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1999 | 46 | 1 |

Tytuł artykułu

Decomposition of lipid hydroperoxides enhances the uptake of low density lipoprotein by macrophages

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
This study examined the roles of low-density lipoprotein (LDL) lipid oxidation and peroxide breakdown in its conversion to a form rapidly taken up by mouse peritoneal macrophages. Oxidation of the LDL without decomposition of the hydroperoxide groups was performed by exposure to gamma radiation in air-saturated solutions. Virtually complete decomposition of the hydroperoxides was achieved by treatment of the irradiated LDL with Cu2+ under strictly anaerobic conditions. No uncontrolled LDL uptake by macrophages occurred when the lipoprotein contained less than 150 hydroperoxide groups per particle. More extensively oxidized LDL was taken up and degraded by mouse macrophages significantly faster than the native lipoprotein. The uptake was greatly enhanced by treatment of the oxidized LDL with Cu2+. A significant proportion of the LDL containing intact or copper-decomposed LDL hydroperoxide groups accumulated within the macrophages without further degradation. Treatment of the radiation-oxidized LDL with Cu2+ was accompanied by aggregation of the particles. Competition studies showed that the oxidized LDL was taken up by macrophages via both the LDL and the scavenger receptors, whereas the copper-treated lipoprotein entered the cells only by the scavenger pathway. Phagocytosis also played an important role in the metabolism of all forms of the extensively modified LDL. Our results suggest that minimally-oxidized LDL is not recognized by the macrophage scavenger receptors unless the lipid hydroperoxide groups are decomposed to products able to derivatize the apo B protein.

Wydawca

-

Rocznik

Tom

46

Numer

1

Opis fizyczny

p.31-42,fig.

Twórcy

autor
  • Macquarie University, Sydney 2109, Australia
autor

Bibliografia

  • 1. Goldstein, J.L., Ho, Y.K., Basu, S.K. & Brown, M.S. (1979) Binding site on macrophages that mediates uptake and degradation of acety- lated low density lipoprotein, producing mas­sive cholesterol deposition. Proc. Natl Acad. Sci. U.S.A. 76, 333-337.
  • 2. Fogelman, A.M., Shechter, L, Saeger, J., Hokom, M., Child, J.S. & Edwards, P.A. (1980) Malondialdehyde alteration of low den­sity lipoproteins leads to cholesterol ester ac­cumulation in human monocyte-macrophages. Proc. Natl Acad. ScL U.S.A 77,2214-2218.
  • 3. Hoff, H.F, O'Neil. J., Chisolm, G.M., Cole, T.B., Quehenberger, O., Esterbauer, H. & Jur- gens, G. (1989) Modification of low density lipoprotein with 4-hydroxynonenal induces uptake by macrophages. Arteriosclerosis 9, 538-549.
  • 4. Henriksen, T., Mahoney, E.M. & Steinberg, D. (1981) Enhanced macrophage degradation of low density lipoprotein previously incu­bated with cultured endothelial cells: recogni­tion by receptor for acetylated low density lipoproteins. Proc. Natl Acad, ScL U.S.A. 78, 6499-6503.
  • 5. Parthasarathy, S., Printz, D.J., Boyd, D., Joy, L. & Steinberg, D. (1986) Macrophage oxida­tion of low density Lipoprotein generates a modified form recognized by the scavenger re­ceptor. Arteriosclerosis 6, 505-510.
  • 6. Khoo, J.C., Miller, E., McLoughlin, P. & Stein­berg, D. (1988) Enhanced macrophage uptake of low density lipoprotein after self aggre­gation. Arteriosclerosis 8, 348-358.
  • 7. Hoff, H.F., Wbitaker, T.E. & O'Neil, J. (1992) Oxidation of low density lipoprotein leads to particle aggregation and altered macrophage recognition. J. Biol Chem. 267, 602-609.
  • 8. Steinberg, D., Parthasarathy, S., Carcw, T.E., Khoo, J.C., & Witztum, J.L. (1989) Beyond cholesterol. Modifications of low-density lipo­protein that increase its atherogenicity. N. Engl. J. Med. 320, 915-924.
  • 9. Esterbauer, H. & Ramos, P. (1995) Chemistry and pathophysiology of oxidation of LDL. Rev. Physiol Biochem. Pharmacol. 127, 31-64.
  • 10. Klatt, P. & Esterbauer, H. (1996) Oxidative hypothesis of atherogenesis. J. Cardiovascular Risk 3, 346-351.
  • 11. Hunt, J.V., Bailey, J.R., Schultz, D.L., McKay, A.G. & Mitchinson, M.J. (1994) Apolipopro- tein oxidation in the absence of lipid peroxida­tion enhances LDL uptake by macrophages. FEBS Lett. 349, 375-379.
  • 12. Gebicki, J.M., Jurgens, G. & Esterbauer, H. (1991) Oxidation of low-density lipoprotein in vitro; in Oxidative Stress: Oxidants and Anti­oxidants (Sie3, H., ed.) pp. 371-397, Academic Press, London.
  • 13. Bedwell, S., Dean, R.T. & .Jessup, W. (1989) The action of defined oxygen-centered free radicals on human low-density lipoprotein. Biochem. J. 262, 707-712.
  • 14. Redgrave, T.G., Roberts, D.C.K. & West, C.E. (1975) Separation of plasma lipoproteins by density gradient ultracentrifugation. Anal Biochem. 65, 42-49.
  • 15. Bilheimer, D.W., Eisenberg, S. & Levy, R.I. (1972) The metabolism of very low density lipoprotein proteins. I. Preliminary in vitro and in vivo observations. Biochim. Biophys. Acta 260, 212-221.
  • 16. Hicks, M. & Gebicki, J.M. (1979) A spectro­photometry method for the determination of lipid hydroperoxides. Anal Biochem. 99, 249-253.
  • 17. Babiy, A.V., Gebicki, J.M. & Sullivan, D.R. (1990) Vitamin E content and low density lipo­protein oxidizability induced by free radicals. Atherosclerosis 81, 175-182.
  • 18. Gamble, W., Vaughan, M., Kruth, H.S. & Avi- gan, J. (1978) Procedure for determination of free and total cholesterol in micro- or nano­gram amounts suitable for studies with cul­tured cells. J Lipid Res. 19. 1068-1070.
  • 19. Lowry, O.H., Rosebrough, N.J., Farr, A.L. & Randall, RJ. (1951) Protein measurement with the Folin reagent J. Biol Chenu 193, 265-275.
  • 20. Forte, T.M. & Nordhausen, R.W. (1986) Elec­tron microscopy of negatively stained lipopro­teins. Method« Eruymvl. 128, 443-457.
  • 21. Janero, D.R. & Burghardt, B. (1989) Thiobar- bituric acid-reactive malondialdehyde forma­tion during superoxide-dependent, iron-cata­lyzed lipid oxidation: Influence of oxidation conditions. Lipids 24, 125-131.
  • 22. O'Brien, P.J.O. (1969) Intracellular mecha­nisms for the decomposition of a lipid perox­ide. I. Decomposition of a lipid peroxide by metal ions, heme compounds, and nucleo- philes. Canad. J. Biochenu 47, 485-492.
  • 23. Lougheed, M., Zhang, H. & Steinbrecher, U.P. (1991) Oxidized low density lipoprotein is re­sistant to cathepsins and accumulates within macrophages. J. Biol Chenu 22, 14519- 14525.
  • 24. Esterbauer, H., Dieber-Totheneder, M., Waeg, G., Striegl, G. & Jurgens, G. (1990) Biochemi­cal, structural and functional properties of oxidized low-density lipoprotein. Chem. Res. Toxicol 3, 77-92.
  • 25. Esterbauer, H., Zollner, H. & Schaur, R.J. (1990) Aldehydes formed by lipid oxidation: Mechanisms of formation, occurrence and de­termination; in Membrane Lipid Oxidation (Vigo-Pelfrey, C., ed.) pp. 239-268, CRC Press, Boca Raton.
  • 26. Wolff, S.P. & Dean, R.T. (1986) Fragmenta­tion of proteins by free radicals and its effect on their susceptibility to enzymic hydrolysis. Biochem, J. 234, 399-403.
  • 27. Hunt, J.V. & Dean, R.T. (1989) Free radical- mediated degradation of proteins: The protec­tive and deleterious effects of membranes. Biochem. Biophys. Res. Commun. 162, 1076- 1084.
  • 28. Davies, K.J.A., Lin, S.W. & Pacifici, R.E. (1987) Protein damage and degradation by oxygen radicals. J. Biol Chem. 262, 9914- 9920.

Typ dokumentu

Bibliografia

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Identyfikator YADDA

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