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Updated: Jun 4, 2026

Cell-free Biochemical Fluorometric Enzymatic Assay for High-throughput Measurement of Lipid Peroxidation in High Density Lipoprotein
Published on: October 12, 2017
Structure-activity analysis of diffusible lipid electrophiles associated with phospholipid peroxidation:
Colleen E McGrath1, Keri A Tallman, Ned A Porter
1Department of Biochemistry, Vanderbilt University School of Medicine, Nashville, Tennessee 37232-0146, USA.
Abstract:
Electrophile-mediated disruption of cell signal-ing is involved in the pathogenesis of several diseases including atherosclerosis and cancer. Diffusible and membrane bound lipid electrophiles are known to modify DNA and protein substrates and modulate cellular pathways including ER stress, antioxidant response, DNA damage, heat shock, and apoptosis. Herein we report on a structure-activity relationship for several electrophilic analogues of 4-hydroxynonenal (HNE) and 4-oxononenal (ONE) with regard to toxicity and anti-inflammatory activity. The analogues studied were the oxidation products of HNE and ONE, HNEA/ONEA, the in vivo hydrolysis products of oxidized phosphatidylcholine, COOH-HNE/COOH-ONE, and their methyl esters, COOMe-HNE/ONE. The reactivity of each compound toward N-acetylcysteine was determined and compared to the toxicity toward a human colorectal carcinoma cell line (RKO) and a human monocytic leukemia cell line (THP-1). Further analysis was performed in differentiated THP-1 macrophages to assess changes in macrophage activation and pro-inflammatory signaling in response to each lipid electrophile. HNE/ONE analogues inhibited THP-1 macrophage production of the pro-inflammatory cytokines, IL-6, IL-1β, and TNFα, after lipopolysaccharide (LPS)/IFNγ activation. Inhibition of cytokine production was observed at submicromolar concentrations of several analogues with as little as 30 min of exposure. Phagocytosis of fluorescent beads was also inhibited by lipid electrophile treatment. Lipid electrophiles related to HNE/ONE are both toxic and anti-inflammatory, but the anti-inflammatory effects in human macrophages are observed at nontoxic concentrations. Neither toxicity nor anti-inflammatory activity are strongly correlated to the reactivity of the model nucleophile, N-acetylcysteine.
Insights
Lipid electrophiles, related to 4-hydroxynonenal (HNE) and 4-oxononenal (ONE), show both toxicity and anti-inflammatory effects. These compounds inhibit pro-inflammatory cytokine production in human macrophages at non-toxic concentrations.
Area of Science:
- Biochemistry
- Cell Biology
- Immunology
Background:
- Electrophiles disrupt cell signaling, contributing to diseases like atherosclerosis and cancer.
- Lipid electrophiles modify DNA and proteins, impacting cellular pathways such as ER stress, DNA damage, and apoptosis.
Purpose of the Study:
- To investigate the structure-activity relationship of 4-hydroxynonenal (HNE) and 4-oxononenal (ONE) analogues.
- To assess the toxicity and anti-inflammatory potential of these lipid electrophiles in human cell lines.
Main Methods:
- Synthesized and tested analogues including oxidation products (HNEA/ONEA), hydrolysis products (COOH-HNE/COOH-ONE), and methyl esters (COOMe-HNE/ONE).
- Determined reactivity with N-acetylcysteine and assessed cytotoxicity in RKO and THP-1 cell lines.
- Evaluated effects on lipopolysaccharide (LPS)/interferon-gamma (IFNγ)-activated THP-1 macrophages, measuring cytokine production and phagocytosis.
Main Results:
- HNE/ONE analogues inhibited the production of pro-inflammatory cytokines (IL-6, IL-1β, TNFα) in activated THP-1 macrophages.
- Inhibition occurred at submicromolar concentrations with short exposure times (30 min).
- Phagocytosis of fluorescent beads was also reduced by lipid electrophile treatment.
Conclusions:
- Lipid electrophiles related to HNE/ONE exhibit both toxic and anti-inflammatory properties.
- Anti-inflammatory effects in human macrophages are observed at concentrations that are not toxic.
- Reactivity with N-acetylcysteine did not strongly correlate with observed toxicity or anti-inflammatory activity.
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