Oxidized Phosphatidylcholines Regulate Secretory Phospholipase A2 Through Membrane Nanodomain Remodeling
Abstract
1. Introduction
2. Results
2.1. Effect of OxPCs on the Temperature Dependence of Laurdan Generalized Polarization (GP) in the Ternary PC:SM:Chol Mixtures (Model of Lo/Ld Coexistence)
2.2. Effect of OxPCs on Formation and Size of Raft-like Domains in the Ternary PC:SM:Chol Mixtures (Model of Lo/Ld Coexistence)
2.3. Effect of OxPCs on sPLA2 Activity in the Ternary PC:SM:Chol Mixtures (Model of Lo/Ld Coexistence)
3. Discussion
4. Materials and Methods
4.1. Materials
4.2. Methods
4.2.1. Liposome Preparation
4.2.2. Fluorescence Spectroscopy of Laurdan-Labeled LUVs
Laurdan Spectra Measurements
4.2.3. DPH-TEMPO Fluorescence Spectroscopy
Measurements of Fluorescence Quenching of DPH by TEMPO
Calculation of the Domain Radius
4.2.4. Fluorogenic PLA2 Assay
Kinetic Measurements to Assess PLA2 Activity
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| OxPLs | oxidized phospholipids |
| OxPCs | oxidized phosphatidylcholines |
| POVPC | 1-palmitoyl-2-(5′-oxo-valeroyl)-sn-glycero-3-phosphocholine |
| PGPC | 1-palmitoyl-2-glutaryl-sn-glycero-3-phosphocholine |
| sPLA2 | secretory phospholipase A2 |
| Lyso-PC | lysophosphatidylcholine |
| POPC | 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine |
| PDPC | 1-palmitoyl-2-docosahexaenoyl-sn-glycero-3-phosphocholine |
| Lo | liquid-ordered |
| Ld | liquid-disordered |
| GPLs | glycerophospholipids |
| SLs | sphingolipids |
| Chol | cholesterol |
| SM | sphingomyelin |
| PLs | phospholipids |
| PCs | phosphatidylcholines |
| FA | fatty acid |
| PUFA | polyunsaturated fatty acid |
| DHA | docosahexaenoic acid |
| PAPC | 1-palmitoyl-2-arachidonoyl-phosphatidylcholine |
| OxLDLs | oxidized low density lipoproteins |
| OA | oleic acid |
| LUVs | large unilamellar vesicles |
| GP | generalized polarization |
| Rdom | radius of the Lo nanodomains |
| FL | fluorescence |
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| sPLA2 | Lipid Order | Lo Domain Size | ||||
|---|---|---|---|---|---|---|
| OxPC | POPC | PDPC | POPC | PDPC | POPC | PDPC |
| POVPC (low Chol) | −85 | −65 | +48 | 0 | +48 | +10 |
| PGPC (low Chol) | −75 | −40 | +20 | 0 | +28 | −5 |
| POVPC (high Chol) | −80 | −60 | +18 | 0 | +35 | +7 |
| PGPC (high Chol) | +350 | +60 | +20 | 0 | +32 | +9 |
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Yordanova, V.; Hazarosova, R.; Vitkova, V.; Angelova, R.; Nikolova, B.; Elenkova, A.; Momchilova, A.; Staneva, G. Oxidized Phosphatidylcholines Regulate Secretory Phospholipase A2 Through Membrane Nanodomain Remodeling. Molecules 2026, 31, 1298. https://doi.org/10.3390/molecules31081298
Yordanova V, Hazarosova R, Vitkova V, Angelova R, Nikolova B, Elenkova A, Momchilova A, Staneva G. Oxidized Phosphatidylcholines Regulate Secretory Phospholipase A2 Through Membrane Nanodomain Remodeling. Molecules. 2026; 31(8):1298. https://doi.org/10.3390/molecules31081298
Chicago/Turabian StyleYordanova, Vesela, Rusina Hazarosova, Victoria Vitkova, Ralitsa Angelova, Biliana Nikolova, Atanaska Elenkova, Albena Momchilova, and Galya Staneva. 2026. "Oxidized Phosphatidylcholines Regulate Secretory Phospholipase A2 Through Membrane Nanodomain Remodeling" Molecules 31, no. 8: 1298. https://doi.org/10.3390/molecules31081298
APA StyleYordanova, V., Hazarosova, R., Vitkova, V., Angelova, R., Nikolova, B., Elenkova, A., Momchilova, A., & Staneva, G. (2026). Oxidized Phosphatidylcholines Regulate Secretory Phospholipase A2 Through Membrane Nanodomain Remodeling. Molecules, 31(8), 1298. https://doi.org/10.3390/molecules31081298

