Age-related changes in membrane lipid composition, fluidity and respiratory burst in rat peritoneal neutrophils
E. Alvarez
Departamento de Bioquímica, Bromatología y Toxicología, Facultad de Farmacia,
Search for more papers by this authorF. Sobrino
Departamento de Bioquímica Médica y Biología Molecular, Universidad de Sevilla, Spain
Search for more papers by this authorC. Santa-María
Departamento de Bioquímica, Bromatología y Toxicología, Facultad de Farmacia,
Search for more papers by this authorE. Alvarez
Departamento de Bioquímica, Bromatología y Toxicología, Facultad de Farmacia,
Search for more papers by this authorF. Sobrino
Departamento de Bioquímica Médica y Biología Molecular, Universidad de Sevilla, Spain
Search for more papers by this authorC. Santa-María
Departamento de Bioquímica, Bromatología y Toxicología, Facultad de Farmacia,
Search for more papers by this authorAbstract
The O·2−. production has been studied in rat peritoneal neutrophils of different age (3, 12 and 24 months), in order to analyse whether the neutrophil respiratory burst is modified with increasing age. To stimulate NADPH oxidase, the enzyme responsible for the respiratory burst, two stimuli that act in different way have been used: phorbol myristate acetate (PMA) and N-formyl-methionyl-leucyl-phenylalanine (N-FMLP). Production of O·2− decreased with age in neutrophils stimulated with N-FMLP (about 40%), but not in the stimulated with PMA. No difference in NADPH oxidase activity was found with age. The NADPH is supplied to the respiratory burst mainly by the pentose phosphate shunt. A progressive and significant decrease in the two most important enzymes of this route, glucose-6-phosphate dehydrogenase and 6-phosphogluconate dehydrogenase, was detected as a function of age; in spite of this reduction, the NADPH produced by cells from old animals seems not limiting for the O·2− production. The N-FMLP-induced decrease in the O·2− production may be related to the age-dependent increase in the membrane fluidity observed. A decline in the cholesterol/phospholipid ratio and a rise in the total polyunsaturated fatty acids content were found, that correlated well with the increase in the membrane fluidity. The decrease (50%) of phosphatidylinositols in the 24-month-old animals may be also related to the age-impairment in the respiratory burst found after stimulation with N-FMLP. These studies suggest that the age-related alterations in neutrophil may result in diminished neutrophil function and increased susceptibility to infection in the ageing.
References
- 1 Schwab A & Weksler ME. Ageing and the Immune Response New York. Marcel Dekker, 1987.
- 2 Collins JM, Scott RB, McClish DK, Taylor JR, McLean Grogan W. Altered membrane anisotropy gradients of plasma membranes of living peripheral blood leukocytes in ageing and Alzheimer's disease. Mech Ageing Dev 1991; 59: 153–62.
- 3 Butcher S, Chahel H, Lord JM. Ageing and the neutrophil: no appetite for killing? Immunol 2000; 100: 411–6.
- 4 Babior BM. Oxygen-dependent microbial killing by phagocytes. N Engl Med 1978; 298: 659–68.
- 5 Morel F, Doussiere JV, Vignais PV. The superoxide-generating oxidase of phagocytic cells. Physiological, molecular and pathological aspects. Eur J Biochem 1991; 201: 523–46.
- 6 Paragh G, Kovacs E, Seres I, Keresztes T, Balogh Z, Szabo J, Teichmann F, Foris G. Altered signal pathway in granulocytes from patients with hypercholesterolemia. J Lipid Res 1999; 40: 1728–33.
- 7 Thompson PJ, Misso NLA, Passarelli M, Phillips MS. The effect of eicosapentaenoic acid consumption on human neutrophil chemiluminescence. Lipids 1991; 26: 1223–6.
- 8 Alvarez E, Santa María C, Machado A. Respiratory burst reaction changes with age in rat peritoneal macrophages. Biochim Biophys Acta 1993; 1179: 247–52.
- 9 Alvarez E, Machado A, Sobrino F, Santa María C. Nitric oxide and superoxide anion production decrease with age in resident and activated rat peritoneal macrophages. Cell Immunol 1996; 169: 152–5.DOI: 10.1006/cimm.1996.0103
- 10 Alvarez E, Conde M, Machado A, Sobrino F, Santa María C. Decrease in free-radical production with age in rat peritoneal macrophages. Biochem J 1995; 312: 555–60.
- 11 Alvarez E, Ruiz-Gutiérrez V, Santa María C, Machado A. Age-dependent modification of lipid composition and lipid structural order parameter of rat peritoneal macrophage membranes. Mech Ageing Dev 1993; 71: 1–12.
- 12 Cunningham FM, Smith MJH, Ford-Hutchinson AW, Walker JR. Migration of peritoneal polymorphonuclear leukocytes in the rat. J Pathol 1979; 128: 15–9.
- 13 Babior BM, Kipnes RS, Curnutte JT. Biological defence mechanisms. The production by leukocytes of superoxide, a potential bactericidal agent. J Clin Invest 1973; 52: 741–4.
- 14 Levy HR, Raineri RR, Nevaldine BH. On the structure and catalytic function of mammary glucose 6-phosphate dehydrogenase. J Biol Chem 1966; 241: 2181–7.
- 15 Dror Y, Sason HF, Watson JJ, Johnson BC. Glucose 6-phosphate dehydrogenase assay in liver and blood. Clin Chem Acta 1970; 28: 291–8.
- 16 Heyneman RA & Vercauteren RE. Activation of a NADPH oxidase from horse polymorphonuclear leukocytes in a cell-free system. J Leuk Biol 1984; 36: 751–9.
- 17 Markwell MAK, Haas SM, Bieber LL, Tolbert NE. A modification of the Lowry procedure to simplify protein determination in membrane and lipoprotein samples. Anal Biochem 1978; 87: 206–15.
- 18 Bromberg Y & Pick E. Activation of NADPH-dependent superoxide production in a cell-free system by sodium dodecyl sulphate. J Biol Chem 1985; 260: 13539–45.
- 19
Folch J,
Lees M,
Sloan-Stanley GH.
A simple method for the isolation and purification of total lipids from animal tissues.
J Biol Chem
1957; 26: 497–509.
10.1016/S0021-9258(18)64849-5 Google Scholar
- 20 Shanta NC & Ackman RG. Nervonic acid versus tricosanoic acid as internal standards in quantitative gas chromatographic analyses of fish oil longer-chain n-3 polyunsaturated fatty acid methyl esters. Lipids 1990; 25: 570–4.
- 21 Molina MT, Vazquez CM, Ruiz-Gutiérrez V. Changes in both acyl-CoA: cholesterol acyltransferase activity and microsomal lipid composition in rat liver induced by distal-small-bowel resection. Biochem J 1989; 260: 115–9.
- 22 Vorbeck ML, Martin AP, Long JW, Smith JM, Orr RR. Ageing-dependent modification of lipid composition and lipid structural order parameter of hepatic mitochondria. Arch Biochem Biophys 1982; 217: 351–61.
- 23 Pottel H, Van Der Meer W, Herreman W. Correlation between the order parameter and the steady-state fluorescence anisotropy of 1,6-diphenyl-1, 3,5–hexatriene and an evaluation of membrane fluidity. Biochim Biophys Acta 1983; 730: 181–6.
- 24 Olson SC, Tyagi SR, Lambeth JD. Fluoride activates diacylglycerol and superoxide generation in human neutrophils via PLD/PA phosphohydrolase-dependent and -independent pathways. FEBS Lett 1990; 272: 19–24.
- 25 Wolfson M, McPhail LC, Nasrallah VN, Snyderman R. Phorbol myristate acetate mediates redistribution of protein kinase C in human neutrophils: potential role in the activation of the respiratory burst enzyme. J Immunol 1985; 135: 2057–62.
- 26 Santa Maria C & Machado A. Age and sex related differences in some rat renal NADPH-consuming detoxification enzymes. Arch Gerontol Geriatr 1986; 5: 235–47.
- 27 Santa Maria C & Machado A. Effects of development and ageing on pulmonary NADPH-cytochrome c reductase, glutathione peroxidase, glutathione reductase and thioredoxin reductase activities in male and female rats. Mech Ageing Dev 1988; 44: 115–25.
- 28 Tamura M, Tamura T, Tyagi SR, Lambeth JD. The superoxide generating respiratory burst oxidase of human neutrophil plasma membrane. Phosphatidylserine as an effector of the activated enzyme. J Biol Chem 1988; 263: 17621–6.
- 29 Scott RB, Wood HE, Matin S, Kukreja RC, Hess ML. Superoxide radical production after phorbol ester stimulation in neutrophils of aged donors. Exp Gerontol 1990; 25: 523–32.
- 30 Indelicato SR, Udupa KB, Balazovich KJ, Boxer LA, Lipschitz DA. Effect of age on phorbol-ester stimulation of human neutrophils. J Gerontol 1990; 45: 75–80.
- 31 Rubinek T & Levy R. Arachidonic acid increases the activity of the assembled NADPH oxidase in cytoplasmic membranes and endosomes. Biochim Biophys Acta 1993; 1176: 51–6.
- 32 Lipschitz DA, Udupa KB, Boxer LA. The role of calcium in the age-related decline of neutrophil function. Blood 1988; 71: 659–65.
- 33 Lipschitz DA, Udupa KB, Indelicato SR, Das M. Effect of age on second messenger generation in neutrophils. Blood 1991; 78: 1347–53.
- 34 Nagel JE, Pyle RS, Chrest FJ, Adler WH. Oxidative metabolism and bactericidal capacity of polymorphonuclear leukocytes from normal young and aged adults. J Gerontol 1982; 37: 529–34.
- 35 Rivnay B, Bergman S, Shinitzky M, Globerson A. Correlation between membrane viscosity, serum cholesterol, lymphocyte activation and ageing in man. Mech Ageing Dev 1980; 12: 119–26.
- 36 Shinitzky M. Patterns of lipid changes in membranes of the aged brain. Gerontology 1987; 33: 149–54.
- 37 Perskin MH & Cronstein BN. Age-related changes in neutrophil structure and function. Mech Ageing Dev 1992; 64: 303–13.
- 38 Noble JM & Thomas TH. Ford GA. Effect of age on plasma membrane asymmetry and membrane fluidity in human leukocytes and platelets. J Gerontol Biol Sci Med Sci 1999; 54: 601–6.
- 39 Yuli I, Tomonaga A, Snyderman R. Chemoattractant receptor functions in human polymorphonuclear leukocytes are divergently altered by membrane fluidizers. Proc Natl Acad Sci USA 1982; 79: 5906–10.
- 40 Shinitzky M & Barenholz Y. Fluidity parameters of lipid regions determined by fluorescence polarisation. Biochim Biophys Acta 1978; 515: 367–94.
- 41 Shinitzky M & Barenholz Y. Dynamics of the hydrocarbon layer in liposomes of lecithin and sphingomyelin containing dicetylphosphate. J Biol Chem 1974; 249: 2652–8.
- 42 Fulop T Jr. Signal transduction changes in granulocytes and lymphocytes with ageing. Immunol Lett 1994; 40: 259–68.
- 43 Utsuyama M, Varga Z, Fukami K, Homma Y, Takenawa T, Hirokawa K. Influence of age on the signal transduction of T cells in mice. Int Immunol 1993; 5: 1177–82.
- 44 De Boland AR, Facchinetti MM, Balogh G, Massheimer V, Boland RL. Age-associated decrease in inositol 1,4,5-trisphosphate and diacylglycerol generation by 1, 25 (OH) 2–vitamin D3 in rat intestine. Cell Signal. 1996; 8: 153–7.
- 45 Martini A, Battaini F, Govoni S, Volpe P. Inositol 1,4,5-triphosphate receptor and ryanodine receptor in the ageing brain of Wistar rats. Neurobiol Ageing 1994; 15: 203–6.
- 46 Igwe OJ & Ning L. Inositol 1,4,5-triphosphate arm of the phosphatidylinositide signal transduction pathway in the rat cerebellum during ageing. Neurosci Lett 1993; 164: 167–70.
- 47 Smith RJ, Justen JM, Bleasdale JE, Sly LM. NPC15669-modulated human polymorphonuclear neutrophil functional responsiveness: effects on receptor-coupled signal transduction. Br J Pharmacol 1995; 114: 1694–702.
- 48 Fulop T Jr, Varga Z, Csongor J, Foris G, Leovey A. Age related impairment in phosphatidylinositol breakdown of polymorphonuclear granulocytes. FEBS Lett 1989; 245: 249–52.
- 49 Fraeyman N, Vanscheeuwijck P, De Wolf M, Quatacker J. Influence of ageing on fluidity and coupling between beta-receptors and G-proteins in rat lung membranes. Life Sci 1993; 53: 53–60.
- 50 Muzulu SI, Bing RF, Norman RI. Human erythrocyte membrane fluidity and calcium pump activity in primary combined hyperlipidaemia. Clin Sci 1995; 88: 307–10.
- 51 Wenisch C, Patruta S, Daxbock F, Krause R, Horl W. Effect of age on human neutrophil function. J Leukoc Biol 2000; 67: 40–5.
- 52 Gaudry M, Combadiere C, Marquetty C, Sheibani A, El Benna J, Hakim J. Dissimilarities in superoxide anion production by human neutrophils stimulated by phorbol myristate acetate or phorbol dibutyrate. J Immunopharmacol 1990; 19: 23–32.
- 53 Di Virgilio F, Lew DP, Pozzan T. Protein kinase C activation of physiological processes in human neutrophils at vanishingly small cytosolic Ca2+ levels. Nature 1984; 310: 691–6.
- 54
Lew DP,
Wollheim CB,
Walldvogel FA,
Pozzan T.
Modulation of cytosolic-free calcium transients by changes in intracellular calcium-buffering capacity: correlation with exocytosis and
production in human neutrophils. J Cell Biol 1984; 99: 1212–20.