Eicosapentaenoic acid reduces membrane fluidity, inhibits cholesterol domain formation, and normalizes bilayer width in atherosclerotic-like model membranes

Эйкозапентаеновая кислота снижает текучесть мембраны, подавляет формирование холестериновых доменов и нормализует ширину бислоя в модельных мембранах атеросклеротического типа
R. Preston Mason, Robert F. Jacob, S. K. Shrivastava, Samuel Sherratt, Amitabha Chattopadhyay
2016-10-09

atherosclerotic model membranesbilayer widthcholesterol crystalline domainseicosapentaenoic acid (EPA)membrane fluidity
Cholesterol crystalline domains characterize atherosclerotic membranes, altering vascular signaling and function. Omega-3 fatty acids reduce membrane lipid peroxidation and subsequent cholesterol domain formation. We evaluated non-peroxidation-mediated effects of eicosapentaenoic acid (EPA), other TG-lowering agents, docosahexaenoic acid (DHA), and other long-chain fatty acids on membrane fluidity, bilayer width, and cholesterol domain formation in model membranes. In membranes prepared at 1.5:1 cholesterol-to-phospholipid (C/P) mole ratio (creating pre-existing domains), EPA, glycyrrhizin, arachidonic acid, and alpha linolenic acid promoted the greatest reductions in cholesterol domains (by 65.5%, 54.9%, 46.8%, and 45.2%, respectively) compared to controls; other treatments had modest effects. EPA effects on cholesterol domain formation were dose-dependent. In membranes with 1:1 C/P (predisposing domain formation), DHA, but not EPA, dose-dependently increased membrane fluidity. DHA also induced cholesterol domain formation without affecting temperature-induced changes in-bilayer unit cell periodicity relative to controls (d-space; 57Å-55Å over 15-30°C). Together, these data suggest simultaneous formation of distinct cholesterol-rich ordered domains and cholesterol-poor disordered domains in the presence of DHA. By contrast, EPA had no effect on cholesterol domain formation and produced larger d-space values relative to controls (60Å-57Å; p<0.05) over the same temperature range, suggesting a more uniform maintenance of lipid dynamics despite the presence of cholesterol. These data indicate that EPA and DHA had different effects on membrane bilayer width, membrane fluidity, and cholesterol crystalline domain formation; suggesting omega-3 fatty acids with differing chain length or unsaturation may differentially influence membrane lipid dynamics and structural organization as a result of distinct phospholipid/sterol interactions.
1
DHA preserved temperature-dependent bilayer spacing similar to controls, consistent with simultaneous cholesterol-rich ordered and cholesterol-poor disordered domains.
2
DHA, but not EPA, dose-dependently increased membrane fluidity in 1:1 cholesterol-to-phospholipid membranes and promoted cholesterol domain formation.
3
EPA produced larger bilayer d-space values than controls and maintained more uniform lipid dynamics despite cholesterol, indicating distinct structural effects from DHA.
4
EPA reduced pre-existing cholesterol crystalline domains by 65.5% in 1.5:1 cholesterol-to-phospholipid model membranes, exceeding the effects of other tested treatments.
5
EPA’s inhibition of cholesterol domain formation was dose-dependent, whereas its effects were not attributed to lipid peroxidation.

Atherosclerotic-like model membranes containing cholesterol and phospholipids

The effects of EPA, DHA, and other long-chain fatty acids and triglyceride-lowering agents on membrane fluidity, bilayer width, and cholesterol crystalline-domain formation

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2016-10-09
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R. Preston Mason
Robert F. Jacob
S. K. Shrivastava
Samuel Sherratt
Amitabha Chattopadhyay
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