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Influence of the Ward colon tumor on the host response to endotoxin

  • Original Paper
  • Experimental Oncology
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Journal of Cancer Research and Clinical Oncology Aims and scope Submit manuscript

Abstract

Cachexia and a decreased immune function are negative prognostic factors for cancer patients. While the decreased immunity results in a greater susceptibility to bacterial infection, the response of the host to the resulting infection is not clear. The experiments reported here were designed to evaluate the toxicity of endotoxin to rats with a transplantable Ward colon tumor (WCT) and to evaluate the mechanism of the observed increase in lethal toxicity. The lethal toxicity of endotoxin (lipopolysaccharide, LPS) at 5 mg/kg, i.p. was evaluated in the first of two experiments. Rats received LPS and were observed for morbidity and weight loss for a period of 11 days. A second experiment was done to evaluate the effect of LPS on the plasma nitrate/nitrite concentrations and plasma indicators of host tissue dysfunction. LPS was administered as previously described but blood and tissues were collected 5 h after LPS administration. LPS resulted in the death of 1 of 12 nontumor-bearing (NTB) rats and a transient weight loss in the survivors. This same dose of LPS, however, resulted in death for 10 of 12 WCT rats with tumor burdens less than 4% of body weight. The response of WCT rats 5 h after LPS was then compared with that of age-matched NTB rats. Plasma albumin concentrations were not affected by LPS in NTB rats but were significantly decreased in WCT rats. Peripheral blood gases were not consistently affected by LPS in either group. Peripheral blood white cell counts, except monocytes, were significantly decreased by LPS in both groups. Monocyte counts in peripheral blood were further reduced in WCT rats compared with NTB rats receiving LPS. The presence of the WCT significantly enhanced the LPS-associated increase in spleen weight. Liver weights were lower in LPS rats but there was no effect of the presence of WCT. The LPS-associated increase in plasma nitrate/nitrite concentration was enhanced by the WCT. The plasma arginine and citrulline concentrations were altered in a manner consistent with an increase in nitric oxide synthesis. An increase in plasma ornithine concentration suggests an increase in arginine metabolism by arginase. The plasma concentration of alanine aminotransferase was significantly elevated when WCT rats received LPS, suggesting enhanced hepatic dysfunction. The plasma blood urea nitrogen concentration was elevated by LPS to a greater extent in the WCT rats than in the NTB controls, indicating increased renal dysfunction. These results demonstrate that the Ward colon tumor increases the host lethal response to the endotoxin, a toxic product of bacterial infections. The mechanisms of lethality may include an increased nitric oxide synthesis in WCT rats and enhanced liver and renal toxicity.

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References

  • Alleva DG, Askew D, Burger CJ, Elgert KD (1994) Macrophage priming and activation during fibrosarcoma growth: expression of c-myb, c-myc, c-fos, and c-fms. Immunol Invest 23:457–472

    Google Scholar 

  • Berendt MJ, Newborg MF, North RJ (1980) Increased toxicity of endotoxin for tumor-bearing mice and mice responding to bacterial pathogens: macrophage activation as a common denominator. Infect Immun 28:645–647

    Google Scholar 

  • Bune AJ, Shergill JK, Cammark R, Cook HI (1995)l-Arginine depletion by arginase reduces nitric oxide production in endotoxic shock: an electron paramagnetic resonance study. FEBS 366:127–130

    Google Scholar 

  • Burger CJ, Elgert KD (1983) Level of macrophage induction during tumor growth: primed or activated? Immunol Commun 12:285–290

    Google Scholar 

  • Castro GA, Malone C, Smith S (1980) Systemic anti-inflammation effect associated with enteric trichinellosis in the rat. J Parasitol 66:407–412

    Google Scholar 

  • Chamulitrat W, Blazka ME, Jordan SJ, Luster MI, Mason RP (1995) Tumor necrosis factor- and nitric oxide production in endotoxin-primed rats administered carbon tetrachloride. Life Sci 57:2273–2280

    Google Scholar 

  • DeWys WD, Begg C, Lavin PT et al (1980) Prognostic effect of weight loss prior to chemotherapy in cancer patients. Am J Med 69:491–497

    Google Scholar 

  • Downs TR, Dage RC, French JF (1995) Reduction in endotoxin-induced organ dysfunction and cytokine secretion by a cyclic nitrone antioxidant. Int J Immunopharmacol 17:571–580

    Google Scholar 

  • Espat NJ, Moldawer LL, Copeland EM III (1995) Cytokinemediated alterations in host metabolism prevent nutritional repletion in cachectic cancer patients. J Surg Oncol 58:77–82

    Google Scholar 

  • Gardner TE, Naama H, Daly JM (1995) Peritoneal and splenic macrophage functions in the tumor-bearing host. J Surg Res 59:305–310

    Google Scholar 

  • Grossie VB Jr (1996) Citrulline and arginine increase the growth of the Ward colon tumor in parenterally fed rats. Nutr Cancer 26:91–97

    Google Scholar 

  • Grossie VB Jr, Nishioka K, Ajani JA, Ota DM (1992) Substituting ornithine for arginine in total parenteral nutrition eliminates enhanced tumor growth. J Surg Oncol 50:161–167

    Google Scholar 

  • Hey C, Wessler I, Reake K (1995) Nitric oxide synthase activity is inducible in rat, but not rabbit alveolar macrophages, with a concomitant reduction in arginase activity. Naunyn Schmiedebergs Arch Pharmacol 351:651–659

    Google Scholar 

  • Inagaki J, Rodriguez V, Bodey GP (1974) Causes of death in cancer patients. Cancer 33:568–573

    Google Scholar 

  • Klastersky J, Daneau D, Verhest A (1972) Causes of death in patients with cancer. Eur J Cancer 8:149–154

    Google Scholar 

  • Koga K, Sata T, Nanri H, Sann H, Ikeda M, Shigematsu A (1995) Role of nitric oxide during carrageenan-sensitized endotoxin shock in mice. Life Sci 57:2309–2316

    Google Scholar 

  • Mailman D (1994) Differential effects of lumenall-arginine and NG-nitrol-arginine on blood flow and water fluxes in rat ileum. Br J Pharmacol 112:304–310

    Google Scholar 

  • Modolell M, Corraliza IM, Link F, Soler G, Eichmann K (1995) Reciprocal regulation of the nitric oxide synthase/arginase balance in mouse bone marrow-derived macrophages by TH1 and TH2 cytokines. Eur J Immunol 25:1101–1104

    Google Scholar 

  • Nixon DW, Heymsfield SB, Cohen AE, Kutner MH, Ansley J, Lawson DH, Rudman D (1980) Protein-calorie under nutrition in hospitalized cancer patients. Am J Med 68:683–690

    Google Scholar 

  • Palacious M, Padron J, Glaria L, Rojas A, Delgado R, Knowles R, Moncaca S (1993) Chlorpromazine inhibits both the constitutive nitric oxide synthase and the induction of nitric oxide synthase after LPS challenge. Biochem Biophys Res Commun 196:280–286

    Google Scholar 

  • Pike MC, Snyderman R (1976) Depression of macrophage function by a factor produced by neoplasms: a mechanism for abrogation of immune surveillance. J Immunol 117:1243–1249

    Google Scholar 

  • Robertson CA, Green RG, Niedzwiecki L, Harrsion RK, Grant SK (1993) Effect of nitric oxide synthase substrate analog inhibitors on rat liver arginase. Biochem Biophys Res Commun 197:523–528

    Google Scholar 

  • Tanabe N, Goto T, Inagaki J, Kimura K. (1991) Septicemia in patients with solid cancers in a japanese cancer hospital-the significance of candidemia for cancer patients. Jpn J Clin Oncol 21:52–58

    Google Scholar 

  • Walker TM, Burger CJ, Elgert KD (1994) Tumor growth alters T cell and macrophage production of and responsiveness to granulocyte/macrophage-colony-stimulating factor: partial dysregulation through interleukin-10. Cell Immunol 154:342–357

    Google Scholar 

  • Wang WW, Jenkinson CP, Griscavage JM, Kern RM, Arabolos NS, Byrns RR, Cederbaum SD, Ignarro LJ (1995) Co-induction of arginase and nitric oxide synthase in murine macrophages activated with lipopolysaccharide. Biochem Biophys Res Commun 210:1009–1016

    Google Scholar 

  • Warren S (1932) The immediate causes of death in cancer. Am J Med Sci 184:610–615

    Google Scholar 

  • Waymack JP, Yurt RW (1990) The effect of blood transfusions on immune function. J Surg Res 48:147–153

    Google Scholar 

  • Waymack JP, Robb E, Alexander W (1987) Effect of transfusion on immune function in a traumatized animal model. Arch Surg 122:935–939

    Google Scholar 

  • Waymack J, Fernandes G, Cappelli PJ, Burleson DG, Guzman RF, Mason AD, Pruitt BA, Jr. (1991) Alterations in host defense associated with anesthesia and blood transfusions. Arch Surg 126:59–62

    Google Scholar 

  • Yurochko AD, Askew D, Burger CJ, Elgert KD. (1990) Normal and tumor-bearing host splenic macrophage responses to lipopolysaccharide. Immunological Invest 19:41–55

    Google Scholar 

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Grossie, V.B., Mailman, D. Influence of the Ward colon tumor on the host response to endotoxin. J Cancer Res Clin Oncol 123, 189–194 (1997). https://doi.org/10.1007/BF01240314

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  • DOI: https://doi.org/10.1007/BF01240314

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