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Incident heart failure in chronic kidney disease: proteomics informs biology and risk stratification
Ruth F Dubin1, Rajat Deo2, Yue Ren3
1Division of Nephrology, University of Texas Southwestern Medical Center, 5323 Harry Hines Blvd, H5.122E, Dallas, TX 75390, USA.
Heart failure (HF) in chronic kidney disease (CKD) is common. Large-scale proteomics identified novel protein biomarkers and druggable targets, improving risk prediction models over existing scores.
Area of Science:
- Biomarkers and proteomics
- Cardiovascular disease
- Nephrology
Background:
- Heart failure (HF) is a significant complication for individuals with chronic kidney disease (CKD).
- Existing risk prediction models, such as the Pooled Cohort equations to Prevent Heart Failure (PCP-HF), perform poorly in CKD populations.
- There is a critical need for novel therapeutic targets and improved risk stratification for HF in CKD.
Purpose of the Study:
- To identify novel circulating protein biomarkers associated with incident heart failure (HF) in patients with chronic kidney disease (CKD).
- To explore potential causal relationships and druggable targets for HF in CKD using proteomic data.
- To develop and validate enhanced multi-protein risk models for HF prediction in CKD, comparing their performance against established scores.
Main Methods:
- SomaScan proteomic analysis of 4638 proteins in 2906 participants from the Chronic Renal Insufficiency Cohort (CRIC) study, with validation in the Atherosclerosis Risk in Communities (ARIC) study.
- Primary outcome: 14-year incident HF. Secondary outcomes: 4-year HF, HF with reduced ejection fraction, and HF with preserved ejection fraction.
- Application of Mendelian randomization and Gene Ontology for causality assessment, and comparison of novel multi-protein models against the PCP-HF risk score.
Main Results:
- Over 200 proteins were initially associated with incident HF in CKD patients (P < 1 × 10-5) after adjusting for estimated glomerular filtration rate.
- After covariate adjustment, including N-terminal pro-B-type natriuretic peptide, 17 proteins remained significantly associated with HF.
- Four druggable protein targets (FCG2B, IGFBP3, CAH6, ASGR1) were identified through Mendelian randomization.
- A 48-protein model demonstrated superior predictive performance (C-statistic 0.790 in CRIC) compared to the PCP-HF model (C-statistic 0.703) for incident HF.
Conclusions:
- Large-scale proteomics has successfully identified novel circulating protein biomarkers and potential mediators of HF in the context of CKD.
- The developed proteomic risk models offer improved accuracy for predicting HF in CKD patients compared to the existing PCP-HF risk score.
- These findings highlight promising avenues for developing new preventative therapies and refining risk stratification strategies for HF in CKD.
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