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Rosuvastatin effects on the HDL proteome in hyperlipidemic patients
Ana Vavlukis1, Kristina Mladenovska1, Katarina Davalieva2
1University Ss Cyril and Methodius Faculty of Pharmacy, 1000 Skopje RN Macedonia.
Insights
Rosuvastatin treatment altered the HDL proteome in dyslipidemic patients, affecting proteins involved in lipid transport and platelet function. PFN1 levels varied based on individual inflammatory phenotypes, revealing new insights into statin effects.
Area of Science:
- Proteomics and cardiovascular research.
- Lipid metabolism and lipoprotein analysis.
- Pharmacology of statin therapy.
Background:
- High-density lipoprotein (HDL) proteome analysis offers insights into lipoprotein functionality.
- Dyslipidemia is a risk factor for cardiovascular disease, even without established conditions.
- Statins, like rosuvastatin, are widely used to manage dyslipidemia.
Purpose of the Study:
- To characterize the HDL proteome in dyslipidemic individuals without cardiovascular disease.
- To investigate the impact of rosuvastatin treatment on the HDL proteome.
- To explore potential correlations between HDL protein changes and treatment response.
Main Methods:
- Label-free liquid chromatography-tandem mass spectrometry (LC-MS/MS) for protein profiling.
- Bioinformatics analysis to interpret proteomic data.
- Enzyme-linked immunosorbent assay (ELISA) for validation of specific protein changes.
Main Results:
- Sixty-nine HDL proteins were identified, categorized into lipid transport, platelet function, immune, and inflammatory responses.
- Rosuvastatin treatment significantly altered the abundance of five HDL proteins: PF4V1, PSG2, PFN1, KRT2 (decreased), and ITGA2B (increased).
- Profilin-1 (PFN1) expression post-treatment was dependent on the patient's inflammatory phenotype, distinguishing responders from non-responders.
Conclusions:
- Rosuvastatin significantly modifies the HDL proteome in dyslipidemic patients.
- Changes in specific HDL proteins suggest pleiotropic effects of rosuvastatin beyond lipid lowering.
- Inflammatory phenotype influences the response to rosuvastatin, impacting HDL protein expression.
Abstract:
The advancements in proteomics have provided a better understanding of the functionality of apolipoproteins and lipoprotein-associated proteins, with the HDL lipoprotein fraction being the most studied. The focus of this study was to evaluate the HDL proteome in dyslipidemic subjects without an established cardiovascular disease, as well as to test whether rosuvastatin treatment alters the HDL proteome. Patients with primary hypercholesterolemia or mixed dyslipidemia were assigned to 20 mg/day rosuvastatin and blood samples were drawn at study entry and after 12 weeks of treatment. A label-free LC-MS/MS protein profiling was conducted, coupled with bioinformatics analysis. Sixty-nine HDL proteins were identified, belonging to four main biological function clusters: lipid transport and metabolism; platelet activation, degranulation, and aggregation, wound response and wound healing; immune response; inflammatory and acute phase response. Five HDL proteins showed statistically significant differences in the abundance (Anova ≤ 0.05), before and after rosuvastatin treatment. Platelet factor 4 variant (PF4V1), Pregnancy-specific beta-1-glycoprotein 2 (PSG2), Profilin-1 (PFN1) and Keratin type II cytoskeletal 2 epidermal (KRT2) showed decreased expressions, while Integrin alpha-IIb (ITGA2B) showed an increased expression after treatment with rosuvastatin. The ELISA validation of PFN1 segregated the subjects into responders and non-responders, as PFN1 levels after rosuvastatin were shown to mostly depend on the subjects' inflammatory phenotype. Findings from this study introduce novel insights into the HDL proteome and statin pleiotropism.
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