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Prioritizing Candidates of Post-Myocardial Infarction Heart Failure Using Plasma Proteomics and Single-Cell
Mark Y Chan1,2, Motakis Efthymios1,3, Sock Hwee Tan1
1Department of Medicine, Yong Loo-Lin School of Medicine, National University of Singapore (M.Y.C., M.E., S.H.T., C.L.D., L.H.L., W.-M.S., J.P.L., C.-H.L., R.S.Y.F., M.A.A.-J., A.M.R.).
Insights
This study identified key plasma proteins and their gene expression linked to heart failure (HF) after myocardial infarction (MI). These findings highlight potential new biomarkers and drug targets for post-MI HF management.
Area of Science:
- Cardiovascular Biology
- Proteomics
- Genomics
Background:
- Heart failure (HF) is a major complication following acute myocardial infarction (MI).
- Identifying plasma proteins and gene expression patterns associated with post-MI HF is crucial for discovering new biomarkers and therapeutic targets.
Purpose of the Study:
- To identify plasma proteins and their gene expression associated with the development of heart failure after myocardial infarction.
- To discover novel biomarkers and potential drug targets for post-MI HF.
Main Methods:
- Aptamer-based plasma proteomics was employed in two independent cohorts (CDCS and IMMACULATE) to measure 1305 proteins post-MI.
- Weighted gene co-expression network analysis and machine learning were used to identify proteins correlated with HF and left ventricular ejection fraction.
- Proteins were cross-referenced with single-cell cardiac transcriptomics from murine and human HF models.
Main Results:
- 212 differentially expressed plasma proteins were associated with subsequent HF events in the CDCS cohort.
- Meta-analysis identified 36 plasma proteins associated with post-MI HF across cohorts, with 15 gene-protein candidates from transcriptomics.
- Key proteins identified include established biomarkers (NT-proBNP, troponin T) and novel candidates (angiopoietin-2, thrombospondin-2).
Conclusions:
- Large-scale plasma proteomics combined with single-cell cardiac transcriptomics effectively prioritized protein candidates for post-MI HF.
- The study identified novel protein biomarkers and potential therapeutic targets for managing heart failure post-myocardial infarction.
Background:
Heart failure (HF) is the most common long-term complication of acute myocardial infarction (MI). Understanding plasma proteins associated with post-MI HF and their gene expression may identify new candidates for biomarker and drug target discovery.
Methods:
We used aptamer-based affinity-capture plasma proteomics to measure 1305 plasma proteins at 1 month post-MI in a New Zealand cohort (CDCS [Coronary Disease Cohort Study]) including 181 patients post-MI who were subsequently hospitalized for HF in comparison with 250 patients post-MI who remained event free over a median follow-up of 4.9 years. We then correlated plasma proteins with left ventricular ejection fraction measured at 4 months post-MI and identified proteins potentially coregulated in post-MI HF using weighted gene co-expression network analysis. A Singapore cohort (IMMACULATE [Improving Outcomes in Myocardial Infarction through Reversal of Cardiac Remodelling]) of 223 patients post-MI, of which 33 patients were hospitalized for HF (median follow-up, 2.0 years), was used for further candidate enrichment of plasma proteins by using Fisher meta-analysis, resampling-based statistical testing, and machine learning. We then cross-referenced differentially expressed proteins with their differentially expressed genes from single-cell transcriptomes of nonmyocyte cardiac cells isolated from a murine MI model, and single-cell and single-nucleus transcriptomes of cardiac myocytes from murine HF models and human patients with HF.
Results:
In the CDCS cohort, 212 differentially expressed plasma proteins were significantly associated with subsequent HF events. Of these, 96 correlated with left ventricular ejection fraction measured at 4 months post-MI. Weighted gene co-expression network analysis prioritized 63 of the 212 proteins that demonstrated significantly higher correlations among patients who developed post-MI HF in comparison with event-free controls (data set 1). Cross-cohort meta-analysis of the IMMACULATE cohort identified 36 plasma proteins associated with post-MI HF (data set 2), whereas single-cell transcriptomes identified 15 gene-protein candidates (data set 3). The majority of prioritized proteins were of matricellular origin. The 6 most highly enriched proteins that were common to all 3 data sets included well-established biomarkers of post-MI HF: N-terminal B-type natriuretic peptide and troponin T, and newly emergent biomarkers, angiopoietin-2, thrombospondin-2, latent transforming growth factor-β binding protein-4, and follistatin-related protein-3, as well.
Conclusions:
Large-scale human plasma proteomics, cross-referenced to unbiased cardiac transcriptomics at single-cell resolution, prioritized protein candidates associated with post-MI HF for further mechanistic and clinical validation.
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