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Updated: Aug 4, 2025

Assessment of Vascular Function in Patients With Chronic Kidney Disease
Published on: June 16, 2014
Proteomic cardiovascular risk assessment in chronic kidney disease
Rajat Deo1, Ruth F Dubin2, Yue Ren3
1Division of Cardiovascular Medicine, Electrophysiology Section, Perelman School of Medicine at the University of Pennsylvania, One Convention Avenue, Level 2 / City Side, Philadelphia, PA 19104, USA.
Insights
A new proteomic risk model accurately predicts cardiovascular disease in chronic kidney disease (CKD) patients. This advanced model outperforms traditional clinical tools, offering better risk assessment for individuals with CKD.
Area of Science:
- Nephrology
- Cardiology
- Proteomics
Background:
- Chronic kidney disease (CKD) significantly elevates cardiovascular risk.
- Existing cardiovascular risk prediction tools are inadequate for CKD populations.
Purpose of the Study:
- To develop and validate a more accurate cardiovascular risk prediction model for CKD patients using proteomics.
- To identify novel protein biomarkers for cardiovascular risk in CKD.
Main Methods:
- Elastic net regression applied to proteomic data from 2182 CKD participants (Chronic Renal Insufficiency Cohort).
- Validation in 485 CKD participants (Atherosclerosis Risk in Communities cohort).
- Measurement of approximately 5000 proteins at baseline; Mendelian randomization and pathway analyses performed.
Main Results:
- A 32-protein model demonstrated superior performance compared to clinical models (ACC/AHA Pooled Cohort Equations).
- Proteomic model achieved AUCs of 0.84-0.89 vs. 0.70-0.73 for clinical models.
- Mendelian randomization suggested causal links for nearly half of identified proteins; pathway analysis revealed immune and vascular functions.
Conclusions:
- A proteomic risk model significantly improves cardiovascular risk prediction in CKD patients.
- The model surpasses current clinical guidelines, even when including estimated glomerular filtration rate.
- Identified proteins offer potential therapeutic targets for cardiovascular risk reduction in CKD.
Aims:
Chronic kidney disease (CKD) is widely prevalent and independently increases cardiovascular risk. Cardiovascular risk prediction tools derived in the general population perform poorly in CKD. Through large-scale proteomics discovery, this study aimed to create more accurate cardiovascular risk models.
Methods And Results:
Elastic net regression was used to derive a proteomic risk model for incident cardiovascular risk in 2182 participants from the Chronic Renal Insufficiency Cohort. The model was then validated in 485 participants from the Atherosclerosis Risk in Communities cohort. All participants had CKD and no history of cardiovascular disease at study baseline when ∼5000 proteins were measured. The proteomic risk model, which consisted of 32 proteins, was superior to both the 2013 ACC/AHA Pooled Cohort Equation and a modified Pooled Cohort Equation that included estimated glomerular filtrate rate. The Chronic Renal Insufficiency Cohort internal validation set demonstrated annualized receiver operating characteristic area under the curve values from 1 to 10 years ranging between 0.84 and 0.89 for the protein and 0.70 and 0.73 for the clinical models. Similar findings were observed in the Atherosclerosis Risk in Communities validation cohort. For nearly half of the individual proteins independently associated with cardiovascular risk, Mendelian randomization suggested a causal link to cardiovascular events or risk factors. Pathway analyses revealed enrichment of proteins involved in immunologic function, vascular and neuronal development, and hepatic fibrosis.
Conclusion:
In two sizeable populations with CKD, a proteomic risk model for incident cardiovascular disease surpassed clinical risk models recommended in clinical practice, even after including estimated glomerular filtration rate. New biological insights may prioritize the development of therapeutic strategies for cardiovascular risk reduction in the CKD population.
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