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Proteomic Biomarkers in the Cardiorenal Syndrome: Toward Deciphering Molecular Pathophysiology
Tianlin He1,2, Zhenyu Zhang3, Jan A Staessen3,4
1Mosaiques Diagnostics GmbH, Hannover, Germany.
Insights
Cardiorenal syndrome (CRS) involves heart and kidney dysfunction. Biomarkers targeting fibrosis show promise for early detection and personalized treatment of this complex condition.
Area of Science:
- Cardiology
- Nephrology
- Biomarker Research
Background:
- Cardiorenal syndrome (CRS) is characterized by coexisting heart and kidney dysfunction.
- The interplay between cardiac and renal disease is complex, often blurring cause-effect relationships.
- Current CRS classifications lack pathophysiological guidance for targeted interventions.
Purpose of the Study:
- To systematically review the literature on Cardiorenal Syndrome (CRS) biomarkers.
- To explore the pathophysiological underpinnings of CRS, focusing on unifying pathways.
- To evaluate the clinical utility of fibrosis-related biomarkers in CRS management.
Main Methods:
- Systematic literature review of 53 clinical studies on CRS.
- Analysis of 44 biomarkers and 4 proteomic panels associated with CRS comorbidities.
- Focus on pathways including inflammation, glucose metabolism, neurohormonal activation, oxidative stress, and fibrosis.
Main Results:
- Identified numerous biomarkers implicated in CRS comorbidities.
- Highlighted inflammation, aberrant glucose metabolism, neurohormonal activation, and oxidative stress as key pathways.
- Found growing evidence that fibrosis may be a unifying pathological mechanism in CRS.
Conclusions:
- Biomarkers reflecting fibrosis and collagen turnover are crucial for early CRS detection and prognostication.
- Fibrosis biomarkers may guide personalized treatment strategies for Cardiorenal Syndrome.
- Assessing extracellular matrix changes in the heart and kidney offers a promising avenue for CRS intervention.
Abstract:
Cardiorenal syndrome (CRS) is defined by coexisting heart and renal dysfunctions. Malfunction of 1 organ may cause dysfunction of the other with variable causative disease that defines the type of CRS (1-5). Numerous studies showed that the prevalence of cardiovascular disease is increased in patients with chronic kidney disease (CKD). Similarly, CKD affects a large proportion of patients with heart failure. This overlap between primary heart or primary kidney disease blurs cause-effect inferences of the initiator/target organ. The classical subdivision of CRS in 5 categories does not provide pathophysiological suggestions for targeted intervention. It seems timely to revisit the value of CRS biomarkers in a pathophysiology-centered approach. We systematically reviewed the literature in CRS, which revealed 53 clinical studies describing the use of 44 biomarkers and 4 proteomic panels. All biomarkers are involved in at least one of the CRS comorbidities. Among the pathways affected, inflammation, aberrant glucose metabolism, neurohormonal activation, and oxidative stress are well described. There is growing evidence that fibrosis may be the "cornerstone" that unifies most of the pathways leading to CRS. Formation of excess fibrous connective tissue antedates CRS in many cases. This review highlights that biomarkers reflecting fibrosis may be of substantial clinical value in the early detection, prognostication, and guiding treatment of CRS. Biomarkers detecting changes in collagen turnover in the extracellular matrix of heart and kidney appear able to depict subclinical changes in the fibrotic remodeling of tissues and constitute a promising approach toward personalized intervention in CRS.
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