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Author Spotlight: Advancing the Analysis of Plasma Extracellular Vesicle Proteome for Cardiovascular Biomarker Studies
Published on: January 31, 2025
Novel molecular plasma signatures on cardiovascular disease can stratify patients throughout life
Nerea Corbacho-Alonso1, Montserrat Baldán-Martín1, Juan Antonio López2
1Department of Vascular Physiopathology, Hospital Nacional de Parapléjicos, SESCAM, Toledo, Spain.
Insights
Researchers identified three common proteomic signatures in plasma that predict cardiovascular disease risk across different age groups. These novel markers offer a way to stratify lifelong cardiovascular risk, independent of age.
Area of Science:
- Proteomics and Cardiovascular Disease Research
- Biomarker Discovery for Health Risk Assessment
Background:
- Current cardiovascular disease (CVD) risk models often fall short in long-term, lifetime risk estimation.
- Previous research identified distinct plasma molecular signatures for CVD risk in younger adults (30-50 years old).
Purpose of the Study:
- To investigate if previously identified plasma proteomic signatures for CVD risk change with age.
- To validate these signatures in middle-aged (50-70 years) and elderly (>70 years) populations.
Main Methods:
- Proteomic analysis of plasma samples from middle-aged and elderly individuals stratified by CVD risk.
- Targeted mass spectrometry and turbidimetry to analyze specific proteomic signatures.
- Receiver operating characteristic (ROC) analysis to assess marker value for risk stratification.
Main Results:
- Three common proteomic signatures were identified across young, middle-aged, and elderly populations.
- These signatures are associated with cardiovascular stratification, organ damage, and risk prediction.
- The identified protein panels demonstrated potential for lifelong cardiovascular risk stratification.
Conclusions:
- Novel proteomic signatures can stratify cardiovascular risk across the lifespan, offering an alternative to traditional age-based risk factors.
- These findings provide insights into CVD pathogenesis and identify biomarkers for comprehensive risk assessment.
- The identified protein panels may enhance preventive strategies for cardiovascular disease.
Abstract:
Several models are available to calculate the risk of developing cardiovascular complications in mid-life. The estimation of lifetime risk in the long-term remains an unmet clinical need. We previously identified new molecular plasma signatures for cardiovascular risk stratification in a young population (30-50-years old). The aim of the present study was to determine if the specific signature found in young population changes with age. Proteomic analysis was performed in plasma samples obtained from different age groups, middle-age (50-70-years old, n = 63) and elderly (>70-years old, n = 61), which, in turn were classified into 3 subgroups according to cardiovascular risk. Our previous results in a young population clearly showed two different proteomic signatures. Building on these findings, targeted-mass spectrometry and turbidimetry analyses were used to test these signatures in middle-age and elderly populations. This strategy identified three common proteomic signatures between young and adult patients related to cardiovascular stratification, organ damage and risk prediction. Furthermore, receiver operating characteristic analysis revealed the potential value of these novel markers for lifetime risk stratification. Our results provide new insight into altered molecular mechanisms in the pathogenesis of cardiovascular disease and, more importantly, identify novel protein panels that can stratify patients throughout life. SIGNIFICANCE: Our results revealed three common proteomic signatures between young and adult patients related to cardiovascular stratification, organ damage and risk prediction. The results obtained provide a deeper insight into the pathogenesis of CV diseases and allow the identification of novel protein panels to stratify patients according to CV risk throughout life. While current estimators calculate the risk of having a CV event considering age as the most important factor to CV disease, our results represent an alternative to traditional CV risk factors, allowing the stratification of CV risk regardless of the age. Using a combination of traditional markers and established algorithms with these findings as a future preventive strategy, could facilitate an adequate assessment of CV risk.
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