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Updated: Feb 11, 2026

Author Spotlight: Advancing the Analysis of Plasma Extracellular Vesicle Proteome for Cardiovascular Biomarker Studies
Published on: January 31, 2025
Plasma proteomic analysis reveals altered protein abundances in cardiovascular disease
Vasiliki Lygirou1, Agnieszka Latosinska2, Manousos Makridakis1
1Biomedical Research Foundation, Academy of Athens, 4 Soranou Ephessiou Street, 115 27, Athens, Greece.
Insights
This study used proteomics to analyze blood plasma from cardiovascular disease (CVD) patients and controls. It identified known and novel proteins linked to CVD, providing a dataset for future research.
Area of Science:
- Proteomics
- Cardiovascular Science
- Biochemistry
Background:
- Cardiovascular disease (CVD) encompasses heart and blood vessel pathologies.
- Key modulators of CVD remain largely unknown despite extensive research.
- A comprehensive proteomic analysis of blood plasma is needed to identify disease-associated changes.
Purpose of the Study:
- To perform a comprehensive proteomic analysis of blood plasma to identify CVD-associated proteins.
- To generate a well-characterized dataset for multi-omics integrative analysis in CVD research.
- To contextualize identified proteins with existing knowledge and explore novel CVD mechanisms.
Main Methods:
- Liquid chromatography-tandem mass spectrometry (LC-MS/MS) was used to analyze plasma from 32 subjects (19 CVD cases, 13 controls).
- Proteins were quantified using label-free methods and correlated with the Plasma Proteome Database (PPD).
- Differential expression analysis was performed with strict criteria for identification confidence, statistical significance, and fold change.
Main Results:
- A total of 3796 proteins were identified, with 838 meeting stringent criteria.
- Pathway analysis confirmed relevance to complement cascade, fibrin clot formation, and platelet degranulation.
- 100 differentially expressed proteins were found in the discovery set, with 39 validated in the test set, including known CVD proteins and novel candidates like LRP2 and SZT2.
Conclusions:
- The study provides a valuable proteomic dataset for integrative and functional CVD research.
- Identified protein changes reflect known CVD processes (lipid uptake, inflammation) and suggest novel hypotheses.
- Novel findings include a potential role for LRP2 and links between SZT2 and CVD warranting further investigation.
Background:
Cardiovascular disease (CVD) describes the pathological conditions of the heart and blood vessels. Despite the large number of studies on CVD and its etiology, its key modulators remain largely unknown. To this end, we performed a comprehensive proteomic analysis of blood plasma, with the scope to identify disease-associated changes after placing them in the context of existing knowledge, and generate a well characterized dataset for further use in CVD multi-omics integrative analysis.
Methods:
LC-MS/MS was employed to analyze plasma from 32 subjects (19 cases of various CVD phenotypes and 13 controls) in two steps: discovery (13 cases and 8 controls) and test (6 cases and 5 controls) set analysis. Following label-free quantification, the detected proteins were correlated to existing plasma proteomics datasets (plasma proteome database; PPD) and functionally annotated (Cytoscape, Ingenuity Pathway Analysis). Differential expression was defined based on identification confidence (≥ 2 peptides per protein), statistical significance (Mann-Whitney p value ≤ 0.05) and a minimum of twofold change.
Results:
Peptides detected in at least 50% of samples per group were considered, resulting in a total of 3796 identified proteins (838 proteins based on ≥ 2 peptides). Pathway annotation confirmed the functional relevance of the findings (representation of complement cascade, fibrin clot formation, platelet degranulation, etc.). Correlation of the relative abundance of the proteins identified in the discovery set with their reported concentrations in the PPD was significant, confirming the validity of the quantification method. The discovery set analysis revealed 100 differentially expressed proteins between cases and controls, 39 of which were verified (≥ twofold change) in the test set. These included proteins already studied in the context of CVD (such as apolipoprotein B, alpha-2-macroglobulin), as well as novel findings (such as low density lipoprotein receptor related protein 2 [LRP2], protein SZT2) for which a mechanism of action is suggested.
Conclusions:
This proteomic study provides a comprehensive dataset to be used for integrative and functional studies in the field. The observed protein changes reflect known CVD-related processes (e.g. lipid uptake, inflammation) but also novel hypotheses for further investigation including a potential pleiotropic role of LPR2 but also links of SZT2 to CVD.
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