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Updated: Feb 4, 2026

In Vitro Analysis of E3 Ubiquitin Ligase Function
Published on: May 14, 2021
S100A4 as a Target of the E3-Ligase Asb2β and Its Effect on Engineered Heart Tissue
Simon Braumann1,2,3, Tilo Thottakara1,2, Sabrina Stücker1,2
1Cardiovascular Research Center, Institute of Experimental Pharmacology and Toxicology, University Medical Center Hamburg-Eppendorf, Hamburg, Germany.
Insights
S100A4 protein levels increase in hypertrophic cardiomyopathy due to reduced degradation. While not affecting heart tissue contraction, S100A4 influences genes linked to cardiac fibrosis and hypertrophy.
Area of Science:
- Cardiology
- Molecular Biology
- Biochemistry
Background:
- S100A4 is implicated in cardiac disease, but its precise role in hypertrophy and myocardial infarction is unclear.
- Understanding S100A4's function requires investigating its expression, regulation, and impact in cardiac pathology models.
Purpose of the Study:
- To analyze S100A4 expression in cardiac pathology models.
- To investigate S100A4 degradation by the ubiquitin-proteasome system (UPS).
- To examine the functional effects of S100A4 in engineered heart tissue (EHT).
Main Methods:
- Quantitative RT-PCR and Western blot to assess S100A4 levels in mouse models and cell cultures.
- Investigated S100A4 degradation using mutant Asb2β ligase and proteasome inhibitor epoxomicin.
- Adeno-associated virus serotype 6 (AAV6) mediated S100A4 overexpression in 3D EHT models.
Main Results:
- Elevated S100A4 protein in Mybpc3-knock-in hypertrophic cardiomyopathy (HCM) mouse hearts.
- Reduced Asb2β E3 ligase activity increased S100A4 levels, which was reversed by proteasome inhibition.
- S100A4 overexpression in EHT did not alter contractile function but decreased expression of fibrosis and hypertrophy-related genes.
Conclusions:
- S100A4 protein accumulation in HCM hearts is linked to decreased degradation by Asb2β.
- S100A4 modulates signaling pathways involved in cardiac fibrosis and hypertrophy, despite not affecting contractile parameters in EHT.
Abstract:
Background: S100A4 has recently emerged as an important player in cardiac disease, affecting phenotype development in animal models of myocardial infarction and pathological cardiac hypertrophy, albeit it is unclear whether S100A4 exerts a detrimental or beneficial function. The goal of the current study was to analyze S100A4 expression in models of cardiac pathology, investigate its degradation by the ubiquitin-proteasome system (UPS), and furthermore examine the functional effects of S100A4 levels in a 3D model of engineered heart tissue (EHT). Methods and Results: S100A4 mRNA and protein levels were analyzed in different models of cardiac pathology via quantitative RT-PCR and Western blot, showing a higher S100A4 steady-state protein concentration in hearts of Mybpc3-knock-in (KI) hypertrophic cardiomyopathy (HCM) mice. COS-7 cells co-transfected with plasmids encoding mutant (MUT) Asb2β lacking the E3 ligase activity in combination with V5-tagged S100A4 plasmid presented higher S100A4-V5 protein steady-state concentrations than cells co-transfected with the Asb2β wild type (WT) plasmid. This effect was blunted by treatment with the specific proteasome inhibitor epoxomicin. Adeno-associated virus serotype 6 (AAV6)-mediated S100A4 overexpression in a 3D model of EHT did not affect contractile parameters. Immunofluorescence analysis showed a cytosolic and partly nuclear expression pattern of S100A4. Gene expression analysis in EHTs overexpressing S100A4-V5 showed markedly lower steady-state concentrations of genes involved in cardiac fibrosis and pathological cardiac hypertrophy. Conclusion: We showed that S100A4 protein level is higher in cardiac tissue of Mybpc3-KI HCM mice probably as a result of a lower degradation by the E3 ligase Asb2β. While an overexpression of S100A4 did not alter contractile parameters in EHTs, downstream gene expression analysis points toward modulation of signaling cascades involved in fibrosis and hypertrophy.
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