiomyocyte. Cell Stress Chaperones 2004; 9: 281–293
  • Yuen WF, Fung KP, Lee CY, Choy YM, Kong SK, Ko S, Kwok TT. Hyperthermia and tumour necrosis factor-α induced apoptosis via mitochondrial damage. Life Sci 2000; 67: 725–732
  • Ko S, Yuen WF, Fung KP, Lee CY, Choy YM, Cheng HK, Kwok TT, Kong SK. Reversal of TNF-α resistance by hyperthermia: Role of mitochondria. Life Sci 2000; 67: 3113–3121
  • Nijhuis EHA, Le Gac S, Poot AA, Feiijnen J, Vermes I. Bax mediated mitochondrial membrane permeabilisation after heat treatment is caspase 2 dependent. Int J Hyperthermia 2008; 24: 357–365
  • Lepock JR, Cheng KH, Al-Qysi H, Sim I, Koch CJ, Kruuv J. Hyperthermia-induced inhibition of respiration and mitochondrial protein denaturation in CHL cells. Int J Hyperthermia 1987; 3: 123–132
  • Brooks GA, Hittelman KJ, Faulkner JA, Beyer RE. Temperature, skeletal muscle mitochondrial functions, and oxygen debt. Am J Physiol 1971; 220: 1053–1059
  • Willis WT, Jackman MR, Bizeau ME, Pagliassotti MJ, Hazel JR. Hyperthermia impairs liver mitochondrial function in vitro. Am J Physiol Regul Integr Comp Physiol 2000; 278: 1240–1246
  • Fell DA. Understanding the control of metabolism, K Snell. Portland Press, London, Miami 1997
  • Dufour S, Rousse N, Canioni P, Diolez P. Top-down control analysis of temperature effect on oxidative phosphorylation. Biochem J 1996; 314: 743–751
  • Hafner RP, Brown GC, Brand MD. Analysis of the control of respiration rate, phosphorylation rate, proton leak rate and protonmotive force in isolated mitochondria using the ‘top-down’ approach of metabolic control theory. Eur J Biochem 1990; 188: 313–319
  • Mildaziene V, Baniene R, Nauciene Z, Marcinkeviciute A, Morkuniene R, Borutaite V, Kholodenko B, Brown GC. Ca2+ stimulates both the respiratory and phosphorylation subsystems in rat heart mitochondria. Biochem J 1996; 320: 329–334
  • Gornal AG, Bardawill CJ, David MM. Determination of serum protein by means of the burette reaction. J Biol Chem 1949; 177: 751–766
  • Kholodenko B, Zilinskiene V, Borutaite V, Ivanoviene L, Toleikis A, Praskevicius A. The role of adenine nucleotide translocator in regulation of oxidative phosphorylation in heart mitochondria. FEBS Lett 1987; 233: 247–250
  • Chance B, Williams GR. Respiratory enzymes in oxidative phosphorylation. I. Kinetics of oxygen utilization. J Biol Chem 1955; 217: 383–393
  • Hawkins P, Parker D. The design, construction and evaluation of an inexpensive analyser for measuring glucose concentrations in serum, plasma and whole blood. Phys Med Biol 1973; 18: 570–576
  • Available at http://www.colby.edu/cpse/equipment2/simple/algo.html
  • Marcinkeviciute A, Mildaziene V, Crumm S, Demin O, Hoek JB, Kholodenko B. Kinetics and control of oxidative phosphorylation in rat liver mitochondria after chronic ethanol feeding. Biochem J 2000; 349: 519–526
  • Zukiene R, Dapkunas A, Cizas P, Buzaite O, Nauciene Z, Baniene R, Zabarylo U, Minet O, Mildaziene V. Hyperthermia modulates the effect of Ca2+ overload on respiration and NAD(P)H fluorescence in rat heart mitochondria. Biologija (Vilnius) 2006; 3: 47–52
  • Steenland K. Epidemiology of occupation and coronary heart disease: Research agenda. Am J Ind Med 1996; 30: 495–499
  • Flanagan SW, Moseley PL, Buettner GR. Increased flux of free radicals in cells subjected to hyperthermia: Detection by electron paramagnetic resonance spin trapping. FEBS Letters 1998; 431: 285–286
  • Zuo L, Christofi FL, Wright VP, Liu CY, Merola AJ, Berliner LJ, Clanton TL. Intra- and extracellular measurement of reactive oxygen species produced during heat stress in diaphragm muscle. Am J Physiol Cell Physiol 2000; 279: C1058–1066
  • Arnaud C, Joyeux M, Garrel C, Godin-Ribuot D, Demenge P, Ribuot C. Free-radical production triggered by hyperthermia contributes to heat stress-induced cardioprotection in isolated rat hearts. Br J Pharmacol 2002; 135: 1776–1782
  • Grasso S, Scifo C, Cardile V, Gulino R, Renis M. Adaptive responses to the stress induced by hyperthermia or hydrogen peroxide in human fibroblasts. Exp Biol Med (Maywood) 2003; 228: 491–498
  • Barja G. Mitochondrial oxygen consumption and reactive oxygen species production are independently modulated: Implications for aging studies. Rejuvenation Res 2007; 10: 215–224
  • Park HG, Han SI, Oh SY, Kang HS. Cellular responses to mild heat stress. Cell Mol Life Sci 2005; 62: 10–23
  • Roti JLR. Cellular responses to hyperthermia (40–46°C): Cell killing and molecular events. Int J Hyperthermia 2008; 24: 3–15
  • Despa F, Orgill DP, Neuwalder J, Lee RC. The relative thermal stability of tissue macromolecules and cellular structure in burn injury. Burns 2005; 31: 568–577
  • Liu X, Kim CN, Yang J, Jemmerson R, Wang X. Induction of apoptotic program in cell free extracts: Requirement for dATP and cytochrome C. Cell 1996; 86: 147–157

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