Literature DB >> 8245725

Mechanisms of copper- and iron-dependent oxidative modification of human low density lipoprotein.

S M Lynch1, B Frei.   

Abstract

Oxidative modification of low density lipoprotein (LDL) has been suggested as a causal step in atherosclerosis, and both redox-active transition metal ions and superoxide (O2.-) have been implicated in this process. In order to determine the mechanisms of metal ion-dependent oxidation of LDL in the presence of O2.-, LDL was exposed to hypoxanthine (HX) and purified xanthine oxidase (XO) without and with added CuCl2 or Fe(3+)-citrate. Production of O2.- and hydrogen peroxide (H2O2) at pH 7.4 by the HX/XO system in the absence of metal ions was not sufficient to oxidize LDL. Preincubation of LDL with Cu2+ or Fe(3+)-citrate with subsequent removal of metal ions not tightly bound to the lipoprotein did not enable the HX/XO system to oxidize LDL. However, incubation of LDL with HX/XO and Cu2+ resulted in extensive modification of LDL. Exposure of LDL to Cu2+ alone also led to extensive modification, although the LDL was initially free of detectable amounts of lipid hydroperoxides (LOOH), i.e., < 0.005 molecules of LOOH per LDL particle. Although HX/XO and Cu2+ did not produce detectable amounts of O2.- or aqueous hydroxyl radicals (HO.), oxidation of LDL under these conditions was partially inhibited by superoxide dismutase, and completely inhibited by the HO. scavenger thiourea. In contrast to Cu(2+)-mediated oxidation of LDL, oxidation mediated by Fe(3+)-citrate was strictly dependent upon O2.-, as it was abolished by omission of the HX/XO system or by addition of superoxide dismutase to this system.(ABSTRACT TRUNCATED AT 250 WORDS)

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Year:  1993        PMID: 8245725

Source DB:  PubMed          Journal:  J Lipid Res        ISSN: 0022-2275            Impact factor:   5.922


  35 in total

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3.  Comparing the effects of different dietary organic acids on the growth, intestinal short-chain fatty acids, and liver histopathology of red hybrid tilapia (Oreochromis sp.) and potential use of these as preservatives.

Authors:  Mahdi Ebrahimi; Nor Hafizah Daeman; Chou Min Chong; Ali Karami; Vikas Kumar; Seyed Hossein Hoseinifar; Nicholas Romano
Journal:  Fish Physiol Biochem       Date:  2017-03-27       Impact factor: 2.794

4.  The cbb 3-type cytochrome oxidase assembly factor CcoG is a widely distributed cupric reductase.

Authors:  Dorian Marckmann; Petru-Iulian Trasnea; Johannes Schimpf; Christine Winterstein; Andreea Andrei; Stefan Schmollinger; Crysten E Blaby-Haas; Thorsten Friedrich; Fevzi Daldal; Hans-Georg Koch
Journal:  Proc Natl Acad Sci U S A       Date:  2019-09-30       Impact factor: 11.205

5.  Older plasma lipoproteins are more susceptible to oxidation: a linking mechanism for the lipid and oxidation theories of atherosclerotic cardiovascular disease.

Authors:  R L Walzem; S Watkins; E N Frankel; R J Hansen; J B German
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6.  Role of endogenous ceruloplasmin in low density lipoprotein oxidation by human U937 monocytic cells.

Authors:  E Ehrenwald; P L Fox
Journal:  J Clin Invest       Date:  1996-02-01       Impact factor: 14.808

Review 7.  Reactive oxygen and oxidative stress: N-formyl kynurenine in photosystem II and non-photosynthetic proteins.

Authors:  Tina M Dreaden Kasson; Bridgette A Barry
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Review 8.  Oxidized low-density lipoprotein.

Authors:  Sampath Parthasarathy; Achuthan Raghavamenon; Mahdi Omar Garelnabi; Nalini Santanam
Journal:  Methods Mol Biol       Date:  2010

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Journal:  Lipids       Date:  2003-03       Impact factor: 1.880

10.  Human macrophage-mediated oxidation of low-density lipoprotein is delayed and independent of superoxide production.

Authors:  B Garner; R T Dean; W Jessup
Journal:  Biochem J       Date:  1994-07-15       Impact factor: 3.857

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