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Hyperhomocysteinemia dysregulates plasma levels of polyunsaturated fatty acids-derived eicosanoids
Mohamed Al-Shabrawey1,2, Ahmed Elmarakby3,4, Yara Samra3,5
1Department of Foundational Medical Studies and Eye Research Center, Oakland University William Beaumont School of Medicine, Rochester, Michigan, USA.
Insights
Hyperhomocysteinemia (HHcy) alters lipid mediator metabolism, decreasing beneficial LOX and COX pathways while increasing harmful CYP activity. This dysregulation impacts eicosanoids, potentially contributing to cardiovascular disease development.
Area of Science:
- Biochemistry
- Cardiovascular Science
- Metabolomics
Background:
- Hyperhomocysteinemia (HHcy) is linked to cardiovascular diseases (CVD).
- Eicosanoids and homocysteine play roles in vascular injury.
- Previous work established links between homocysteine, eicosanoids, and vascular injury in specific conditions.
Purpose of the Study:
- To investigate the impact of HHcy on circulating lipid mediators derived from polyunsaturated fatty acids (PUFA).
- To determine how homocysteine affects eicosanoid metabolism in a mouse model of HHcy.
Main Methods:
- Utilized cystathionine-β-synthase heterozygous (cβs+/-) mice as a model for HHcy.
- Analyzed plasma eicosanoid levels using liquid chromatography-mass spectrometry (LC/MS).
- Compared lipid mediator profiles between cβs+/- mice and wild-type (WT) controls.
Main Results:
- Reduced activity of 12/15-lipoxygenase (12/15-LOX) and cyclooxygenase (COX) pathways in cβs+/- mice.
- Decreased levels of LOX and COX metabolites from omega-3 and omega-6 PUFA.
- Elevated cytochrome P450 (CYP) metabolites from PUFA, alongside increased soluble epoxide hydrolase (sEH) activity.
- Reduced bioavailability of anti-inflammatory epoxyeicosatrienoic acids (EETs) in cβs+/- mice.
Conclusions:
- HHcy significantly alters eicosanoid metabolism by suppressing LOX and COX activities while enhancing CYP activity.
- The observed increase in CYP metabolism and sEH activity leads to decreased EETs bioavailability.
- Dysregulation of eicosanoid metabolism is a potential mechanism contributing to HHcy-associated cardiovascular disease.
Abstract:
Hyperhomocysteinemia (HHcy) contributes to the incidence of many cardiovascular diseases (CVD). Our group have previously established crucial roles of eicosanoids and homocysteine in the incidence of vascular injury in diabetic retinopathy and renal injury. Using cystathionine-β-synthase heterozygous mice (cβs+/-) as a model of HHcy, the current study was designed to determine the impact of homocysteine on circulating levels of lipid mediators derived from polyunsaturated fatty acids (PUFA). Plasma samples were isolated from wild-type (WT) and cβs+/- mice for the assessment of eicosanoids levels using LC/MS. Plasma 12/15-lipoxygenase (12/15-LOX) activity significantly decreased in cβs+/- vs. WT control mice. LOX-derived metabolites from both omega-3 and omega-6 PUFA were also reduced in cβs+/- mice compared to WT control (P < 0.05). Contrary to LOX metabolites, cytochrome P450 (CYP) metabolites from omega-3 and omega-6 PUFA were significantly elevated in cβs+/- mice compared to WT control. Epoxyeicosatrienoic acids (EETs) are epoxides derived from arachidonic acid (AA) metabolism by CYP with anti-inflammatory properties and are known to limit vascular injury, however their physiological role is limited by their rapid degradation by soluble epoxide hydrolase (sEH) to their corresponding diols (DiHETrEs). In cβs+/- mice, a significant decrease in the plasma EETs bioavailability was obvious as evident by the decrease in EETs/ DiHETrEs ratio relative to WT control mice. Cyclooxygenase (COX) metabolites were also significantly decreased in cβs+/- vs. WT control mice. These data suggest that HHcy impacts eicosanoids metabolism through decreasing LOX and COX metabolic activities while increasing CYP metabolic activity. The increase in AA metabolism by CYP was also associated with increase in sEH activity and decrease in EETs bioavailability. Dysregulation of eicosanoids metabolism could be a contributing factor to the incidence and progression of HHcy-induced CVD.
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