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Published on: August 1, 2016
Altered expression of the Ca(2+)-binding protein S100A1 in human cardiomyopathy
A Remppis1, T Greten, B W Schäfer
1Abteilung für Klinische Chemie, Kinderspital, Universität Zürich, Switzerland.
Insights
Reduced S100A1 protein expression is linked to heart failure. This study developed a method to measure S100A1 levels in cardiac tissue, finding lower amounts in patients with end-stage heart failure, suggesting a role in compromised contractility.
Area of Science:
- Biochemistry
- Cardiology
- Molecular Biology
Background:
- S100A1 is a calcium-binding protein predominantly expressed in the myocardium.
- S100A1 interacts with SR-proteins, influencing calcium-induced calcium release.
- Altered SR calcium transients are a hallmark of human end-stage heart failure.
Purpose of the Study:
- To investigate the hypothesis that S100A1 gene expression changes correlate with altered SR calcium transients in heart failure.
- To establish a sensitive method for analyzing S100A1 expression in cardiac tissues.
Main Methods:
- Development of a method using hydrophobic interaction-chromatography and reversed-phase high-performance liquid chromatography (RP-HPLC) coupled with Electron-Ionization-Mass-Spectrometry (ESI-MS).
- Analysis of S100A1 protein and mRNA expression in porcine myocardium.
- Quantification of S100A1 protein levels in left ventricular tissues from patients with end-stage heart failure and controls.
Main Results:
- Differential expression of S100A1 observed in porcine myocardium: Left ventricle (100%), Right ventricle (62%), Right atrium (57%), Left atrium (25%).
- Northern blot analysis confirmed corresponding S100A1 mRNA distribution, indicating transcriptional regulation.
- Significantly reduced S100A1 protein levels found in patients with end-stage heart failure compared to controls.
Conclusions:
- S100A1 exhibits differential expression within the myocardium.
- Reduced S100A1 expression is associated with human cardiomyopathy.
- Decreased S100A1 levels may contribute to compromised cardiac contractility in heart failure.
Abstract:
The Ca(2+)-binding protein S100A1 displays a tissue-specific expression pattern with highest levels in myocardium and has been shown to interact with SR-proteins regulating the Ca(2+)-induced Ca(2+)-release. We, therefore, hypothesized that changes in S100A1 gene expression might correlate with the pathognomonic finding of altered SR Ca(2+)-transients in human end stage heart failure. To test this hypothesis, we established a specific and sensitive method to analyse S100A1 expression in cardiac tissues by employing hydrophobic interaction-chromatography and reversed-phase high performance liquid chromatography (RP-HPLC) coupled with Electron-Ionisation-Mass-Spectrometry (ESI-MS). Porcine myocardium showed a differential expression of S100A1 with relative protein concentrations of 62 +/- 8% in the right ventricle (RV), 57 +/- 9% in the right atrium (RA), and 25 +/- 15% in the left atrium (LA) as compared to the left ventricle (LV) (100 +/- 10%; P < 0.001). Northern blot analyses confirmed a likewise distribution of porcine S100A1 mRNA implying a regulation on the transcriptional level. Analyses of left ventricular specimen of patients with end stage heart failure (CHF, n = 6; CHD, n = 6) revealed significantly reduced S100A1 protein levels, while integration of S100A1 peaks after RP-HPLC yielded two groups of patients with < 76% (69 +/- 7%, n = 6) and < 35% (23 +/- 12%, n = 6) respectively as compared to controls (100 +/- 8%, n = 3). These data demonstrate for the first time that S100A1 is differentially expressed in myocardium and that in human cardiomyopathy a reduced expression of S100A1 may contribute to a compromised contractility.
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