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Microregional distributions of glucose, lactate, ATP and tissue pH in experimental tumours upon local hyperthermia and/or hyperglycaemia

  • Original Papers
  • Experimental Oncology
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Abstract

Microregional distributions of glucose, lactate and ATP concentrations as well as tissue pH values were determined in subcutaneous rat tumours during normothermia and normoglycaemia, and upon local hyperthermia (HT) and/or hyperglycaemia (HG). Experiments were performed in order to investigate whether, and to what extent, these adjuvant therapeutic measures applied alone or in combination can modify the bioenergetic and metabolic status, parameters that are known to markedly influence the therapeutic response of tumours to heat. Local HT was performed in a saline bath (44°C/2 h) and HG was induced by i.v. infusion of glucose for 2.5 h (blood glucose levels during heating: 35–40 mM). Immediately after treatment, the microregional distributions of glucose, lactate and ATP concentrations were assessed using quantitative bioluminescence and single-photon counting. In corresponding histological sections the fraction of tumour tissue with changes indicating cellular damage was determined. For comparison, global levels of glucose, lactate, ATP, ADP and AMP were measured using enzymatic assays or HPLC. Tumour tissue pH values were recorded immediately after treatment with miniaturised needle glass pH electrodes. Upon HT alone, the microregional glucose distribution remained unchanged. Lactate concentrations significantly increased, resulting in a pH drop of about 0.20 pH units. Mean ATP concentrations decreased without an obvious change in the shape of the distribution curve. The fraction of tumour tissue showing cellular damage increased from 18% (in control tumours) to 27%. Upon HG alone, mean glucose and lactate levels in the tumours increased. Glucose, lactate and pH distributions became broader. Lactate accumulation results in a severe tumour acidosis (mean pH=6.22). Mean ATP concentrations marginally decreased despite a higher glucose availability, probably because of poorer ATP yield resulting from changes in metabolic channelling (Crabtree effect). The fraction of tumour tissue exhibiting cellular damage was 23%. Following the combined treatment (HT/HG), glucose and lactate levels, and tissue pH were similar to those seen upon HG alone. However, ATP concentrations were lowest under this condition. The variation of tumour ATP concentrations is substantially reduced with only a few tumour areas remaining with ATP levels of at least 0.6 μmol/g. The ATP depletion upon HT/HG is accompanied by a drastic increase in the fraction of tissue areas exhibiting cellular damage to 61%. It may therefore be concluded that only the combined treatment can deplete ATP to such an extent that a pronounced cytotoxic effect is achieved.

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Abbreviations

NT:

normothermia

HT:

hyperthermia

NG:

normoglycaemia

HG:

hyperglycaemia

HPLC:

high-performance liquid chormatography

References

  • Ardenne M von (1966) Syncarcinokolyse in Gestalt der Mehrschritt-Therapie. In: Doerr W, Lindner F, Wagner G (eds) Aktuelle Probleme aus dem Gebiet der Cancerologie. Springer, Berlin Heidelberg New York, pp 128–143

    Google Scholar 

  • Calderwood SK, Dickson JA (1980) Effect of hyperglycaemia on blood flow, pH, and response to hyperthermia (42°) of the Yoshida sarcoma in the rat. Cancer Res 40:4728–4733

    PubMed  Google Scholar 

  • Calderwood SK, Bump EA, Stevenson MA, Van Kersen I, Hahn GM (1985) Investigation of adenylate energy charge, phosphorylation potential, and ATP concentration in cells stressed with starvation and heat. J Cell Physiol 124:261–268

    PubMed  Google Scholar 

  • Crabtree HG (1929) Observations on the carbohydrate metabolism of tumours. J Biochem 23:536–545

    Google Scholar 

  • Dickson JA, Calderwood SK (1979) Effects of hyperglycaemia and hyperthermia on the pH, glycolysis, and respiration of the Yoshida sarcoma in vivo. JNCI 63:1371–1381

    PubMed  Google Scholar 

  • Evanochko WT, Ng TC, Lilly MB, Lawson AJ, Corbett TH, Durant JR, Glickson JD (1983) In vivo31P NMR study of the metabolism of murine mammary 16/C adenocarcinoma and its response to chemotherapy, x-radiation, and hyperthermia. Proc Natl Acad Sci USA 80:334–338

    PubMed  Google Scholar 

  • Gerweck LE, Urano M, Koutcher J, Fellenz MP, Kahn J (1989) Relationship between energy status, hypoxic cell fraction, and hyperthermic sensitivity in a murine fibrosarcoma. Radiat Res 117:448–458

    PubMed  Google Scholar 

  • Gullino PM, Grantham FH and Courtney AH (1967) Glucose consumption by transplanted tumors in vivo. Cancer Res 27:1031–1040

    PubMed  Google Scholar 

  • Hahn GM (1982) Hyperthermia and cancer. Plenum Press, New York

    Google Scholar 

  • Harmon BV, Corder AM, Collins RJ, Gobé GC, Allan J, Allan DJ, Kerr JFR (1990) Cell death induced in a murine mastocytoma by 42–47°C heating in vitro: evidence that the form of death changes from apoptosis to necrosis above a critical heat load. Int J Radiat Biol 58:845–858

    PubMed  Google Scholar 

  • Harmon BV, Takano YS, Winterford CM, Gobé GC (1991) The role of apoptosis in the response of cells and tumours to mild hyperthermia. Int J Radiat Biol 59:489–501

    PubMed  Google Scholar 

  • Jähde E, Rajewsky MF (1982) Tumor-selective modification of cellular microenvironment in vivo: effect of glucose infusion on the pH in normal and malignant rat tissues. Cancer Res 42:1505–1512

    PubMed  Google Scholar 

  • Kallinowski F, Vaupel P (1989) Factors governing hyperthermia-induced pH changes in Yoshida sarcomas. Int J Hyperthermia 5:641–652

    PubMed  Google Scholar 

  • Koutcher JA, Fellenz MP, Vaupel PW, Gerweck LE (1988) FSall mouse tumor metabolic changes with different doses of glucose measured by31P nuclear magnetic resonance. Cancer Res 48:5917–5921

    PubMed  Google Scholar 

  • Kristensen SR (1989) A critical appraisal of the association between energy charge and cell damage. Biochim Biophys Acta 1012:272–278

    PubMed  Google Scholar 

  • Kroeger M, Walenta S, Rofstad EK, Müller-Klieser W (1991) Imaging of structure and function in human tumor xenografts. In: Vaupel P, Jain RK (eds) Tumour blood supply and metabolic microenvironment. Fischer, Stuttgart New York, pp 305–318

    Google Scholar 

  • Krüger W, Mayer W-K, Schaefer C, Stohrer M, Vaupel P (1991) Acute changes of systemic parameters in tumour-bearing rats, and tumour glucose, lactate, and ATP levels upon local hyperthermia and/or hyperglycaemia. J Cancer Res Clin Oncol 117:409–415

    PubMed  Google Scholar 

  • Mayer W-K, Stohrer M, Krüger W, Vaupel P (1992) Laser Doppler flux and tissue oxygenation of experimental tumours upon local hyperthermia and/or hyperglycaemia. J Cancer Res Clin Oncol 118:523–528

    PubMed  Google Scholar 

  • Müller-Klieser W, Walenta S, Paschen W, Kallinowski F, Vaupel PW (1988) Metabolic imaging in microregions of tumours and normal tissues with bioluminescence and photon counting. JNCI 80:842–848

    PubMed  Google Scholar 

  • Murray D, Milas L, Meyn RE (1984) DNA damage produced by combined hyperglycaemia and hyperthermia in two mouse fibrosarcoma tumours in vivo. Int J Radiat Oncol Biol Phys 10:1679–1682

    PubMed  Google Scholar 

  • Ng TC, Evanochko WT, Hiramoto RN, Ghanta VK, Lilly MB, Lawson AJ, Corbett TH, Durant JR, Glickson JD (1982)31P NMR spectroscopy of in vivo tumors. J Magn Reson 49:271–286

    Google Scholar 

  • Okunieff P, Vaupel P, Sedlacek R, Neuringer LJ (1989) Evaluation of tumor energy metabolism and microvascular blood flow after glucose or mannitol administration using31P nuclear magnetic resonance spectroscopy and laser Doppler flowmetry. Int J Radiat Oncol Biol Phys 16:1493–1500

    PubMed  Google Scholar 

  • Raatz U (1966) Eine Modifikation des White-Tests bei großen Stichproben. Biometr Z 8:42–52

    Google Scholar 

  • Rauen HM, Friedrich M, Norpoth K (1967) Die Beziehung zwischen Milchsäurekonzentration und Gewebs-pH beim DS-Carcinosarkom der Ratte. Z Naturforsch 22b:1018–1020

    Google Scholar 

  • Ross BD, Mitchell SL, Merkle H, Garwood M (1989) In vivo31P and2H NMR studies of rat brain tumour pH and blood flow during acute hyperglycaemia: differential effects between subcutaneous and intracerebral locations. Magn Reson Med 12:219–234

    PubMed  Google Scholar 

  • Roszinski S, Wiedemann G, Jiang SZ, Baretton G, Wagner TH, Weiss C (1991) Effects of hyperthermia and/or hyperglycaemia on pH and pO2 in well oxygenated xenotransplanted human sarcoma. Int J Radiat Oncol Biol Phys 20:1273–1280

    PubMed  Google Scholar 

  • Streffer C (1982) Aspects of biochemical effects by hyperthermia. NCI Monogr 61:11–17

    Google Scholar 

  • Streffer C (1984) Mechanism of heat injury. In: Overgaard J (ed) Hyperthermic oncology, vol II. Taylor and Francis, London, pp 213–222

    Google Scholar 

  • Streffer C (1988) Aspects of metabolic changes after hyperthermia. Recent Results Cancer Res 107:7–16

    PubMed  Google Scholar 

  • Vaupel P (1990) Pathophysiological mechanisms of hyperthermia in cancer therapy. In: Gautherie M (ed) Biological basis of oncologic thermotherapy. Springer, Berlin Heidelberg New York, pp 73–134

    Google Scholar 

  • Vaupel P, Müller-Klieser W (1983) Interstitieller Raum und Mikromilieu in malignen Tumoren. Mikrozirk Forsch Klin 2:78–90

    Google Scholar 

  • Vaupel P, Günther H, Grote J (1972) Einfluß einer Hyperglykaemie auf die Sauerstoff-und Glucoseaufnahme von Implantationstumoren (DS-Carcinosarkom) in vivo. Z Krebsforsch 77:17–25

    Google Scholar 

  • Vaupel P, Otte J, Manz R (1982) Oxygenation of malignant tumors after localized microwave hyperthermia. Radiat Environ Biophys 20:289–300

    PubMed  Google Scholar 

  • Vaupel P, Kallinowski F, Okunieff P (1989a) Blood flow, oxygen and nutrient supply, and metabolic microenvironment of human tumors: a review. Cancer Res 49:6449–6465

    PubMed  Google Scholar 

  • Vaupel P, Okunieff P, Kluge M (1989b) Response of tumour red blood cell flux to hyperthermia and/or hyperglycaemia. Int J Hyperthermia 5:199–210

    PubMed  Google Scholar 

  • Vaupel P, Okunieff P, Neuringer LJ (1990) In vivo31P-NMR spectroscopy of murine tumours before and after localized hyperthermia. Int J Hyperthermia 6:15–31

    PubMed  Google Scholar 

  • Walenta S, Dötsch J, Müller-Klieser W (1990) ATP concentrations in multicellular tumor spheroids assessed by single photon imaging and quantitative bioluminescence. Eur J Cell Biol 52:389–393

    PubMed  Google Scholar 

  • Ward KA, Jain RK (1982) Response of tumours to hyperglycaemia: characterisation, significance and role in hyperthermia. Int J Hyperthermia 4:223–250

    Google Scholar 

  • White C (1952) The use of ranks in a test of significance for comparing two treatments. Biometrics 8:33–41

    Google Scholar 

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Supported by the Volkswagen Foundation, grant I/65084.

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Schaefer, C., Mayer, W.K., Krüger, W. et al. Microregional distributions of glucose, lactate, ATP and tissue pH in experimental tumours upon local hyperthermia and/or hyperglycaemia. J Cancer Res Clin Oncol 119, 599–608 (1993). https://doi.org/10.1007/BF01372723

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  • DOI: https://doi.org/10.1007/BF01372723

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