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The Confounding Effects of Non-cardiac Pathologies on the Interpretation of Cardiac Biomarkers
Marin Nishimura1, Alison Brann2, Kay-Won Chang3
1Division of Cardiovascular Medicine, University of California, San Diego, 9434 Medical Center Drive, La Jolla, CA, 92037, USA.
Insights
Cardiac biomarkers like troponin and natriuretic peptides are vital but require clinical context. Non-cardiac conditions can affect these markers, necessitating careful interpretation for accurate diagnosis.
Area of Science:
- Cardiology
- Clinical Biochemistry
Background:
- Cardiac biomarkers are essential for evaluating patients with heart conditions.
- Interpreting biomarker levels requires careful consideration of the overall clinical picture.
Purpose of the Study:
- To explore how non-cardiac pathologies influence commonly used cardiac biomarkers.
- To emphasize the importance of clinical context in biomarker interpretation.
Main Methods:
- Review of recent findings on high-sensitivity troponin assays and natriuretic peptides.
- Analysis of how conditions like renal impairment, obesity, and race affect biomarker levels.
- Discussion on the utility of soluble ST2 and procalcitonin in cardiac disease management.
Main Results:
- High-sensitivity troponin assays show utility in renal impairment, with potential for gender-specific cutoffs.
- Natriuretic peptides (BNP, NT-proBNP) retain prognostic value despite deficiencies in obesity and certain races.
- Soluble ST2 and procalcitonin are increasingly used in cardiac disease management.
Conclusions:
- Cardiac biomarker values must always be interpreted within the patient's clinical context.
- Serial sampling and the use of biomarker panels can enhance diagnostic accuracy.
- Awareness of non-cardiac conditions affecting biomarker levels is crucial for precise disease delineation.
Purpose Of Review:
Cardiac biomarkers play important roles in routine evaluation of cardiac patients. But while these biomarkers can be extremely valuable, none of them should ever be used by themselves-without adding the clinical context. This paper explores the non-cardiac pathologies that can be seen with the cardiac biomarkers most commonly used.
Recent Findings:
High-sensitivity troponin assay gained FDA approval for use in the USA, and studies demonstrated its diagnostic utility can be extended to patients with renal impairment. Gender-specific cut points may be utilized for high-sensitivity troponin assays. In the realm of the natriuretic peptides, studies demonstrated states of natriuretic peptide deficiency in obesity and in subjects of African-American race. Regardless, BNP and NT-proBNP both retained prognostic utilities across a variety of comorbid conditions. We are rapidly gaining clinical evidence with use of soluble ST2 and procalcitonin levels in management of cardiac disease states. In order to get the most utility from their measurement, one must be aware of non-cardiac pathologies that may affect the levels of biomarkers as although many of these are actually true values, they may not represent the disease we are trying to delineate. A few take-home points are as follows: 1. A biomarker value should never be used without clinical context 2. Serial sampling of biomarkers is often helpful 3. Panels of biomarkers may be valuable.
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